(Color-)magnetic flux tubes in dense matter

Similar documents
Quark matter and the high-density frontier. Mark Alford Washington University in St. Louis

Neutron vs. Quark Stars. Igor Shovkovy

Hydrodynamics of the superfluid CFL phase and r-mode instabilities

Condensation of nucleons and quarks: from nuclei to neutron stars and color superconductors

BCS everywhere else: from Atoms and Nuclei to the Cosmos. Gordon Baym University of Illinois

Color superconductivity in quark matter

Gravitational waves from neutron stars: theoretical challenges. Ian Jones University of Southampton IGWM, 17 th May 2017

Sound modes and the two-stream instability in relativistic superfluids

Gravitational Wave emission mechanisms in accreting systems. Brynmor Haskell INAF-Milano 26/11/2009

Massless fermions living in a non-abelian QCD vortex based on arxiv: [hep-ph]

Dynamical onset of superconductivity and retention of magnetic fields in cooling neutron stars

Holographic model of dense matter in neutron stars

Superconducting phases of quark matter

Study of superfluidity in magnetars by van Hoven and Levin

Contents. 1.1 Prerequisites and textbooks Physical phenomena and theoretical tools The path integrals... 9

Gauge invariance of the Abelian dual Meissner effect in pure SU(2) QCD

Matryoshka Skyrmions, Confined Instantons and (P,Q) Torus Knots. Muneto Nitta (Keio Univ.)

The Ginzburg-Landau Theory

Spontaneous electromagnetic superconductivity of vacuum in (very) strong magnetic field

Experiments with an Ultracold Three-Component Fermi Gas

1 Superfluidity and Bose Einstein Condensate

Spontaneous electromagnetic superconductivity of vacuum induced by (very) strong magnetic field

Gauged Cosmic Strings and Superconductor Vortices

The instanton and the phases of QCD

Pattern Formation in the Fractional Quantum Hall Effect

Tests of nuclear properties with astronomical observations of neutron stars

Magnetic Fields in Neutron Stars

CONDENSED MATTER: towards Absolute Zero

VORTICES in SUPERFLUIDS & SUPERCONDUCTORS. CIFAR Q MATERIALS SUMMER SCHOOL (May 14-16, 2012) LECTURE 2 VORTICES

Vortices in superconductors& low temperature STM

Modeling of Magnetisation and Intrinsic Properties of Ideal Type-II Superconductor in External Magnetic Field

FERMION PAIRINGS IN B!

How spin, charge and superconducting orders intertwine in the cuprates

Neutron Star and Superfluidity

Spontaneous electromagnetic superconductivity of QCD QED vacuum in (very) strong magnetic field

Length Scales, Collective Modes, and Type-1.5 Regimes in Three-Band Superconductors

arxiv: v3 [hep-ph] 22 Sep 2017

Small bits of cold, dense matter

G 2 QCD Neutron Star. Ouraman Hajizadeh in collaboration with Axel Maas. November 30, 2016

Bose-condensed and BCS fermion superfluid states T ~ nano to microkelvin (coldest in the universe)

Vortex States in a Non-Abelian Magnetic Field

BCS: from Atoms and Nuclei to the Cosmos

Quark matter in compact stars: the Constant Sound Speed parameterization

Introduction Critical state models Pinning regimes Kinds of pinning sites HTS Results on YBCO Conclusions. Flux pinning.

Ginzburg-Landau length scales

Gravitational Waves from Neutron Stars

What was the Nobel Price in 2003 given for?

On the Higgs mechanism in the theory of

Superfluid instability in precessing neutron stars

The Magnificent Seven : Strong Toroidal Fields?

Vortex Liquid Crystals in Anisotropic Type II Superconductors

Baruch Rosenstein Nat. Chiao Tung University

Part 1. March 5, 2014 Quantum Hadron Physics Laboratory, RIKEN, Wako, Japan 2

Vortices and vortex states of Rashba spin-orbit coupled condensates

Valence Bonds in Random Quantum Magnets

Nuclear structure IV: Nuclear physics and Neutron stars

The Remarkable Superconducting Stripe Phase of the High Tc Superconductor La2-xBaxCuO4 near x=1/8

Physics 8.861: Advanced Topics in Superfluidity

SUPERFLUID MAGNETARS AND QPO SPECTRUM

The Role Of Magnetic Monopoles In Quark Confinement (Field Decomposition Approach)

For a complex order parameter the Landau expansion of the free energy for small would be. hc A. (9)

Gravitational waves from neutron stars and the nuclear equation of state

Superfluid Density of Neutrons in the Inner Crust of Neutron Stars:

