Lecture 8 Con,nuous- Wave Laser*

Size: px
Start display at page:

Download "Lecture 8 Con,nuous- Wave Laser*"

Transcription

1 Lecture 8 Con,nuous- Wave Laser* Min Yan Op,cs and Photonics, KTH 24/04/15 1 * Some figures and texts belong to: O. Svelto, Principles of Lasers, 5th Ed., Springer.

2 Reading Principles of Lasers (5th Ed.): Chapter 7. Skip: 7.3.2, 7.4.2, Squeeze: 7.9, /04/15 2

3 Laser Pump E in E out Mirror 1 Gain medium Mirror 2 Rate equa,on (interplay between N and φ) Threshold condi,ons Steady- state N, φ, P out, η s R 2 for op,mum P out Single- mode selec,on, and tuning 24/04/15 3

4 Contents Content 1. Rate equa,ons 1. Four- level; 2. Quasi- three- level 2. Threshold and steady states 1. Four- level; 2. Quasi- three- level Time Op,mum output coupling 5 4. Single- mode selec,on and tuning Others Frequency- pulling, fluctua,ons 5 Total: 80 24/04/15 4

5 Contents Content 1. Rate equa,ons 1. Four- level; 2. Quasi- three- level 2. Threshold and steady states 1. Four- level; 2. Quasi- three- level Time Op,mum output coupling 5 4. Single- mode selec,on and tuning Others Frequency- pulling, fluctua,ons 5 Total: 80 24/04/15 5

6 Rate equa,ons (4L) S,mulated emission N N 1 =0 1 0 S,mulated emission Assump*ons: Single- mode Pump & laser mode are uniform (space- independent) N 2 : Popula,on inversion (per unit volume) φ: Total photon number B: S,mulated transi,on rate per photon per mode τ: Effec,ve upper- level life,me [radia,ve (Spon.E.)+nonradia,ve] V a : Volume of the mode in the ac,ve region τ c : Cavity photon life,me 24/04/15 6

7 B Laser intensity change aler one round trip L Define single- trip logarithmic loss as l Aler round trip, ΔI becomes A b =V a /l If Divide by Δt (round- trip,me) Round- trip,me: Δt=2L e /c, where L e =L+(n- 1)l Since I φ, by comparison with 2 nd rate eq. V: cavity mode volume 24/04/15 7

8 Rate equa,ons so what? 1. CW characteris,cs Threshold- state condi,on: φ 0, N c Steady- state condi,on: dφ/dt=0, dn/dt=0 2. Transient characteris,cs φ(t) and N(t) can be derived if φ(t=0) and R p (t) are given 3. Output power P out if φ(t) is known 4. Slope efficiency η s, i.e. dp out /dp p To get P out : 24/04/15 8

9 Rate equa,ons (q3l) N N If we define f=σ a /σ e and popula,on inversion N=N 2 - fn 1 4L- case Difference: - Popula,on inversion - S,mulated emission term Similarity: - Same 2 nd equa,on 24/04/15 9

10 Contents Content 1. Rate equa,ons 1. Four- level; 2. Quasi- three- level 2. Threshold and steady states 1. Four- level; 2. Quasi- three- level Time Op,mum output coupling 5 4. Single- mode selec,on and tuning Others Frequency- pulling, fluctua,ons 5 Total: 80 24/04/15 10

11 Threshold state: N c and R cp (4L) Note: Small amount of photons φ i exist due to spontaneous emission In 2 nd equa,on, let dφ/dt=0: Physically: gain=loss In 1 st equa,on, let dn/dt=0, φ 0, and N=N c : 24/04/15 11

12 Steady state: N 0, φ 0, P out, η s (4L) Steady lasing state: constant R p >R cp N In 2 nd equa,on, let dφ/dt=0: In 1 st equa,on, let dn/dt=0, and N=N 0 : N c φ 0 R p =N/τ R p R cp R p The output power N 0 and τ c are known I s : satura,on intensity A b : laser beam cross- sec,on area 24/04/15 12

13 Steady state: N 0, φ 0, P out, η s (4L) Slope efficiency P out dp out =η s dp p Special case: lamp and diode (transverse) pumping (ac,ve medium is uniformly pumped) Since p th P p Transverse efficiency Quantum efficiency Output coupling efficiency Pump efficiency 24/04/15 13 A: cross- sec,onal area of the pumped region of the ac,ve medium

14 Nd:YAG example 1% atomic doping, lamp- pumped Mul,- mode Space- independent model approximately valid P th =2.2kW η s =2.4% N c ions/cm 3 ; N tot = ions/cm 3 ; PI frac,on: 0.04% Q: how to calculate N c, from the figure and other parameters? 24/04/15 14

15 Threshold and steady states (q3l) 24/04/15 15

16 Spa,al- dependent case Pump and laser mode densi,es are not uniform Consequence: Rp, u 2, N are no longer uniform. Threshold condi*ons: P th : depends on w 0, and w p (if longitudinal- diode pumping) or a (if transverse pumping) P out : depends on w 0, and w p or a η s : (especially η t ) depends on w 0, and w p or a 24/04/15 16

17 Contents Content 1. Rate equa,ons 1. Four- level; 2. Quasi- three- level 2. Threshold and steady states 1. Four- level; 2. Quasi- three- level Time Op,mum output coupling 5 4. Single- mode selec,on and tuning Others Frequency- pulling, fluctua,ons 5 Total: 80 24/04/15 17

18 R 2 for op,mum coupling (4L) R 2 γ 2 =- lnr 2 Condi*on: or where Op,mum state: where P mth is the minimum threshold pump power, i.e. when γ 2 =0 24/04/15 18

19 Contents Content 1. Rate equa,ons 1. Four- level; 2. Quasi- three- level 2. Threshold and steady states 1. Four- level; 2. Quasi- three- level Time Op,mum output coupling 5 4. Single- mode selec,on and tuning Others Frequency- pulling, fluctua,ons 5 Total: 80 24/04/15 19

20 Mul,modeness (l,m,n) Fact: Δν << Δν 0 Reason: L=1m Δν=150MHz while Δν 0 =1~300GHz Homogeneously- broadened gain line g=σ(n 2 -N 1 ) Δν Δν 0 ν φ loss R p R cp N Spa,al hole burning R p <R cp Inhomogeneously- broadened gain line Comments: o Spa,al hole burning does not apply for inhomogeneous- line case o Homogeneous- line case: a few modes around the gain center survive Spectral hole burning 24/04/15 20

21 Single- mode selec,on Single transverse- mode selec*on (l,m) o Aperture (Fresnel no. a 2 /(cλ)< 2) o Unstable resonators (if ac,ve rod has large Φ) Single longitudinal- mode selec*on (n) o Shorter cavity? ( ) o Fabry- Pérot etalon o Ring resonators Condi*on: Mode discrimina*on Align by tuning θ Necessary condi,on: L can be relaxed by 2F Mul,ple FPs can be used 24/04/15 21

22 Laser tuning Mode discrimina*on Mo*va*on: To harness wide gain linewidth Δν 0 (dye or vibronic solid- state lasers) To lase at one of the many transi,on lines MIR lasers Tuning: gra,ng rota,on VIS- NIR lasers Tuning: prism rota,on 24/04/15 22

23 Laser tuning Φ=0 24/04/15 23

24 Laser tuning Φ=0 24/04/15 24

25 Laser tuning Φ=0 24/04/15 25

26 Laser tuning Φ=15 24/04/15 26

27 Laser tuning Φ=30 24/04/15 27

28 Laser tuning Φ=45 24/04/15 28

29 Laser tuning Φ=60 24/04/15 29

30 Laser tuning Φ=75 24/04/15 30

31 Laser tuning Φ=90 24/04/15 31

32 Laser tuning Φ=45 Aler 1 st polarizer Incidence is first split into e- and o- rays Aler prop. through plate n e =1.46 n o =1.45 L e =1mm Aler 2 nd polarizer 24/04/15 32

33 Contents Content 1. Rate equa,ons 1. Four- level; 2. Quasi- three- level 2. Threshold and steady states 1. Four- level; 2. Quasi- three- level Time Op,mum output coupling 5 4. Single- mode selec,on and tuning Others Frequency- pulling, fluctua,ons 5 Total: 80 24/04/15 33

34 Others Frequency pulling o Formula is exact for homogeneous line o Very small: ν L ν 0 /1000+ν c Frequency fluctua*on [cavity length: L e =n(l- 1)+n a l] o Long- term (>1s): T, ambient pressure o Short- term (<1s): mirror vibra,on, n or n a change, acous,c wave o Stabiliza,on: passive (isola,on) or ac,ve (feedback system) Intensity noise o Gas: Pp, discharge, cavity o Dye: jet density, bubbles o Solid- state: Pp, cavity o Semiconductor: I bias, E- H recombina,on noise o Reduc,on: feedback system 24/04/15 34

35 Intensity noise 24/04/15 35

36 Contents Content 1. Rate equa,ons 1. Four- level; 2. Quasi- three- level 2. Threshold and steady states 1. Four- level; 2. Quasi- three- level Time Op,mum output coupling 5 4. Tuning and single- mode selec,on Others Frequency- pulling, fluctua,ons 5 Total: 80 24/04/15 36

Lecture 7 Pumping & Popula3on Inversion*

Lecture 7 Pumping & Popula3on Inversion* Lecture 7 Pumping & Popula3on Inversion* Min Yan Op3cs and Photonics, KTH 15/04/16 1 * Some figures and texts belong to: O. Svelto, Principles of Lasers, 5th Ed., Springer. Reading Principles of Lasers

More information

Lecture 5 Op+cal resonators *

Lecture 5 Op+cal resonators * Lecture 5 Op+cal resonators * Min Yan Op+cs and Photonics, KTH 12/04/15 1 * Some figures and texts belong to: O. Svelto, Principles of Lasers, 5th Ed., Springer. Reading Principles of Lasers (5th Ed.):

More information

Laser Physics 5 Inhomogeneous broadening

Laser Physics 5 Inhomogeneous broadening Laser Physics 5 Inhomogeneous broadening Fabien Bretenaker Fabien.Bretenaker@u-psud.fr Laboratoire Aimé Cotton Orsay - France Homogeneous vs Inhomogeneous Homogeneous broadening: all the atoms have the

More information

Quantum Electronics Laser Physics PS Theory of the Laser Oscillation

Quantum Electronics Laser Physics PS Theory of the Laser Oscillation Quantum Electronics Laser Physics PS407 6. Theory of the Laser Oscillation 1 I. Laser oscillator: Overview Laser is an optical oscillator. Resonant optical amplifier whose output is fed back into its input

More information

EE 472 Solutions to some chapter 4 problems

EE 472 Solutions to some chapter 4 problems EE 472 Solutions to some chapter 4 problems 4.4. Erbium doped fiber amplifier An EDFA is pumped at 1480 nm. N1 and N2 are the concentrations of Er 3+ at the levels E 1 and E 2 respectively as shown in

More information

Laser Types Two main types depending on time operation Continuous Wave (CW) Pulsed operation Pulsed is easier, CW more useful

Laser Types Two main types depending on time operation Continuous Wave (CW) Pulsed operation Pulsed is easier, CW more useful Main Requirements of the Laser Optical Resonator Cavity Laser Gain Medium of 2, 3 or 4 level types in the Cavity Sufficient means of Excitation (called pumping) eg. light, current, chemical reaction Population

More information

The Generation of Ultrashort Laser Pulses

The Generation of Ultrashort Laser Pulses The Generation of Ultrashort Laser Pulses The importance of bandwidth More than just a light bulb Two, three, and four levels rate equations Gain and saturation But first: the progress has been amazing!

More information

(b) Spontaneous emission. Absorption, spontaneous (random photon) emission and stimulated emission.

(b) Spontaneous emission. Absorption, spontaneous (random photon) emission and stimulated emission. Lecture 10 Stimulated Emission Devices Lasers Stimulated emission and light amplification Einstein coefficients Optical fiber amplifiers Gas laser and He-Ne Laser The output spectrum of a gas laser Laser

More information

Laser Types Two main types depending on time operation Continuous Wave (CW) Pulsed operation Pulsed is easier, CW more useful

Laser Types Two main types depending on time operation Continuous Wave (CW) Pulsed operation Pulsed is easier, CW more useful What Makes a Laser Light Amplification by Stimulated Emission of Radiation Main Requirements of the Laser Laser Gain Medium (provides the light amplification) Optical Resonator Cavity (greatly increase

More information

S. Blair February 15,

S. Blair February 15, S Blair February 15, 2012 66 32 Laser Diodes A semiconductor laser diode is basically an LED structure with mirrors for optical feedback This feedback causes photons to retrace their path back through

More information

LIST OF TOPICS BASIC LASER PHYSICS. Preface xiii Units and Notation xv List of Symbols xvii

LIST OF TOPICS BASIC LASER PHYSICS. Preface xiii Units and Notation xv List of Symbols xvii ate LIST OF TOPICS Preface xiii Units and Notation xv List of Symbols xvii BASIC LASER PHYSICS Chapter 1 An Introduction to Lasers 1.1 What Is a Laser? 2 1.2 Atomic Energy Levels and Spontaneous Emission

More information

Laser Physics OXFORD UNIVERSITY PRESS SIMON HOOKER COLIN WEBB. and. Department of Physics, University of Oxford

Laser Physics OXFORD UNIVERSITY PRESS SIMON HOOKER COLIN WEBB. and. Department of Physics, University of Oxford Laser Physics SIMON HOOKER and COLIN WEBB Department of Physics, University of Oxford OXFORD UNIVERSITY PRESS Contents 1 Introduction 1.1 The laser 1.2 Electromagnetic radiation in a closed cavity 1.2.1

More information

Stimulated Emission Devices: LASERS

Stimulated Emission Devices: LASERS Stimulated Emission Devices: LASERS 1. Stimulated Emission and Photon Amplification E 2 E 2 E 2 hυ hυ hυ In hυ Out hυ E 1 E 1 E 1 (a) Absorption (b) Spontaneous emission (c) Stimulated emission The Principle

More information

Optoelectronics ELEC-E3210

Optoelectronics ELEC-E3210 Optoelectronics ELEC-E3210 Lecture 3 Spring 2017 Semiconductor lasers I Outline 1 Introduction 2 The Fabry-Pérot laser 3 Transparency and threshold current 4 Heterostructure laser 5 Power output and linewidth

More information

Semiconductor Lasers II

Semiconductor Lasers II Semiconductor Lasers II Materials and Structures Edited by Eli Kapon Institute of Micro and Optoelectronics Department of Physics Swiss Federal Institute oftechnology, Lausanne OPTICS AND PHOTONICS ACADEMIC

More information

Paper Review. Special Topics in Optical Engineering II (15/1) Minkyu Kim. IEEE Journal of Quantum Electronics, Feb 1985

Paper Review. Special Topics in Optical Engineering II (15/1) Minkyu Kim. IEEE Journal of Quantum Electronics, Feb 1985 Paper Review IEEE Journal of Quantum Electronics, Feb 1985 Contents Semiconductor laser review High speed semiconductor laser Parasitic elements limitations Intermodulation products Intensity noise Large

More information

Introduction Fundamentals of laser Types of lasers Semiconductor lasers

Introduction Fundamentals of laser Types of lasers Semiconductor lasers Introduction Fundamentals of laser Types of lasers Semiconductor lasers Is it Light Amplification and Stimulated Emission Radiation? No. So what if I know an acronym? What exactly is Light Amplification

More information

Signal regeneration - optical amplifiers

Signal regeneration - optical amplifiers Signal regeneration - optical amplifiers In any atom or solid, the state of the electrons can change by: 1) Stimulated absorption - in the presence of a light wave, a photon is absorbed, the electron is

More information

LASER. Light Amplification by Stimulated Emission of Radiation

LASER. Light Amplification by Stimulated Emission of Radiation LASER Light Amplification by Stimulated Emission of Radiation Energy Level, Definitions The valence band is the highest filled band The conduction band is the next higher empty band The energy gap has

More information

Chapter-4 Stimulated emission devices LASERS

Chapter-4 Stimulated emission devices LASERS Semiconductor Laser Diodes Chapter-4 Stimulated emission devices LASERS The Road Ahead Lasers Basic Principles Applications Gas Lasers Semiconductor Lasers Semiconductor Lasers in Optical Networks Improvement

More information

Chemistry Instrumental Analysis Lecture 5. Chem 4631

Chemistry Instrumental Analysis Lecture 5. Chem 4631 Chemistry 4631 Instrumental Analysis Lecture 5 Light Amplification by Stimulated Emission of Radiation High Intensities Narrow Bandwidths Coherent Outputs Applications CD/DVD Readers Fiber Optics Spectroscopy

More information

Chapter9. Amplification of light. Lasers Part 2

Chapter9. Amplification of light. Lasers Part 2 Chapter9. Amplification of light. Lasers Part 06... Changhee Lee School of Electrical and Computer Engineering Seoul National Univ. chlee7@snu.ac.kr /9 9. Stimulated emission and thermal radiation The

More information

Diode Lasers and Photonic Integrated Circuits

Diode Lasers and Photonic Integrated Circuits Diode Lasers and Photonic Integrated Circuits L. A. COLDREN S. W. CORZINE University of California Santa Barbara, California A WILEY-INTERSCIENCE PUBLICATION JOHN WILEY & SONS, INC. NEW YORK / CHICHESTER

More information

EE485 Introduction to Photonics

EE485 Introduction to Photonics Pattern formed by fluorescence of quantum dots EE485 Introduction to Photonics Photon and Laser Basics 1. Photon properties 2. Laser basics 3. Characteristics of laser beams Reading: Pedrotti 3, Sec. 1.2,

More information

A few Experimental methods for optical spectroscopy Classical methods Modern methods. Remember class #1 Generating fast LASER pulses

A few Experimental methods for optical spectroscopy Classical methods Modern methods. Remember class #1 Generating fast LASER pulses A few Experimental methods for optical spectroscopy Classical methods Modern methods Shorter class Remember class #1 Generating fast LASER pulses, 2017 Uwe Burghaus, Fargo, ND, USA W. Demtröder, Laser

More information

What Makes a Laser Light Amplification by Stimulated Emission of Radiation Main Requirements of the Laser Laser Gain Medium (provides the light

What Makes a Laser Light Amplification by Stimulated Emission of Radiation Main Requirements of the Laser Laser Gain Medium (provides the light What Makes a Laser Light Amplification by Stimulated Emission of Radiation Main Requirements of the Laser Laser Gain Medium (provides the light amplification) Optical Resonator Cavity (greatly increase

More information

S. Blair September 27,

S. Blair September 27, S. Blair September 7, 010 54 4.3. Optical Resonators With Spherical Mirrors Laser resonators have the same characteristics as Fabry-Perot etalons. A laser resonator supports longitudinal modes of a discrete

More information

γ c = rl = lt R ~ e (g l)t/t R Intensität 0 e γ c t Zeit, ns

γ c = rl = lt R ~ e (g l)t/t R Intensität 0 e γ c t Zeit, ns There is however one main difference in this chapter compared to many other chapters. All loss and gain coefficients are given for the intensity and not the amplitude and are therefore a factor of 2 larger!

More information

LASERS. Amplifiers: Broad-band communications (avoid down-conversion)

LASERS. Amplifiers: Broad-band communications (avoid down-conversion) L- LASERS Representative applications: Amplifiers: Broad-band communications (avoid down-conversion) Oscillators: Blasting: Energy States: Hydrogen atom Frequency/distance reference, local oscillators,

More information

B 2 P 2, which implies that g B should be

B 2 P 2, which implies that g B should be Enhanced Summary of G.P. Agrawal Nonlinear Fiber Optics (3rd ed) Chapter 9 on SBS Stimulated Brillouin scattering is a nonlinear three-wave interaction between a forward-going laser pump beam P, a forward-going

More information

Engineering Medical Optics BME136/251 Winter 2017

Engineering Medical Optics BME136/251 Winter 2017 Engineering Medical Optics BME136/251 Winter 2017 Monday/Wednesday 2:00-3:20 p.m. Beckman Laser Institute Library, MSTB 214 (lab) Teaching Assistants (Office hours: Every Tuesday at 2pm outside of the

More information

The Generation of Ultrashort Laser Pulses II

The Generation of Ultrashort Laser Pulses II The Generation of Ultrashort Laser Pulses II The phase condition Trains of pulses the Shah function Laser modes and mode locking 1 There are 3 conditions for steady-state laser operation. Amplitude condition

More information

Edward S. Rogers Sr. Department of Electrical and Computer Engineering. ECE426F Optical Engineering. Final Exam. Dec. 17, 2003.

Edward S. Rogers Sr. Department of Electrical and Computer Engineering. ECE426F Optical Engineering. Final Exam. Dec. 17, 2003. Edward S. Rogers Sr. Department of Electrical and Computer Engineering ECE426F Optical Engineering Final Exam Dec. 17, 2003 Exam Type: D (Close-book + one 2-sided aid sheet + a non-programmable calculator)

More information

3.1 The Plane Mirror Resonator 3.2 The Spherical Mirror Resonator 3.3 Gaussian modes and resonance frequencies 3.4 The Unstable Resonator

3.1 The Plane Mirror Resonator 3.2 The Spherical Mirror Resonator 3.3 Gaussian modes and resonance frequencies 3.4 The Unstable Resonator Quantum Electronics Laser Physics Chapter 3 The Optical Resonator 3.1 The Plane Mirror Resonator 3. The Spherical Mirror Resonator 3.3 Gaussian modes and resonance frequencies 3.4 The Unstable Resonator

More information

The laser oscillator. Atoms and light. Fabry-Perot interferometer. Quiz

The laser oscillator. Atoms and light. Fabry-Perot interferometer. Quiz toms and light Introduction toms Semi-classical physics: Bohr atom Quantum-mechanics: H-atom Many-body physics: BEC, atom laser Light Optics: rays Electro-magnetic fields: Maxwell eq. s Quantized fields:

More information

ECE 484 Semiconductor Lasers

ECE 484 Semiconductor Lasers ECE 484 Semiconductor Lasers Dr. Lukas Chrostowski Department of Electrical and Computer Engineering University of British Columbia January, 2013 Module Learning Objectives: Understand the importance of

More information

The laser oscillator. Atoms and light. Fabry-Perot interferometer. Quiz

The laser oscillator. Atoms and light. Fabry-Perot interferometer. Quiz toms and light Introduction toms Semi-classical physics: Bohr atom Quantum-mechanics: H-atom Many-body physics: BEC, atom laser Light Optics: rays Electro-magnetic fields: Maxwell eq. s Quantized fields:

More information

Laser Basics. What happens when light (or photon) interact with a matter? Assume photon energy is compatible with energy transition levels.

Laser Basics. What happens when light (or photon) interact with a matter? Assume photon energy is compatible with energy transition levels. What happens when light (or photon) interact with a matter? Assume photon energy is compatible with energy transition levels. Electron energy levels in an hydrogen atom n=5 n=4 - + n=3 n=2 13.6 = [ev]

More information

Chapter 5. Semiconductor Laser

Chapter 5. Semiconductor Laser Chapter 5 Semiconductor Laser 5.0 Introduction Laser is an acronym for light amplification by stimulated emission of radiation. Albert Einstein in 1917 showed that the process of stimulated emission must

More information

CHAPTER FIVE. Optical Resonators Containing Amplifying Media

CHAPTER FIVE. Optical Resonators Containing Amplifying Media CHAPTER FIVE Optical Resonators Containing Amplifying Media 5 Optical Resonators Containing Amplifying Media 5.1 Introduction In this chapter we shall combine what we have learned about optical frequency

More information

MEFT / Quantum Optics and Lasers. Suggested problems Set 4 Gonçalo Figueira, spring 2015

MEFT / Quantum Optics and Lasers. Suggested problems Set 4 Gonçalo Figueira, spring 2015 MEFT / Quantum Optics and Lasers Suggested problems Set 4 Gonçalo Figueira, spring 05 Note: some problems are taken or adapted from Fundamentals of Photonics, in which case the corresponding number is

More information

Figure 1 Relaxation processes within an excited state or the ground state.

Figure 1 Relaxation processes within an excited state or the ground state. Excited State Processes and Application to Lasers The technology of the laser (Light Amplified by Stimulated Emission of Radiation) was developed in the early 1960s. The technology is based on an understanding

More information

- Outline. Chapter 4 Optical Source. 4.1 Semiconductor physics

- Outline. Chapter 4 Optical Source. 4.1 Semiconductor physics Chapter 4 Optical Source - Outline 4.1 Semiconductor physics - Energy band - Intrinsic and Extrinsic Material - pn Junctions - Direct and Indirect Band Gaps 4. Light Emitting Diodes (LED) - LED structure

More information

Lasers... the optical cavity

Lasers... the optical cavity Lasers... the optical cavity history principle, intuitive aspects, characteristics 2 levels systems Ti: Helium Al2O3 - Neon model-locked laser laser VCSEL bragg mirrors cleaved facets 13 ptical and/or

More information

Optics, Light and Lasers

Optics, Light and Lasers Dieter Meschede Optics, Light and Lasers The Practical Approach to Modern Aspects of Photonics and Laser Physics Second, Revised and Enlarged Edition BICENTENNIAL.... n 4 '':- t' 1 8 0 7 $W1LEY 2007 tri

More information

OPTICAL GAIN AND LASERS

OPTICAL GAIN AND LASERS OPTICAL GAIN AND LASERS 01-02-1 BY DAVID ROCKWELL DIRECTOR, RESEARCH & DEVELOPMENT fsona COMMUNICATIONS MARCH 6, 2001 OUTLINE 01-02-2 I. DEFINITIONS, BASIC CONCEPTS II. III. IV. OPTICAL GAIN AND ABSORPTION

More information

Diode Pumped Nd:YAG Laser

Diode Pumped Nd:YAG Laser P5.8.6. / / 3/ 4/ 5 Diode Pumped Nd:YAG Laser 474706 EN Table of Contents.0 THE ND:YAG-LASER 4. Optical pumping 4. Four-level system of the Nd:YAG laser. 5.. Rate equation model for four levels 6.. Spontaneous

More information

Mode Competition in Gas and Semiconductor Lasers

Mode Competition in Gas and Semiconductor Lasers arxiv:physics/0309045v1 [physics.optics] 9 Sep 2003 Mode Competition in Gas and Semiconductor Lasers Philip F. Bagwell Purdue University, School of Electrical Engineering West Lafayette, Indiana 47907

More information

MODERN OPTICS. P47 Optics: Unit 9

MODERN OPTICS. P47 Optics: Unit 9 MODERN OPTICS P47 Optics: Unit 9 Course Outline Unit 1: Electromagnetic Waves Unit 2: Interaction with Matter Unit 3: Geometric Optics Unit 4: Superposition of Waves Unit 5: Polarization Unit 6: Interference

More information

Elements of Quantum Optics

Elements of Quantum Optics Pierre Meystre Murray Sargent III Elements of Quantum Optics Fourth Edition With 124 Figures fya Springer Contents 1 Classical Electromagnetic Fields 1 1.1 Maxwell's Equations in a Vacuum 2 1.2 Maxwell's

More information

Tentative Schedule: Date, Place & Time Topics Sep.4 (Mo) No classes Labor Day Holiday Exam 1 Exam 2 Over Chapters 4-6

Tentative Schedule: Date, Place & Time Topics Sep.4 (Mo) No classes Labor Day Holiday Exam 1 Exam 2 Over Chapters 4-6 Tentative Schedule: Date, Place & Time Topics 1 Aug. 8 (Mo) 394; 5:00-6:15 Introduction, Spontaneous and Stimulated Transitions (Ch. 1) Lecture Notes Aug. 30 (We) 394; 5:00-6:15 Spontaneous and Stimulated

More information

Pulsed Lasers Revised: 2/12/14 15: , Henry Zmuda Set 5a Pulsed Lasers

Pulsed Lasers Revised: 2/12/14 15: , Henry Zmuda Set 5a Pulsed Lasers Pulsed Lasers Revised: 2/12/14 15:27 2014, Henry Zmuda Set 5a Pulsed Lasers 1 Laser Dynamics Puled Lasers More efficient pulsing schemes are based on turning the laser itself on and off by means of an

More information

A characteriza+on/reliability oriented simula+on framework modeling charge transport and degrada+on in dielectric stacks

A characteriza+on/reliability oriented simula+on framework modeling charge transport and degrada+on in dielectric stacks A characteriza+on/reliability oriented simula+on framework modeling charge transport and degrada+on in dielectric stacks Luca Larcher University of Modena and Reggio Emilia MDLab Italy Outline Simula=on

More information

Distributed feedback semiconductor lasers

Distributed feedback semiconductor lasers Distributed feedback semiconductor lasers John Carroll, James Whiteaway & Dick Plumb The Institution of Electrical Engineers SPIE Optical Engineering Press 1 Preface Acknowledgments Principal abbreviations

More information

Lasers and Electro-optics

Lasers and Electro-optics Lasers and Electro-optics Second Edition CHRISTOPHER C. DAVIS University of Maryland III ^0 CAMBRIDGE UNIVERSITY PRESS Preface to the Second Edition page xv 1 Electromagnetic waves, light, and lasers 1

More information

Wolfgang Demtroder. Laser Spectroscopy. Basic Concepts and Instrumentation. Second Enlarged Edition With 644 Figures and 91 Problems.

Wolfgang Demtroder. Laser Spectroscopy. Basic Concepts and Instrumentation. Second Enlarged Edition With 644 Figures and 91 Problems. Wolfgang Demtroder Laser Spectroscopy Basic Concepts and Instrumentation Second Enlarged Edition With 644 Figures and 91 Problems Springer Contents 1. Introduction 1 2. Absorption and Emission of Light

More information

Quantum Electronics Laser Physics. Chapter 5. The Laser Amplifier

Quantum Electronics Laser Physics. Chapter 5. The Laser Amplifier Quantum Electronics Laser Physics Chapter 5. The Laser Amplifier 1 The laser amplifier 5.1 Amplifier Gain 5.2 Amplifier Bandwidth 5.3 Amplifier Phase-Shift 5.4 Amplifier Power source and rate equations

More information

Unstable optical resonators. Laser Physics course SK3410 Aleksandrs Marinins KTH ICT OFO

Unstable optical resonators. Laser Physics course SK3410 Aleksandrs Marinins KTH ICT OFO Unstable optical resonators Laser Physics course SK3410 Aleksandrs Marinins KTH ICT OFO Outline Types of resonators Geometrical description Mode analysis Experimental results Other designs of unstable

More information

ATOMIC AND LASER SPECTROSCOPY

ATOMIC AND LASER SPECTROSCOPY ALAN CORNEY ATOMIC AND LASER SPECTROSCOPY CLARENDON PRESS OXFORD 1977 Contents 1. INTRODUCTION 1.1. Planck's radiation law. 1 1.2. The photoelectric effect 4 1.3. Early atomic spectroscopy 5 1.4. The postulates

More information

Stimulated Emission. Electrons can absorb photons from medium. Accelerated electrons emit light to return their ground state

Stimulated Emission. Electrons can absorb photons from medium. Accelerated electrons emit light to return their ground state Lecture 15 Stimulated Emission Devices- Lasers Stimulated emission and light amplification Einstein coefficients Optical fiber amplifiers Gas laser and He-Ne Laser The output spectrum of a gas laser Laser

More information

Ver Chap Lecture 15- ECE 240a. Q-Switching. Mode Locking. ECE 240a Lasers - Fall 2017 Lecture Q-Switch Discussion

Ver Chap Lecture 15- ECE 240a. Q-Switching. Mode Locking. ECE 240a Lasers - Fall 2017 Lecture Q-Switch Discussion ing Ver Chap. 9.3 Lasers - Fall 2017 Lecture 15 1 ing ing (Cavity Dumping) 1 Turn-off cavity - prevent lasing 2 Pump lots of energy into upper state - use pulsed pump 3 Turn cavity back on - all the energy

More information

Modern optics Lasers

Modern optics Lasers Chapter 13 Phys 322 Lecture 36 Modern optics Lasers Reminder: Please complete the online course evaluation Last lecture: Review discussion (no quiz) LASER = Light Amplification by Stimulated Emission of

More information

Comments to Atkins: Physical chemistry, 7th edition.

Comments to Atkins: Physical chemistry, 7th edition. Comments to Atkins: Physical chemistry, 7th edition. Chapter 16: p. 483, Eq. (16.1). The definition that the wave number is the inverse of the wave length should be used. That is much smarter. p. 483-484.

More information

1 Longitudinal modes of a laser cavity

1 Longitudinal modes of a laser cavity Adrian Down May 01, 2006 1 Longitudinal modes of a laser cavity 1.1 Resonant modes For the moment, imagine a laser cavity as a set of plane mirrors separated by a distance d. We will return to the specific

More information

FIBER OPTICS. Prof. R.K. Shevgaonkar. Department of Electrical Engineering. Indian Institute of Technology, Bombay. Lecture: 14.

FIBER OPTICS. Prof. R.K. Shevgaonkar. Department of Electrical Engineering. Indian Institute of Technology, Bombay. Lecture: 14. FIBER OPTICS Prof. R.K. Shevgaonkar Department of Electrical Engineering Indian Institute of Technology, Bombay Lecture: 14 Optical Sources Fiber Optics, Prof. R.K. Shevgaonkar, Dept. of Electrical Engineering,

More information

of a Fabry-Perot cavity

of a Fabry-Perot cavity Circumven*on of radia*onpressure-induced angular instability of a Fabry-Perot cavity Koji Nagano 1, Yutaro Enomoto 1, Masayuki Nakano 1, Akira Furusawa 2, and Seiji Kawamura 1 Ins*tute for Cosmic Ray Research,

More information

Computational Physics Approaches to Model Solid-State Laser Resonators

Computational Physics Approaches to Model Solid-State Laser Resonators LASer Cavity Analysis & Design Computational Physics Approaches to Model Solid-State Laser Resonators Konrad Altmann LAS-CAD GmbH, Germany www.las-cad.com I will talk about four Approaches: Gaussian Mode

More information

Physical Optics. Lecture 8: Laser Michael Kempe.

Physical Optics. Lecture 8: Laser Michael Kempe. Physical Optics Lecture 8: Laser 2018-12-13 Michael Kempe www.iap.uni-jena.de Physical Optics: Content 2 No Date Subject Ref Detailed Content 1 18.10. Wave optics G Complex fields, wave equation, k-vectors,

More information

Phys 2310 Fri. Dec. 12, 2014 Today s Topics. Begin Chapter 13: Lasers Reading for Next Time

Phys 2310 Fri. Dec. 12, 2014 Today s Topics. Begin Chapter 13: Lasers Reading for Next Time Phys 2310 Fri. Dec. 12, 2014 Today s Topics Begin Chapter 13: Lasers Reading for Next Time 1 Reading this Week By Fri.: Ch. 13 (13.1, 13.3) Lasers, Holography 2 Homework this Week No Homework this chapter.

More information

3.5 Cavities Cavity modes and ABCD-matrix analysis 206 CHAPTER 3. ULTRASHORT SOURCES I - FUNDAMENTALS

3.5 Cavities Cavity modes and ABCD-matrix analysis 206 CHAPTER 3. ULTRASHORT SOURCES I - FUNDAMENTALS 206 CHAPTER 3. ULTRASHORT SOURCES I - FUNDAMENTALS which is a special case of Eq. (3.30. Note that this treatment of dispersion is equivalent to solving the differential equation (1.94 for an incremental

More information

Lasers & Holography. Ulrich Heintz Brown University. 4/5/2016 Ulrich Heintz - PHYS 1560 Lecture 10 1

Lasers & Holography. Ulrich Heintz Brown University. 4/5/2016 Ulrich Heintz - PHYS 1560 Lecture 10 1 Lasers & Holography Ulrich Heintz Brown University 4/5/2016 Ulrich Heintz - PHYS 1560 Lecture 10 1 Lecture schedule Date Topic Thu, Jan 28 Introductory meeting Tue, Feb 2 Safety training Thu, Feb 4 Lab

More information

Some Topics in Optics

Some Topics in Optics Some Topics in Optics The HeNe LASER The index of refraction and dispersion Interference The Michelson Interferometer Diffraction Wavemeter Fabry-Pérot Etalon and Interferometer The Helium Neon LASER A

More information

Figure 5.1: Theodore Maiman constructed the first operational laser. Wikipedia). 5.1 Emission and absorption of electromagnetic radiation

Figure 5.1: Theodore Maiman constructed the first operational laser. Wikipedia). 5.1 Emission and absorption of electromagnetic radiation 5 Laser The word laser is an acronym for light amplification by stimulated emission of radiation. The first laser was demonstrated by Theodore Maiman in 1960. Figure 5.1: Theodore Maiman constructed the

More information

Fiber Lasers. Chapter Basic Concepts

Fiber Lasers. Chapter Basic Concepts Chapter 5 Fiber Lasers A fiber amplifier can be converted into a laser by placing it inside a cavity designed to provide optical feedback. Such lasers are called fiber lasers, and this chapter is devoted

More information

OF LASERS. All scaling laws have limits. We discuss the output power limitations of two possible architectures for powerful lasers:

OF LASERS. All scaling laws have limits. We discuss the output power limitations of two possible architectures for powerful lasers: LIMITS OF POWER SCALING OF LASERS D. Kouznetsov, J.-F. Bisson, J. Dong, A. Shirakawa, K. Ueda Inst. for Laser Science, Univ. of Electro-Communications, 1-5-1 Chofu-Gaoka, Chofu, Tokyo, 182-8585, Japan.

More information

THE ZEEMAN EFFECT PHYSICS 359E

THE ZEEMAN EFFECT PHYSICS 359E THE ZEEMAN EFFECT PHYSICS 359E INTRODUCTION The Zeeman effect is a demonstration of spatial quantization of angular momentum in atomic physics. Since an electron circling a nucleus is analogous to a current

More information

Last Lecture. Overview and Introduction. 1. Basic optics and spectroscopy. 2. Lasers. 3. Ultrafast lasers and nonlinear optics

Last Lecture. Overview and Introduction. 1. Basic optics and spectroscopy. 2. Lasers. 3. Ultrafast lasers and nonlinear optics Last Lecture Overview and Introduction 1. Basic optics and spectroscopy. Lasers 3. Ultrafast lasers and nonlinear optics 4. Time-resolved spectroscopy techniques Jigang Wang, Feb, 009 Today 1. Spectroscopy

More information

Fiber Gratings p. 1 Basic Concepts p. 1 Bragg Diffraction p. 2 Photosensitivity p. 3 Fabrication Techniques p. 4 Single-Beam Internal Technique p.

Fiber Gratings p. 1 Basic Concepts p. 1 Bragg Diffraction p. 2 Photosensitivity p. 3 Fabrication Techniques p. 4 Single-Beam Internal Technique p. Preface p. xiii Fiber Gratings p. 1 Basic Concepts p. 1 Bragg Diffraction p. 2 Photosensitivity p. 3 Fabrication Techniques p. 4 Single-Beam Internal Technique p. 4 Dual-Beam Holographic Technique p. 5

More information

External (differential) quantum efficiency Number of additional photons emitted / number of additional electrons injected

External (differential) quantum efficiency Number of additional photons emitted / number of additional electrons injected Semiconductor Lasers Comparison with LEDs The light emitted by a laser is generally more directional, more intense and has a narrower frequency distribution than light from an LED. The external efficiency

More information

Principles of Lasers FIFTH EDITION

Principles of Lasers FIFTH EDITION Principles of Lasers FIFTH EDITION Principles of Lasers FIFTH EDITION Orazio Svelto Polytechnic Institute of Milan and National Research Council Milan, Italy Translated from Italian and edited by David

More information

High Power Diode Lasers

High Power Diode Lasers Lecture 10/1 High Power Diode Lasers Low Power Lasers (below tenth of mw) - Laser as a telecom transmitter; - Laser as a spectroscopic sensor; - Laser as a medical diagnostic tool; - Laser as a write-read

More information

UC Berkeley UC Berkeley Previously Published Works

UC Berkeley UC Berkeley Previously Published Works UC Berkeley UC Berkeley Previously Published Works Title Scaling of resonance frequency for strong injection-locked lasers Permalink https://escholarship.org/uc/item/03d3z9bn Journal Optics Letters, 3(3)

More information

Mar Yunsu Sung. Yunsu Sung. Special Topics in Optical Engineering II(15/1)

Mar Yunsu Sung. Yunsu Sung. