Magnetoelectric Effects in Multiferroics

Size: px
Start display at page:

Download "Magnetoelectric Effects in Multiferroics"

Transcription

1 Magnetoelectric Effects in Multiferroics Th. Lottermoser, M. Fiebig, T. Arima, Y. Tokura PROMOX2, APRIL 2005 ERATO-SSS

2 Magnetoelectric Effects in Multiferroics Introduction: Magnetoelectric Effect & Multiferroics Multiferroic Manganites with Perovskite Structure Electric Polarization Control by Magnetic Field Multiferroic Manganites with Hexagonal Structure Magnetization Control by Electric Field Magnetoelectric Second Harmonic Generation (SHG) Domains and Domain Walls Superlattices as Artificial Multiferroics Magnetoelectric Effects in Multiferroics -1- ERATO-SSS

3 Linear Magnetoelectric Effect Polarization and magnetization of a medium: Covariant relativistic formulation: with: Relativistic equivalence of electric and magnetic fields requires "magneto-electric" cross-correlation (~ α) in matter: 1960: Theoretically not well understood Small effect (10-5 ) Limited choice of compounds 2000: New theoretical concepts 0 Year "Gigantic" effects: induction of phase transitions New materials: multiferroics, composites, "magnetoelectricity on design" Magnetoelectric Effects in Multiferroics -2- ERATO-SSS Publications / year Publications on magnetoelectric

4 Multiferroic Compounds Compounds with simultaneous (anti-)ferromagnetic, ferroelectric, ferrotoroidic and/or ferroelastic ordering (Aizu 1969) Multiferroics Compounds with only simultaneous magnetic and electric ordering Magnetic ferroelectrics or ferroelectromagnets Multiferroic hysteresis in Ni 3 B 7 O 13 I (Ascher et al. 1966) 1958 Idea of new compounds with coexisting magnetic and electric ordering by Smolenskii and Ioffe 1966 First experimental proof of a multiferroic effect by Ascher et al Suggestions for technical applications based on multicferroic properties by Wood and Austin Why are there so few magnetic ferroelctrics? by Hill Magnetoelectric Effects in Multiferroics -3- ERATO-SSS

5 Why Multiferroics? The magnetoelectric coupling constant α ij is small (α ij2 < χ e ii χm jj ) Applying external magnetic/electric fields lead only to small ME effects Multiferroics with magnetic and electric ordering exhibit strong internal electromagnetic fields! ME contribution to free energy: H ME = α DB with D = ε 0 (E+P), B = µ 0 (H+M) Observation of giant ME effects Magnetic or electric phase transitions Control of magnetization/polarization by electric/magnetic field Other effects based on the coexisting orders in multiferroics: Interaction of magnetic and electric domains and domain walls Appereance of ME contributions to nonlinear optical signals Magnetoelectric Effects in Multiferroics -4- ERATO-SSS

6 Magnetoelectric Effects in Multiferroics Introduction: Magnetoelectric Effect & Multiferroics Multiferroic Manganites with Perovskite Structure Electric Polarization Control by Magnetic Field Multiferroic Manganites with Hexagonal Structure Magnetization Control by Electric Field Magnetoelectric Second Harmonic Generation (SHG) Domains and Domain Walls Superlattices as Artificial Multiferroics Magnetoelectric Effects in Multiferroics -5- ERATO-SSS

7 Electric Polarization Control by Magnetic Field Magnetic control of ferroelectric polarization in TbMnO 3 : At 42 K incommensurate antiferromagnetic Mn 3+ ordering At 27 K incommensurate/commensurate lock-in transition of Mn 3+ spins magnetoeleastic displacements of Mn 3+ ions spatial variation of electric dipolmoments ferroelectric ordered phase Kimura et. al., Nature 426, 55 (2003) Applying of an external magnetic field leads to 90 rotation of polarization giant ME effect! Magnetoelectric Effects in Multiferroics -6- ERATO-SSS

8 Electric Polarization Control by Magnetic Field Hur et. al., Nature 429, 392 (2004) Electric polarization reversal and memory in in TbMn 2 O 5 induced by magnetic fields: Exchange interactions between Mn 3+, Mn 4+, Tb 3+ spins and lattice polarization lead to several phase transitions. Below 10 K: Magnetic ordring of Mn 3+ /Mn 4+ and Tb 3+ spins Ferroelectric polarization P = P 1 + P 2 (H) with P 1 antiparallel P 2 Modulation of P 2 (H) by external magnetic field leads to sign reversal of the overall polarization P Magnetoelectric Effects in Multiferroics -7- ERATO-SSS

9 Magnetoelectric Effects in Multiferroics Introduction: Magnetoelectric Effect & Multiferroics Multiferroic Manganites with Perovskite Structure Electric Polarization Control by Magnetic Field Multiferroic Manganites with Hexagonal Structure Magnetization Control by Electric Field Magnetoelectric Second Harmonic Generation (SHG) Domains and Domain Walls Superlattices as Artificial Multiferroics Magnetoelectric Effects in Multiferroics -8- ERATO-SSS

10 Optical Second Harmonic Generation In general: Multipole expansion of source term S for SHG: Three nonlinear contributions: Electric dipole (ED): Magnetic dipole (MD: Electric quadrupole (EQ): SH source term S i (2ω) χ ijk E j (ω)e k (ω) Incident laser beam Nonlinear signal: electric, magnetic, i-type χ(i) c-type χ(c) Interference! SH intensity: I SH S(c) + S(i) 2 χ(c) + A e iψ χ(i) 2 I 2 (ω) = (χ 2 (c) + A 2 χ 2 (i) + 2A χ(c) χ(i) cos ψ) I 2 (ω) always > 0 interference term Amplitude A and phase ψ can be controlled in the experiment. Magnetoelectric Effects in Multiferroics -9- ERATO-SSS

11 SHG in a Ferroelectromagnetic Multiferroic Two-dimensional expansion of the Second Harmonic (SH) susceptibility χ for electric ( ) and magnetic ( ) order parameters P NL [ χˆ(0) + χˆ( ) + χˆ( ) + χˆ( ) +...] E( ω) E( ) ( 2ω) = ε0 ω χ(0): Paraelectric paramagnetic contribution always allowed χ(): (Anti)ferroelectric contribution allowed below χ( ): (Anti)ferromagnetic contribution the respective χ( ): Multiferroic contribution ordering temperature SHG allows simultaneous investigation of magnetic and electric structures Selective access to electric and magnetic sublattices Multiferroic contribution reveals the magneto-electric interaction between the sublattices Magnetoelectric Effects in Multiferroics -10- ERATO-SSS

12 PEL PM Crystallographic and Magnetic Structure of RMnO 3 Mn 3+ (z = 0) Mn 3+ (z=c/2) y R 3+ Mn 3+ O 2- z x FEL x AFM RMnO3 (R = Sc, Y, In, Ho, Er, Tm, Yb, Lu) : A highly correlated and ordered system! Ferroelectric phase transition: T C = K Breaking of inversion symmetry I! Antiferromagnetic phase transition of the Mn 3+ sublattice: T N = K Breaking of time-reversal symmetry T, but not of inversion symmetry I! Additional rare-earth order: T C 5 K for Ho, Er, Tm, Yb Magnetoelectric Effects in Multiferroics -11- ERATO-SSS

13 Magnetic Structure and SHG Selection Rules At least 8 different triangular inplane spin structures with different magnetic symmetries and different selection rules for SHG α structures: SHG for k z allowed α x (ϕ = 0 ): χ xxx = 0, χ yyy 0 α y (ϕ = 90 ): χ xxx 0, χ yyy = 0 α ρ (ϕ = 0-90 ): χ xxx sin ϕ, χ yyy cos ϕ β structures: SHG for k z not allowed β x, β y, β ρ : χ xxx = 0, χ yyy = 0 Determine β structure from α-β transition α x β y : χ xxx = 0, χ yyy cos ϕ α y β x : χ xxx sin ϕ, χ yyy = 0 α structures y x β structures Contrary to diffraction techniques: α and β models clearly distinguishable! Magnetoelectric Effects in Multiferroics -12- ERATO-SSS

14 SH spectrum and Magnetic Symmetry SH intensity 0 SH intensity YMnO 3 6 K HoMnO 3 6 K χ K 3.0 xxx 2 ErMnO 3 6 K HoMnO 3 χ yyy SH energy (ev) SH energy (ev) The magnetic symmetry, not the R ion, determines the SH spectrum of RMnO 3 Magnetoelectric Effects in Multiferroics -13- ERATO-SSS

15 H/T Phase Diagram of Hexagonal RMnO 3 Temperature (K) RMnO 3 (H = 0) Representation B (hyst.) A Repres. index 1 (none) Sc In Lu Yb Tm Er Ho Y HoMnO 3 B 2 Temperature (K) Temperature (K) A 1 B 2 B 1 B 2 A 2 TmMnO Magnetic field µ 0 H z (T) A 2 B 2 YbMnO 3 A 2 ErMnO 3 A Magnetic field µ 0 H z (T) J. Appl. Phys. 83, 8194 (2003) α structures y x β structures Magnetoelectric Effects in Multiferroics -14- ERATO-SSS

16 Magnetoelectric 3d - 4f Superexchange in RMnO 3 k: R sites with 3 and 3m symmetries i k : all R ions at k sites (4+2) j: 6 Mn ions neighboring an R ion A: Mn-R exchange matrix (4 types) S: spins of Mn and R ions α model: β model: no change! lowers ground-state energy: Gigantic magnetoelectric effect which originates in 3d-4f superexchange; triggers hidden phase transition! Ferroelectric distortion modifies the superexchange:, Scales with order par. Substitution leads to: ME contribution Magnetoelectric Effects in Multiferroics -15- ERATO-SSS

17 Magnetization Control by Electric Field Electric field suppresses magnetic SHG and leads to additional field depended contribution to Faraday rotation Induction of magnetic phase transition! Nature 430, 541 (2004) ME contribution to free energy: H α zz P z S z Ho Ferroelectric poling and ferromagnetic ordering of Ho 3+ spins giant ME effect Magnetoelectric Effects in Multiferroics -16- ERATO-SSS

18 Magnetoelectric Second Harmonic Generation Source term S ED (0) S ED () S MD,EQ () S ED () Sublattice sym. P6 3 /mcm P6 3 cm P6 3 /mcm P6 3 cm SHG for k z SHG for k x = 0 = 0 = = 0 0 SH intensity χ yyy k z S H energy (ev) χ zyy χ yyz χ zzz χ yyy k x SH energy (ev) 1 Identical magnetic spectra for k z and k x indicate bilinear coupling to,. Unarbitrary evidence for the first observation of "magnetoelectric SHG" Nature 419, 818 (2002) Magnetoelectric Effects in Multiferroics -17- ERATO-SSS

19 Observation of Multiferroic Domains Independent ferroelectric ( ) and ferroelectromagnetic ( ) domain structures; antiferromagnetic domain structure ( ) is not! (a) (c) (b) Multiferroic domains": = +1 for = ±1, = ±1 = -1 for = ±1, = 1 Any reversal of the FEL order parameter is clamped to a reversal of the AFM order parameter 0.5 mm (d) FEL FEL & AFM AFM Origin: Piezomagnetic interaction between lattice distortions at the FEL domain wall and magnetization induced by the AFM domain wall decreases the free energy Nature 419, 818 (2002) Magnetoelectric Effects in Multiferroics -18- ERATO-SSS

20 Interaction of electric and magnetic domain walls M AFM wall 0 d 0 d m p AFM wall carries an intrinsic macroscopic mag-netization FEL wall induces strain due to switching of polarization σ H pm FEL wall piezomagnetic energy s s=0 s=d 0 Width of walls: AFM - O[10 3 ] unit cells: small in-plane anisotropy iii FEL O[10 0 ] unit cells: large uniaxial anisotropy Piezomagnetic contribution H pm = q ijk M i σ jk with σ P z higher-order magnetoelectric effect Generation of an antiferromagnetic wall clamped to a ferroelectric wall leads to reduction of free energy. Phys. Rev. Lett. 90, (2003) Magnetoelectric Effects in Multiferroics -19- ERATO-SSS s=d

21 Spin-Rotation Domains in HoMnO3 Observation of drastically increased dielectric constant during magnetic spin-reorientation phase transition by Lorenz et. al. (PRL 92, (2004)) But: ME not allowed by symmetry considerations! Inside AFM domain walls reduced local symmetry P2 due to uncompensated magnetic moment. P2 allows ME contribution Pz αzx,y Mx,y Local ME effect Magnetoelectric Effects in Multiferroics -20- ERATO-SSS

22 Magnetoelectric Effects in Multiferroics Introduction: Magnetoelectric Effect & Multiferroics Multiferroic Manganites with Perovskite Structure Electric Polarization Control by Magnetic Field Multiferroic Manganites with Hexagonal Structure Magnetization Control by Electric Field Magnetoelectric Second Harmonic Generation (SHG) Domains and Domain Walls Superlattices as Artificial Multiferroics Magnetoelectric Effects in Multiferroics -21- ERATO-SSS

23 Superlattices as Artificial Multiferroics repeated 10 times Tricolor superlattice LaAlO 3 SrMnO 3 LMnO 3 substrate 2 u.c. 4 u.c. 6 u.c. 1. Asymmetric sequence of layers breaks inversion symmetry 2. Ferromagnetic ordering at SrMnO3/LaMn03 interface Polar ferromagnet Nonlinear magneto-optical Kerr rotation (NOMOKE) Kerr rotation angle φ ( ) Kerr rotation angle φ ( ) LSAT External field: 0.35 T Kerr rotation Magnetization -2 6 Kerr rotation Magnetization 5 4 m STO P (2ω) 3 tanφ Re nm P (2ω )sinθ 2 1 External field: 0.35 T Temperature (K) Magnetization (µ Magnetization (µ B /Mn) B /Mn) Magnetoelectric Effects in Multiferroics -22- ERATO-SSS

24 Summary Coexistence of magnetic and electric ordering in multiferroics allow giant magnetoelectric effects: Electric/magnetic phase transitions Control of polarization/magnetization by external magnetic/electric fields New effects based on the specific nature of multiferroics: Interaction of magnetic and electric domains and domain walls Magnetolectric second harmonic generation Magnetoelectric Effects in Multiferroics -23- ERATO-SSS

25 Acknowledgment Germany: Th. Lonkai, D. Fröhlich, St. Leute, C. Degenhardt, T. Satoh Russia: R.V. Pisarev, V.V. Pavlov, A.V. Goltsev Japan: K. Kohn, Y. Tanabe, E. Hanamura, H. Yamada Magnetoelectric Effects in Multiferroics -24- ERATO-SSS

Part IV Multiferroic RMnO 3. Ferroelectric & magnetic ordering SHG spectroscopy SHG topography Identification of multiferroic interactions

Part IV Multiferroic RMnO 3. Ferroelectric & magnetic ordering SHG spectroscopy SHG topography Identification of multiferroic interactions Part IV Multiferroic RMnO 3 Ferroelectric & magnetic ordering SHG spectroscopy SHG topography Identification of multiferroic interactions Multiferroic Hexagonal Manganites RMnO 3 Hexagonal manganites RMnO

More information

Funding provided by the Los Alamos National Laboratory Directed Research and Development Program

Funding provided by the Los Alamos National Laboratory Directed Research and Development Program Combining ferroelectricity and magnetism: the low energy electrodynamics Diyar Talbayev Center for Integrated Nanotechnologies Los Alamos National Laboratory Acknowledgements Los Alamos National Laboratory

More information

MagnetoElastic Interactions in Multiferroic Materials: An Experimental Point of View

MagnetoElastic Interactions in Multiferroic Materials: An Experimental Point of View MagnetoElastic Interactions in Multiferroic Materials: An Experimental Point of View Jan Musfeldt, University of Tennessee Several Short Examples to Check What the Lattice is Doing Microscopic vs. Bulk

More information

2.1 Experimental and theoretical studies

2.1 Experimental and theoretical studies Chapter 2 NiO As stated before, the first-row transition-metal oxides are among the most interesting series of materials, exhibiting wide variations in physical properties related to electronic structure.

More information

Contents. Acknowledgments

Contents. Acknowledgments MAGNETIC MATERIALS Fundamentals and Applications Second edition NICOLA A. SPALDIN University of California, Santa Barbara CAMBRIDGE UNIVERSITY PRESS Contents Acknowledgments page xiii I Basics 1 Review

More information

Novel Field-Induced Phases in HoMnO 3 at Low Temperatures

Novel Field-Induced Phases in HoMnO 3 at Low Temperatures Novel Field-Induced Phases in HoMnO 3 at Low Temperatures B. Lorenz 1, F. Yen 1, M. M. Gospodinov 2, and C. W. Chu 1,3,4 1 Department of Physics and TCSAM, University of Houston, Houston, TX 77204-5002

More information

Introduction on Multiferroic Materials. Abstract

Introduction on Multiferroic Materials. Abstract Introduction on Multiferroic Materials Xiaotian Zhang(xzhang25@utk.edu) Instructor: Elbio Dagotto Class: Solid State 2, 2010, Spring semester Department of Physics and Astronomy The University of Tennessee,

More information

T C SUH. Tuning multiferroics under extreme conditions: Effects of high pressure, magnetic fields, and substitutions. Bernd Lorenz

T C SUH. Tuning multiferroics under extreme conditions: Effects of high pressure, magnetic fields, and substitutions. Bernd Lorenz Tuning multiferroics under extreme conditions: Effects of high pressure, magnetic fields, and substitutions Bernd Lorenz Texas Center for Superconductivity and Department of Physics, University of Houston

More information

Magnetoelectric effect

Magnetoelectric effect Department of Physics Seminar Magnetoelectric effect The challenge of coupling magnetism and ferroelectricity Luka Vidovič Mentor: prof. dr. Denis Arčon Ljubljana, december 2009 Abstract Magnetism and

More information

X-ray resonant magnetic scattering investigations of hexagonal multiferroics RMnO3 (R = Dy, Ho, Er)

X-ray resonant magnetic scattering investigations of hexagonal multiferroics RMnO3 (R = Dy, Ho, Er) Graduate Theses and Dissertations Iowa State University Capstones, Theses and Dissertations 29 X-ray resonant magnetic scattering investigations of hexagonal multiferroics RMnO3 (R = Dy, Ho, Er) Shibabrata

More information

Ferroelectric properties controlled by magnetic fields in DyMn 2 O 5

Ferroelectric properties controlled by magnetic fields in DyMn 2 O 5 Ferroelectric properties controlled by magnetic fields in DyMn 2 O 5 D. Higashiyama 1, N. Kida 3, S. Miyasaka 1, T. Arima 2,3 and Y. Tokura 1,3,4 1 Department of Applied Physics, University of Tokyo, Tokyo

More information

NEW ROUTES TO MULTIFERROICS

NEW ROUTES TO MULTIFERROICS NEW ROUTES TO MULTIFERROICS C. N. R. RAO Jawaharlal Nehru Centre for Advanced Scientific Research & Indian Institute of Science Bangalore, India 1 MULTIFERROICS Ferromagnetic Ferroelectric Ferroelastic

More information

Supporting Information (Online Material) for

Supporting Information (Online Material) for Supporting Information (Online Material) for Five-Fold Ordering in High-Pressure Perovskites RMn 3 O 6 (R = Gd-Tm and Y) Lei Zhang,, Yoshitaka Matsushita, Kazunari Yamaura,, Alexei A. Belik, *, Research

More information

research papers High-temperature structural evolution of hexagonal multiferroic YMnO 3 and YbMnO 3

research papers High-temperature structural evolution of hexagonal multiferroic YMnO 3 and YbMnO 3 Journal of Applied Crystallography ISSN 0021-8898 Received 3 February 2007 Accepted 23 May 2007 High-temperature structural evolution of hexagonal multiferroic YMnO 3 and YbMnO 3 Il-Kyoung Jeong, a * N.

More information

Magnetoelectricity and multiferroics. Charles Simon Laboratoire CRISMAT, CNRS and ENSICAEN, F14050 Caen.

Magnetoelectricity and multiferroics. Charles Simon Laboratoire CRISMAT, CNRS and ENSICAEN, F14050 Caen. Magnetoelectricity and multiferroics Charles Simon Laboratoire CRISMAT, CNRS and ENSICAEN, F14050 Caen. Introduction : The possibility for a material to be both ferromagnetic and ferroelectric was predicted

More information

Review Review of the Magnetocaloric Effect in RMnO3 and RMn2O5 Multiferroic Crystals

Review Review of the Magnetocaloric Effect in RMnO3 and RMn2O5 Multiferroic Crystals Review Review of the Magnetocaloric Effect in RMnO3 and RMn2O5 Multiferroic Crystals Mohamed Balli 1,2, *, Benoit Roberge 1,2, Patrick Fournier 1,2,3 and Serge Jandl 1,2 1 Institut Quantique, Université

More information

Dec. 16, 2008 Pohang APCTP

Dec. 16, 2008 Pohang APCTP Dec. 16, 28 Pohang APCTP Large electric polarization in high pressure synthesized orthorhombic manganites RMnO 3 (R=Ho,Tm,Yb and Lu) by using the double-wave PE loop measurements Yisheng Chai, Y. S. Yang,

More information

What so special about LaAlO3/SrTiO3 interface? Magnetism, Superconductivity and their coexistence at the interface

What so special about LaAlO3/SrTiO3 interface? Magnetism, Superconductivity and their coexistence at the interface What so special about LaAlO3/SrTiO3 interface? Magnetism, Superconductivity and their coexistence at the interface Pramod Verma Indian Institute of Science, Bangalore 560012 July 24, 2014 Pramod Verma

More information

A model of magnetic order in hexagonal HoMnO 3

A model of magnetic order in hexagonal HoMnO 3 IOP PUBLISHING JOURNAL OF PHYSICS: CONDENSED MATTER J. Phys.: Condens. Matter (010) 1601 (5pp) doi:10.1088/0953-8984//16/1601 FAST TRACK COMMUNICATION A model of magnetic order in hexagonal HoMnO 3 S G

More information

Doping effects on the crystal structural, magnetic, and dielectric properties of multiferroic hexagonal RMnO3 (R = Er and Ho)

Doping effects on the crystal structural, magnetic, and dielectric properties of multiferroic hexagonal RMnO3 (R = Er and Ho) University of Wollongong Research Online University of Wollongong Thesis Collection University of Wollongong Thesis Collections 2010 Doping effects on the crystal structural, magnetic, and dielectric properties

More information

MAGNETIZATION AND POLARIZATION PROFILE IN PML-TYPE MAGNETOELECTRIC MULTIFERROICS WITH CANTED SPIN SYSTEM

MAGNETIZATION AND POLARIZATION PROFILE IN PML-TYPE MAGNETOELECTRIC MULTIFERROICS WITH CANTED SPIN SYSTEM Berkala Fisika ISSN : 1410-9662 Vol. 15, No. 1, Januari 2012, hal 27-32 MAGNETIZATION AND POLARIZATION PROFILE IN PML-TYPE MAGNETOELECTRIC MULTIFERROICS WITH CANTED SPIN SYSTEM Vincensius Gunawan [1] and

More information

Competing Ferroic Orders The magnetoelectric effect

Competing Ferroic Orders The magnetoelectric effect Competing Ferroic Orders The magnetoelectric effect Cornell University I would found an institution where any person can find instruction in any study. Ezra Cornell, 1868 Craig J. Fennie School of Applied

More information

doi: /PhysRevLett

doi: /PhysRevLett doi: 1.113/PhysRevLett.9.17 PRL 9, 17 (7) 5 JANUARY 7 Optical Control of the Magnetic Anisotropy of Ferromagnetic Bilayered Manganites S. Tomimoto, 1 M. Matsubara, 1 T. Ogasawara, 1 H. Okamoto, 1, T. Kimura,

More information

Unidirectional light propagation in multiferroics and multi-antiferroics

Unidirectional light propagation in multiferroics and multi-antiferroics Unidirectional light propagation in multiferroics and multi-antiferroics István Kézsmárki Department of Physics, Budapest University of Technology and Economics Experimental Physics V, Center for Electronic

More information

Holcomb Group Capabilities

Holcomb Group Capabilities Holcomb Group Capabilities Synchrotron Radiation & Ultrafast Optics West Virginia University mikel.holcomb@mail.wvu.edu The Physicists New Playground The interface is the device. - Herbert Kroemer, beginning

More information

Ferroelectricity, Magnetism, and Multiferroicity. Kishan K. Sinha Xu Lab Department of Physics and astronomy University of Nebraska-Lincoln

Ferroelectricity, Magnetism, and Multiferroicity. Kishan K. Sinha Xu Lab Department of Physics and astronomy University of Nebraska-Lincoln Ferroelectricity, Magnetism, and Multiferroicity Kishan K. Sinha Xu Lab Department of Physics and astronomy University of Nebraska-Lincoln Magnetism, Ferroelectricity, and Multiferroics Magnetism o Spontaneous

More information

Toward Electric Control of Magnetism

Toward Electric Control of Magnetism Toward Electric Control of Magnetism Collaorators Yoshi Tokura Dept of Appl hys, Univ Tokyo Correlated Electron Research Center (CERC), AIST and ERATO Multiferroics roject,jst Univ. Tokyo Y. Yamasaki,

More information

arxiv: v1 [cond-mat.str-el] 4 Apr 2007

arxiv: v1 [cond-mat.str-el] 4 Apr 2007 TbMn 2O 5 Non-resonant and Resonant X-ray Scattering Studies on Multiferroic TbMn 2 O 5 arxiv:0704.0533v1 [cond-mat.str-el] 4 Apr 2007 J. Koo 1, C. Song 1, S. Ji 1, J.-S. Lee 1, J. Park 1, T.-H. Jang 1,

More information

ON THE ROTATING MAGNETOCALORIC EFFECT IN MULTIFERROIC RMn 2 O 5 COMPOUNDS

ON THE ROTATING MAGNETOCALORIC EFFECT IN MULTIFERROIC RMn 2 O 5 COMPOUNDS ON THE ROTATING MAGNETOCALORIC EFFECT IN MULTIFERROIC RMn 2 O 5 COMPOUNDS M. Balli *, S. Mansouri, B. Roberge, S. Jandl, P. Fournier (a,b), D. Z. Dimitrov (c,d) Département de Physique,Université de Sherbrooke,J1K

More information

Nanoxide electronics

Nanoxide electronics Nanoxide electronics Alexey Kalabukhov Quantum Device Physics Laboratory MC2, room D515 Alexei.kalaboukhov@chalmers.se Playing Lego with oxide materials: G. Rijnders, D.H.A. Blank, Nature 433, 369 (2005)

More information

Magnetic Materials. The inductor Φ B = LI (Q = CV) = L I = N Φ. Power = VI = LI. Energy = Power dt = LIdI = 1 LI 2 = 1 NΦ B capacitor CV 2

Magnetic Materials. The inductor Φ B = LI (Q = CV) = L I = N Φ. Power = VI = LI. Energy = Power dt = LIdI = 1 LI 2 = 1 NΦ B capacitor CV 2 Magnetic Materials The inductor Φ B = LI (Q = CV) Φ B 1 B = L I E = (CGS) t t c t EdS = 1 ( BdS )= 1 Φ V EMF = N Φ B = L I t t c t B c t I V Φ B magnetic flux density V = L (recall I = C for the capacitor)

More information

MAGNETIC MATERIALS. Fundamentals and device applications CAMBRIDGE UNIVERSITY PRESS NICOLA A. SPALDIN

MAGNETIC MATERIALS. Fundamentals and device applications CAMBRIDGE UNIVERSITY PRESS NICOLA A. SPALDIN MAGNETIC MATERIALS Fundamentals and device applications NICOLA A. SPALDIN CAMBRIDGE UNIVERSITY PRESS Acknowledgements 1 Review of basic magnetostatics 1.1 Magnetic field 1.1.1 Magnetic poles 1.1.2 Magnetic

More information

Multi-Purpose Nonlinear Optical Microscope. Principle and its Applications to Polar Thin Film Observation

Multi-Purpose Nonlinear Optical Microscope. Principle and its Applications to Polar Thin Film Observation Multi-Purpose Nonlinear Optical Microscope. Principle and its Applications to Polar Thin Film Observation Y. Uesu, N. Kato Department of Physics, Waseda University 3 4 1 Okubo, Shinjuku-ku, Tokyo 169-8555,

More information

8 SCIENTIFIC HIGHLIGHT OF THE MONTH: First Principles Studies of Multiferroic Materials. First Principles Studies of Multiferroic Materials

8 SCIENTIFIC HIGHLIGHT OF THE MONTH: First Principles Studies of Multiferroic Materials. First Principles Studies of Multiferroic Materials 8 SCIENTIFIC HIGHLIGHT OF THE MONTH: First Principles Studies of Multiferroic Materials First Principles Studies of Multiferroic Materials Silvia Picozzi 1 and Claude Ederer 2 1 Consiglio Nazionale delle

More information

Reviewers' comments: Reviewer #1 (Remarks to the Author):

Reviewers' comments: Reviewer #1 (Remarks to the Author): Reviewers' comments: Reviewer #1 (Remarks to the Author): The authors studied the origin of magnetically-driven ferroelectric order in ABO3 perovskite oxides with magnetic A and B cations that order in

More information

Magnetic ordering, magnetic anisotropy and the mean-field theory

Magnetic ordering, magnetic anisotropy and the mean-field theory Magnetic ordering, magnetic anisotropy and the mean-field theory Alexandra Kalashnikova kalashnikova@mail.ioffe.ru Ferromagnets Mean-field approximation Curie temperature and critical exponents Magnetic

More information

arxiv: v2 [cond-mat.mtrl-sci] 8 Jun 2018

arxiv: v2 [cond-mat.mtrl-sci] 8 Jun 2018 Relationship between crystal structure and multiferroic orders in orthorhombic perovskite manganites arxiv:1805.02172v2 [cond-mat.mtrl-sci] 8 Jun 2018 Natalya S. Fedorova, 1, Yoav William Windsor, 2 Christoph

More information

Experimental observation of ferrielectricity in multiferroic DyMn 2 O 5 : revisiting the electric polarization

Experimental observation of ferrielectricity in multiferroic DyMn 2 O 5 : revisiting the electric polarization Experimental observation of ferrielectricity in multiferroic DyMn 2 O 5 : revisiting the electric polarization Z. Y. Zhao 1, M. F. Liu 1, X. Li 1, L. Lin 1, Z. B. Yan 1, S. Dong 2, and J. M. Liu a) 1 Laboratory

More information

Ultrafast dynamics in multiferroics HoMnO 3 revealed by fs spectroscopy. Chih Wei Luo ( 羅志偉 )

Ultrafast dynamics in multiferroics HoMnO 3 revealed by fs spectroscopy. Chih Wei Luo ( 羅志偉 ) Ultrafast dynamics in multiferroics HoMnO 3 revealed by fs spectroscopy Chih Wei Luo ( 羅志偉 ) Outline Introduction of femtosecond (fs) laser pulses Ultrafast dynamics in multiferroics HoMnO 3 Summary I

More information

Magnetoelectric Control of Domain Walls in a Ferrite Garnet Film

Magnetoelectric Control of Domain Walls in a Ferrite Garnet Film Magnetoelectric Control of Domain Walls in a Ferrite Garnet Film A.S. Logginov, G.A. Meshkov, V.A. Nikolaev, A.P. Pyatakov * Physics Department, M.V. Lomonosov MSU, Moscow, Russia, 119992; and A.K. Zvezdin

More information

Spin-Charge Coupling in Transition Metal Vanadates

Spin-Charge Coupling in Transition Metal Vanadates Spin-Charge Coupling in Transition Metal Vanadates Gavin Lawes Wayne State University September 19 th, 2013 Wayne State University Projects 1. Magnetoelectric materials 2. Magnetism in semiconductors 3.

More information

Fe Co Si. Fe Co Si. Ref. p. 59] d elements and C, Si, Ge, Sn or Pb Alloys and compounds with Ge

Fe Co Si. Fe Co Si. Ref. p. 59] d elements and C, Si, Ge, Sn or Pb Alloys and compounds with Ge Ref. p. 59] 1.5. 3d elements and C, Si, Ge, Sn or Pb 7 1.75 1.50 Co Si 0.8 0. 3.50 3.5 Co Si 0.8 0. H cr Magnetic field H [koe] 1.5 1.00 0.75 0.50 0.5 C C IF "A" P Frequency ωγ / e [koe] 3.00.75.50.5.00

More information

Chapter 1. General Introduction. This chapter presents a brief description of the different categories of magnetism,

Chapter 1. General Introduction. This chapter presents a brief description of the different categories of magnetism, Chapter 1 General Introduction This chapter presents a brief description of the different categories of magnetism, dielectric and ferroelectric properties, and cubic spinel oxides along with magnetoelectric

More information

SUPPLEMENTARY INFORMATION

SUPPLEMENTARY INFORMATION SULEENTARY INFORATION doi: 1.138/nmat2469 Supplementary Information for Composite domain walls in a multiferroic perovskite ferrite Yusuke Tokunaga*, Nobuo Furukawa, Hideaki Sakai, Yasujiro Taguchi, Taka-hisa

More information

Multiferroic phases of Eu 1 x Y x MnO 3

Multiferroic phases of Eu 1 x Y x MnO 3 Multiferroic phases of Eu 1 x Y x MnO 3 J. Hemberger, 1 F. Schrettle, 1 A. Pimenov, 1 P. Lunkenheimer, 1 V. Yu. Ivanov, 2 A. A. Mukhin, 2 A. M. Balbashov, 3 and A. Loidl 1 1 Experimentalphysik V, Center

More information

Recent Developments in Magnetoelectrics Vaijayanti Palkar

Recent Developments in Magnetoelectrics Vaijayanti Palkar Recent Developments in Magnetoelectrics Vaijayanti Palkar Department of Condensed Matter Physics & Materials Science Tata Institute of Fundamental Research Mumbai 400 005, India. Tata Institute of Fundamental

More information

Magnetic Circular Dichroism spectroscopy in epitaxial La 0.7 Sr 0.3 MnO 3 thin films

Magnetic Circular Dichroism spectroscopy in epitaxial La 0.7 Sr 0.3 MnO 3 thin films Magnetic Circular Dichroism spectroscopy in epitaxial La 0.7 Sr 0.3 MnO 3 thin films T. K. Nath 1 and J. R. Neal 2, G. A. Gehring 2 1 Dept. of Physics and Meteorology, Indian Institute Technology of Kharagpur,

More information

SUPPLEMENTARY INFORMATION

SUPPLEMENTARY INFORMATION SUPPLEMENTARY INFORMATION Reversible Electric Control of Exchange Bias in a Multiferroic Field Effect Device S. M. Wu 1, 2, Shane A. Cybart 1, 2, P. Yu 1, 2, M. D. Abrodos 1, J. Zhang 1, R. Ramesh 1, 2

More information

Electric field effects on magnetotransport properties of multiferroic Py/YMnO 3 /Pt heterostructures

Electric field effects on magnetotransport properties of multiferroic Py/YMnO 3 /Pt heterostructures Electric field effects on magnetotransport properties of multiferroic Py/YMnO 3 /Pt heterostructures V. Laukhin 1,2, X. Martí 1, V. Skumryev 2,3, D. Hrabovsky 1, F. Sánchez 1, M.V. García-Cuenca 4, C.

More information

Studies of the Spin Dynamics of Charge Carriers in Semiconductors and their Interfaces. S. K. Singh, T. V. Shahbazyan, I. E. Perakis and N. H.

Studies of the Spin Dynamics of Charge Carriers in Semiconductors and their Interfaces. S. K. Singh, T. V. Shahbazyan, I. E. Perakis and N. H. Studies of the Spin Dynamics of Charge Carriers in Semiconductors and their Interfaces S. K. Singh, T. V. Shahbazyan, I. E. Perakis and N. H. Tolk Department of Physics and Astronomy Vanderbilt University,

More information

Magnetic Oxides. Gerald F. Dionne. Department of Materials Science and Engineering Massachusetts Institute of Technology

Magnetic Oxides. Gerald F. Dionne. Department of Materials Science and Engineering Massachusetts Institute of Technology Magnetic Oxides Gerald F. Dionne Department of Materials Science and Engineering Massachusetts Institute of Technology Spins in Solids Summer School University of Virginia Charlottesville, VA 21 June 2006

More information

and polarization. Within the last decade, enormous growth has been made in the understanding of bulk BFO.

and polarization. Within the last decade, enormous growth has been made in the understanding of bulk BFO. SYNOPSIS The term multiferroics has been coined to describe materials in which two or all three ferroic orders, i.e. ferromagnetism, ferroelectricity and ferroelasticity occur in the same phase [1]. Herein,

More information

arxiv: v1 [cond-mat.str-el] 26 Aug 2009

arxiv: v1 [cond-mat.str-el] 26 Aug 2009 Local magnetism and magnetoelectric effect in HoMnO 3 studied with muon-spin relaxation H.J. Lewtas, T. Lancaster, P.J. Baker, S.J. Blundell, and D. Prabhakaran Oxford University Department of Physics,

More information

Electric field control of magnetization using AFM/FM interfaces. Xiaoshan Xu

Electric field control of magnetization using AFM/FM interfaces. Xiaoshan Xu Electric field control of magnetization using AFM/FM interfaces Xiaoshan Xu Magnetoelectric effects α = μ 0 M E H M H = 0, E = 0 = 0 (General magnetoelectrics) M H = 0, E = 0 0, P H = 0, E = 0 0, (Multiferroics)

More information

Electronic Higher Multipoles in Solids

Electronic Higher Multipoles in Solids Electronic Higher Multipoles in Solids Yoshio Kuramoto Department of Physics, Tohoku University Outline Elementary examples of multiple moments Role of multipole moments in solids Case studies octupole

More information

μ (vector) = magnetic dipole moment (not to be confused with the permeability μ). Magnetism Electromagnetic Fields in a Solid

μ (vector) = magnetic dipole moment (not to be confused with the permeability μ). Magnetism Electromagnetic Fields in a Solid Magnetism Electromagnetic Fields in a Solid SI units cgs (Gaussian) units Total magnetic field: B = μ 0 (H + M) = μ μ 0 H B = H + 4π M = μ H Total electric field: E = 1/ε 0 (D P) = 1/εε 0 D E = D 4π P

More information

J 12 J 23 J 34. Driving forces in the nano-magnetism world. Intra-atomic exchange, electron correlation effects: Inter-atomic exchange: MAGNETIC ORDER

J 12 J 23 J 34. Driving forces in the nano-magnetism world. Intra-atomic exchange, electron correlation effects: Inter-atomic exchange: MAGNETIC ORDER Driving forces in the nano-magnetism world Intra-atomic exchange, electron correlation effects: LOCAL (ATOMIC) MAGNETIC MOMENTS m d or f electrons Inter-atomic exchange: MAGNETIC ORDER H exc J S S i j

More information

Chapter 8 Magnetic Resonance

Chapter 8 Magnetic Resonance Chapter 8 Magnetic Resonance 9.1 Electron paramagnetic resonance 9.2 Ferromagnetic resonance 9.3 Nuclear magnetic resonance 9.4 Other resonance methods TCD March 2007 1 A resonance experiment involves

More information

Neutron scattering a probe for multiferroics and magnetoelectrics

Neutron scattering a probe for multiferroics and magnetoelectrics 1 Neutron scattering a probe for multiferroics and magnetoelectrics V. Simonet Institut Néel, CNRS/UJF, Grenoble, France Outline of the lecture 2 The neutron as a probe of condensed matter Properties Sources

More information

Introduction to Magnetoelectric Multiferroics. Kee Hoon Kim

Introduction to Magnetoelectric Multiferroics. Kee Hoon Kim Introduction to Magnetoelectric Multiferroics Kee oon Kim Center for Strongly Correlated Material Research & School of Physics, Seoul National University, South Korea Outline 1. What is magnetoelectrics

More information

Basics of electromagnetic response of materials

Basics of electromagnetic response of materials Basics of electromagnetic response of materials Microscopic electric and magnetic field Let s point charge q moving with velocity v in fields e and b Force on q: F e F qeqvb F m Lorenz force Microscopic

More information

Supplementary Figure 1: Spin noise spectra of 55 Mn in bulk sample at BL =10.5 mt, before subtraction of the zero-frequency line. a, Contour plot of

Supplementary Figure 1: Spin noise spectra of 55 Mn in bulk sample at BL =10.5 mt, before subtraction of the zero-frequency line. a, Contour plot of 1 Supplementary Figure 1: Spin noise spectra of 55 Mn in bulk sample at BL =10.5 mt, before subtraction of the zero-frequency line. a, Contour plot of the spin noise spectra calculated with Eq. (2) for

More information

Interface ferromagnetism and orbital reconstruction in BiFeO 3 -

Interface ferromagnetism and orbital reconstruction in BiFeO 3 - Interface ferromagnetism and orbital reconstruction in BiFeO 3 - La 0.7 Sr 0.3 MnO 3 heterostructures P. Yu 1, J. -S. Lee 2, S. Okamoto 3, M. D. Rossell 4, M. Huijben 1,5, C. -H. Yang 1, Q. He 1, J. -X.

More information

Electric-field control of magnetic domain wall motion and local magnetization reversal

Electric-field control of magnetic domain wall motion and local magnetization reversal Electric-field control of magnetic domain wall motion and local magnetization reversal Tuomas H. E. Lahtinen, Kévin J. A. Franke and Sebastiaan van Dijken* NanoSpin, Department of Applied Physics, Aalto

More information

Nanoxide electronics

Nanoxide electronics Nanoxide electronics Alexey Kalabukhov Quantum Device Physics Laboratory MC2, room D515 Alexei.kalaboukhov@chalmers.se Playing Lego with oxide materials: G. Rijnders, D.H.A. Blank, Nature 433, 369 (2005)

More information

SPIN-CHARGE-LATTICE COUPLING IN MULTIFERROICS AND STRAINED FERROELECTRICS

SPIN-CHARGE-LATTICE COUPLING IN MULTIFERROICS AND STRAINED FERROELECTRICS The Pennsylvania State University The Graduate School Department of Materials Science and Engineering SPIN-CHARGE-LATTICE COUPLING IN MULTIFERROICS AND STRAINED FERROELECTRICS A Dissertation in Materials

More information

SUPPLEMENTARY NOTE 1: ANISOTROPIC MAGNETORESISTANCE PHE-

SUPPLEMENTARY NOTE 1: ANISOTROPIC MAGNETORESISTANCE PHE- SUPPLEMENTARY NOTE 1: ANISOTROPIC MAGNETORESISTANCE PHE- NOMENOLOGY In the main text we introduce anisotropic magnetoresistance (AMR) in analogy to ferromagnets where non-crystalline and crystalline contributions

More information

Phonon-Magnon Coupling in Frustrated and Multiferroic h-ymno 3

Phonon-Magnon Coupling in Frustrated and Multiferroic h-ymno 3 FACULTY OF SCIENCE UNIVERSITY OF COPENHAGEN Master s Thesis in Solid State Physics Phonon-Magnon Coupling in Frustrated and Multiferroic h-ymno 3 Author: Turi K. Schäffer Supervisor: Kim Lefmann June 3,

More information

THz and infrared spectroscopy in magnetoelectric materials

THz and infrared spectroscopy in magnetoelectric materials Sándor Bordács Budapest University of Technology, Budapest, Hungary THz and infrared spectroscopy in magnetoelectric materials Outline: Dynamical magnetoelectric coupling Multiferroic properties of melilites

More information

Supplementary Materials for

Supplementary Materials for advances.sciencemag.org/cgi/content/full/2/1/e151117/dc1 Supplementary Materials for Quantum Hall effect in a bulk antiferromagnet EuMni2 with magnetically confined two-dimensional Dirac fermions Hidetoshi

More information

CHAPTER 2 MAGNETISM. 2.1 Magnetic materials

CHAPTER 2 MAGNETISM. 2.1 Magnetic materials CHAPTER 2 MAGNETISM Magnetism plays a crucial role in the development of memories for mass storage, and in sensors to name a few. Spintronics is an integration of the magnetic material with semiconductor

More information

Magnetism in low dimensions from first principles. Atomic magnetism. Gustav Bihlmayer. Gustav Bihlmayer

Magnetism in low dimensions from first principles. Atomic magnetism. Gustav Bihlmayer. Gustav Bihlmayer IFF 10 p. 1 Magnetism in low dimensions from first principles Atomic magnetism Gustav Bihlmayer Institut für Festkörperforschung, Quantum Theory of Materials Gustav Bihlmayer Institut für Festkörperforschung

More information

10. Magnetoelectric Switching

10. Magnetoelectric Switching Beyond CMOS computing 10. Magnetoelectric Switching Dmitri Nikonov Dmitri.e.nikonov@intel.com 1 Outline Magnetoelectric effect to improve spintronic switching Review of experiments on magnetoelectric switching:

More information

Linear temperature dependence of electron spin resonance linewidths in La 0.7 Ca 0.3 MnO 3 and YBaMn 2 O 6

Linear temperature dependence of electron spin resonance linewidths in La 0.7 Ca 0.3 MnO 3 and YBaMn 2 O 6 Linear temperature dependence of electron spin resonance linewidths in La 0.7 Ca 0.3 MnO 3 and YBaMn 2 O 6 Abstract D. L. Huber Department of Physics, University of Wisconsin-Madison, Madison, WI 53706

More information

2008,, Jan 7 All-Paid US-Japan Winter School on New Functionalities in Glass. Controlling Light with Nonlinear Optical Glasses and Plasmonic Glasses

2008,, Jan 7 All-Paid US-Japan Winter School on New Functionalities in Glass. Controlling Light with Nonlinear Optical Glasses and Plasmonic Glasses 2008,, Jan 7 All-Paid US-Japan Winter School on New Functionalities in Glass Photonic Glass Controlling Light with Nonlinear Optical Glasses and Plasmonic Glasses Takumi FUJIWARA Tohoku University Department

More information

The exchange interaction between FM and AFM materials

The exchange interaction between FM and AFM materials Chapter 1 The exchange interaction between FM and AFM materials When the ferromagnetic (FM) materials are contacted with antiferromagnetic (AFM) materials, the magnetic properties of FM materials are drastically

More information

The effect of Coulomb correlation and magnetic ordering on the electronic structure of two hexagonal phases of ferroelectromagnetic YMnO 3

The effect of Coulomb correlation and magnetic ordering on the electronic structure of two hexagonal phases of ferroelectromagnetic YMnO 3 J. Phys.: Condens. Matter 1 () 4947 4958. Printed in the UK PII: S953-8984()1985- The effect of Coulomb correlation and magnetic ordering on the electronic structure of two hexagonal phases of ferroelectromagnetic

More information

arxiv: v2 [cond-mat.str-el] 6 Dec 2011

arxiv: v2 [cond-mat.str-el] 6 Dec 2011 Polar Antiferromagnets Produced with Orbital-Order arxiv:1112.0882v2 [cond-mat.str-el] 6 Dec 2011 Naoki Ogawa, 1,2, Yasushi Ogimoto, 1,2,3 Yoshiaki Ida, 4 Yusuke Nomura, 4 Ryotaro Arita, 4,5 and Kenjiro

More information

100 Tesla multishot. 60 Tesla long pulse. Los Alamos branch of the Magnet Lab Pulsed magnetic fields

100 Tesla multishot. 60 Tesla long pulse. Los Alamos branch of the Magnet Lab Pulsed magnetic fields Los Alamos branch of the Magnet Lab Pulsed magnetic fields 100 Tesla multishot 100 80 60 40 20 Magnetic field (T) 0 0 0.5 1 1.5 2 2.5 3 time (s) 60 Tesla long pulse 60 40 20 0 0 1 2 3 time (s) Magnetization,

More information

Examination paper for TFY4245 Faststoff-fysikk, videregående kurs

Examination paper for TFY4245 Faststoff-fysikk, videregående kurs Side 1 av 7 Department of Physics Examination paper for TFY445 Faststoff-fysikk, videregående kurs Academic contact during examination: Ragnvald Mathiesen Phone: 976913 Examination date: 08.06.017 Examination

More information

Lecture contents. Magnetic properties Diamagnetism Band paramagnetism Atomic paramagnetism Ferromagnetism. Molecular field theory Exchange interaction

Lecture contents. Magnetic properties Diamagnetism Band paramagnetism Atomic paramagnetism Ferromagnetism. Molecular field theory Exchange interaction 1 Lecture contents Magnetic properties Diamagnetism and paramagnetism Atomic paramagnetism Ferromagnetism Molecular field theory Exchange interaction NNSE 58 EM Lecture #1 [SI] M magnetization or magnetic

More information

Chapter 8: Magnetic and Electrical Properties

Chapter 8: Magnetic and Electrical Properties Chapter 8: Magnetic and Electrical Properties 1 In solids, properties of individual atoms can interact cooperatively to produce effects not found in fluids. Magnetic Susceptibility: magnetic field produces

More information

Angular dependence of the magnetization reversal in exchange biased Fe/MnF 2. Elke Arenholz

Angular dependence of the magnetization reversal in exchange biased Fe/MnF 2. Elke Arenholz Angular dependence of the magnetization reversal in exchange biased Fe/MnF 2 Elke Arenholz Advanced Light Source, Lawrence Berkeley National Laboratory, Berkeley, CA 94720 Kai Liu Department of Physics,

More information

University of Groningen. Orbital ordering and multiferroics Nenert, Gwilherm

University of Groningen. Orbital ordering and multiferroics Nenert, Gwilherm University of Groningen Orbital ordering and multiferroics Nenert, Gwilherm IMPORTANT NOTE: You are advised to consult the publisher's version (publisher's PDF) if you wish to cite from it. Please check

More information

arxiv: v1 [cond-mat.mtrl-sci] 21 May 2012

arxiv: v1 [cond-mat.mtrl-sci] 21 May 2012 Magnetic structure of hexagonal YMnO 3 and LuMnO 3 from a microscopic point of view I. V. Solovyev arxiv:1205.4478v1 [cond-mat.mtrl-sci] 21 May 2012 Computational Materials Science Unit, National Institute

More information

Supplementary Figure 1. Optical and magneto-optical responses for 80 nm diameter particles

Supplementary Figure 1. Optical and magneto-optical responses for 80 nm diameter particles Supplementary Figure 1 Optical and magneto-optical responses for 80 nm diameter particles The schematics on the left illustrate the direction of incident polarization and the induced dipole moments that

More information

Luigi Paolasini

Luigi Paolasini Luigi Paolasini paolasini@esrf.fr LECTURE 5: MAGNETIC STRUCTURES - Mean field theory and magnetic order - Classification of magnetic structures - Collinear and non-collinear magnetic structures. - Magnetic

More information

Effects of strain on orbital ordering and magnetism at perovskite oxide interfaces: LaMnO 3 ÕSrMnO 3

Effects of strain on orbital ordering and magnetism at perovskite oxide interfaces: LaMnO 3 ÕSrMnO 3 PHYSICAL REVIEW B 78, 5447 8 Effects of strain on orbital ordering and magnetism at perovskite oxide interfaces: LaO 3 Õ 3 B. R. K. Nanda and Sashi Satpathy Department of Physics and Astronomy, University

More information

Magnetism of materials

Magnetism of materials Magnetism of materials 1. Introduction Magnetism and quantum mechanics In the previous experiment, you witnessed a very special case of a diamagnetic material with magnetic susceptibility χχ = 1 (usually

More information

Magnetism and Magnetic Switching

Magnetism and Magnetic Switching Magnetism and Magnetic Switching Robert Stamps SUPA-School of Physics and Astronomy University of Glasgow A story from modern magnetism: The Incredible Shrinking Disk Instead of this: (1980) A story from

More information

Colossal magnetoresistance:

Colossal magnetoresistance: Colossal magnetoresistance: Ram Seshadri (seshadri@mrl.ucsb.edu) The simplest example of magnetoresistance is transverse magnetoresistance associated with the Hall effect: H + + + + + + + + + + E y - -

More information

What happens if a compass needle is held

What happens if a compass needle is held FEATURE ARTICLE THE HOLY GRAIL OF MULTIFERROIC PHYSICS BY ROGÉRIO DE SOUSA THE CROSS-CORRELATION PROBLEM: IS MAGNETISM CONTROLLABLE BY ELECTRIC FIELDS? What happens if a compass needle is held fixed in

More information

The Physics of Ferromagnetism

The Physics of Ferromagnetism Terunobu Miyazaki Hanmin Jin The Physics of Ferromagnetism Springer Contents Part I Foundation of Magnetism 1 Basis of Magnetism 3 1.1 Basic Magnetic Laws and Magnetic Quantities 3 1.1.1 Basic Laws of

More information

Phase Transitions in Relaxor Ferroelectrics

Phase Transitions in Relaxor Ferroelectrics Phase Transitions in Relaxor Ferroelectrics Matthew Delgado December 13, 2005 Abstract This paper covers the properties of relaxor ferroelectrics and considers the transition from the paraelectric state

More information

Multiferroic materials and magnetoelectric physics: symmetry, entanglement, excitation, and

Multiferroic materials and magnetoelectric physics: symmetry, entanglement, excitation, and Advances in Physics ISSN: 0001-8732 (Print) 1460-6976 (Online) Journal homepage: http://www.tandfonline.com/loi/tadp20 Multiferroic materials and magnetoelectric physics: symmetry, entanglement, excitation,

More information

X-Ray Magnetic Dichroism. S. Turchini ISM-CNR

X-Ray Magnetic Dichroism. S. Turchini ISM-CNR X-Ray Magnetic Dichroism S. Turchini SM-CNR stefano.turchini@ism.cnr.it stefano.turchini@elettra.trieste.it Magnetism spin magnetic moment direct exchange: ferro antiferro superexchange 3d Ligand 2p 3d

More information

Local spin-coupled distortions in multiferroic hexagonal HoMnO 3

Local spin-coupled distortions in multiferroic hexagonal HoMnO 3 Local spin-coupled distortions in multiferroic hexagonal HoMnO 3. A. yson, 1,2. Wu, 1 K. H. Ahn, 1,2 S.-B. Kim, 2 and S.-W. Cheong 2 1 Department of Physics, New Jersey Institute of echnology, Newark,

More information

A radical approach to promote multiferroic coupling in double perovskites

A radical approach to promote multiferroic coupling in double perovskites A radical approach to promote multiferroic coupling in double perovskites M.P. Singh 1*, K.D. Truong 1, P. Fournier 1, P. Rauwel 2, E. Rauwel 3, L.P. Carignan 4, and D. Ménard 4 1 Département de Physique

More information

V High frequency magnetic measurements

V High frequency magnetic measurements V High frequency magnetic measurements Rémy Lassalle-Balier What we are doing and why Ferromagnetic resonance CHIMP memory Time-resolved magneto-optic Kerr effect NISE Task 8 New materials Spin dynamics

More information

PECULIARITIES IN THE PROPERTIES OF SOME RARE-EARTH COMPOUNDS STRUCTURES

PECULIARITIES IN THE PROPERTIES OF SOME RARE-EARTH COMPOUNDS STRUCTURES Annuaire de l Universite de Sofia St. Kliment Ohridski, Faculte de Physique, 100, 2007 PECULIARITIES IN THE PROPERTIES OF SOME RARE-EARTH COMPOUNDS WITH ORTHORHOMBIC STRUCTURES VASSIL LOVCHINOV *, ANDREI

More information