The QCD Equation of State at μ B > 0 from Lattice QCD

Thermal States of Transiently Accreting Neutron Stars in Quiescence

Nuclear Structure for the Crust of Neutron Stars

The maximum mass of neutron star. Ritam Mallick, Institute of Physics

From BEC to BCS. Molecular BECs and Fermionic Condensates of Cooper Pairs. Preseminar Extreme Matter Institute EMMI. and

The Color Flavor Locked Phase in the Chromodielectric Model and Quark Stars

Phase Transitions in High Density QCD. Ariel Zhitnitsky University of British Columbia Vancouver

Quantum Theory of Matter

Possible Color Octet Quark-Anti-Quark Condensate in the. Instanton Model. Abstract

smaller mfp coh L type II

Phonon contribution to the thermal conductivity in neutron star core

QCD at finite density with Dyson-Schwinger equations

Missing pieces in the r-mode puzzle

Neutron Star Structure

Dynamics of Second Order Phase Transitions and Formation of Topological Defects. W. H. Zurek Los Alamos

Superconductivity and Quantum Coherence

The EOS of neutron matter, and the effect of Λ hyperons to neutron star structure

There are two main theories in superconductivity: Ginzburg-Landau Theory. Outline of the Lecture. Ginzburg-Landau theory

Transport theory and low energy properties of colour superconductors

MAGNETARS AS COOLING NEUTRON STARS

SHANGHAI JIAO TONG UNIVERSITY LECTURE

Neutron Star Cooling. Dany Page. Instituto de Astronomía Universidad Nacional Autónoma de México

Dense matter equation of state and rotating neutron stars

THE NEUTRON STAR CRUST AND SURFACE WORKSHOP. Quantum calculation of nucleus-vortex interaction in the inner crust of neutron stars

What's so unusual about high temperature superconductors? UBC 2005

Dense Matter and Neutrinos. J. Carlson - LANL

Nuclear structure I: Introduction and nuclear interactions

The stability of the wall is due to the potential and the gradient balancing each other (Derrick s Theorem). Simple argument: = E grad

QCD Matter under Extreme Conditions

arxiv:hep-ph/ v2 4 May 2001

Nuclear symmetry energy and Neutron star cooling

Critical fields and intermediate state

Anisotropy included in a nanoscale superconductor: Theoretical development

QCD at finite density with Dyson-Schwinger equations

Inverse magnetic catalysis in dense (holographic) matter

Two-dimensional heavy fermions in Kondo topological insulators

Transcription:

Seattle, Apr 17, 2018 1 Andreas Schmitt Mathematical Sciences and STAG Research Centre University of Southampton Southampton SO17 1BJ, United Kingdom (Color-)magnetic flux tubes in dense matter A. Haber, A. Schmitt, PRD 95, 116016 (2017); EPJ Web Conf. 137, 09003 (2017) A. Haber, A. Schmitt, arxiv:1712.08587 [hep-ph] two-component superconductors: unconventional type-i/type-ii behavior (flux tube clusters) flux tubes and domain walls in superconducting quark matter

Seattle, Apr 17, 2018 2 Reminder: type-i/type-ii superconductivity flux tube ξ λ condensate magnetic field B Ginzburg-Landau parameter κ = λ ξ radius Η c2 normal type-ii superconductivity for κ > 1/ 2: flux tube lattice for 1 < H < 2 A.A. Abrikosov, Soviet Physics JETP 5, 1174 (1957) flux tubes Η c1 Η c Meissner κ H

Seattle, Apr 17, 2018 3 Two-component superconductors Ginzburg-Landau potential for two complex scalar fields with electric charges q 1, q 2 (neutron/proton: q 1 = 2e, q 2 = 0) U = B2 2 + ] [ ( + iq i A)φ i 2 µ 2 i φ i 2 + λ i φ i 4 i=1,2 + 2h φ 1 2 φ 2 2 further extensions: derivative coupling ( entrainment ) M. G. Alford, G. Good, PRB 78, 024510 (2008) A. Haber, A. Schmitt, PRD 95, 116016 (2017) color superconductor: 3 scalar fields φ 1, φ 2, φ 3 and 3 gauge fields A. Haber, A. Schmitt, arxiv:1712.08587 [hep-ph]

Seattle, Apr 17, 2018 4 Two-component superconductors in neutron star cores T c inner crust core core outer crust neutron (singlet) proton H c1 H c2 H c T c neutron (triplet) κ 2 = 1/2 density density density-dependent κ type-i/type-ii transition in the core? effect of coupling to superfluid on type-i/type-ii transition?

Seattle, Apr 17, 2018 5 Critical magnetic fields in a two-component system compute flux tube profiles and flux tube interaction attractive long-distance interaction in type-ii regime isolated superconductor superconductor coupled to a superfluid 2 flux tubes 1 κ H H' c2 flux tubes 1 2 H' c1 small- ν approximation (our calculation) 2 flux tubes 1 H' c2 H' c1 complete solution (conjecture) numerical calculation supports conjecture A. Haber, D. Müller, preliminary results first-order phase transition allows for flux tube clusters see also type-1.5 superconductors J. Carlström, J. Garaud, E. Babaev, PRB 84, 134515 (2011)

Seattle, Apr 17, 2018 6 Quark matter in a magnetic field color-superconducting quark matter in a magnetic field use perturbative results for Ginzburg-Landau parameters µ, λ, h H [μ 2 /λ 1/2 ] 3.0 2.5 2.0 1.5 1.0 0.5 unpaired CFL 2SC h/λ=-0.5 0.0 0.0 0.2 0.4 0.6 0.8 1.0 strong coupling constant g d Color-flavor locked (CFL) phase 2SC phase φ 1 = φ 2 = φ3 φ paired: 1 = φ 2= 0 φ unpaired: 3= 0 s d s d d u s d u s u s u u d u s

Seattle, Apr 17, 2018 7 Magnetic defects in CFL can be superfluid vortices and magnetic flux tubes at the same time! CFL line defects (n 1, n 2, n 3 ) Γ [π/3µ q ] Φ 3 [π/g] Φ8 [π/ g 8 ] Global vortex (n, n, n) n 0 0 Forbes, Zhitnitsky (2002) Semi-superfluid vortex (0, 0, n) n 3 Balachandran, Digal, Matsuura (2006) Magnetic flux tube T 112 (n, n, 2n) 0 0 2n Iida (2005) Magnetic flux tube T 101 (n, 0, n) 0 n n Haber, Schmitt (2017) winding numbers n 1, n 2, n 3 for three scalar fields baryon circulation Γ n 1 + n 2 + n 3 (color-)magnetic flux Φ 8 n 1 + n 2 2n 3 photon/gluon mixing: Meissner effect for B 8 = B 8 cos θ + B sin θ 0 2n 3

Seattle, Apr 17, 2018 8 Flux tube profiles 1.4 1.2 1.0 0.8 f 1 =f 2 f 3 T 112 1.4 1.2 1.0 0.8 f 3 f 2 f 1 T 101 0.6 0.6 0.4 0.4 B 8 0.2 B 8 0.2 B 3 0.0 0 2 4 6 8 10 flux tube with unpaired core R 0.0 0 2 4 6 8 10 R flux tube with 2SC core additional B 3 field (cost in free energy) non-vanishing condensate in core (gain in free energy)

Seattle, Apr 17, 2018 9 Phase diagram including flux tubes in neutron stars µ q 400 MeV g 3.5 weak-coupling methods and phenomenological models: T c (10 50) MeV H [μ 2 /λ 1/2 ] 15 10 5 NOR 2SC CFL 2 1 (D) 1 (T 1 ) 2 1 (T 112 ) 1 (T 101 ) 0 0.00 0.02 0.04 0.06 0.08 0.10 0.12 0.14 T c /μ q type-ii regime for sufficiently large T c /µ q type-i/type-ii transition complicated (multi-component structure!)

Seattle, Apr 17, 2018 10 Phase diagram including flux tubes in neutron stars µ q 400 MeV g 3.5 weak-coupling methods and phenomenological models: T c (10 50) MeV H [μ 2 /λ 1/2 ] 15 10 5 NOR 2SC CFL 2 1 (D) 1 (T 1 ) 2 1 (T 112 ) 1 (T 101 ) 0 0.00 0.02 0.04 0.06 0.08 0.10 0.12 0.14 T c /μ q CFL flux tubes with 2SC core (T 101 ) preferred critical fields H 10 19 G H NS, however: creation of flux tubes through cooling into superconducting phase? 2SC domain walls (D) preferred over ordinary 2SC flux tubes (T 1 ) for sufficiently large T c /µ q

Seattle, Apr 17, 2018 11 Open questions 1. type-i/type-ii transition in multi-component superconductors Do flux tube clusters exist in (a layer of) a neutron star? Do they affect transport properties/deformability? 2. magnetic flux tubes (and superfluid vortices) in quark matter What happens if CFL matter is rotated and placed into a magnetic field? Are there vortices and flux tubes (misaligned), like in neutron/proton matter? Do flux tubes form in the magnetic field evolution of a neutron star? Does the (color-)flux tube lattice...... sustain magnetic mountains? ɛ CFL 10 7 vs ɛ proton 10 9 K. Glampedakis, D. I. Jones and L. Samuelsson, PRL 109, 081103 (2012)... affect the tidal deformability of the star?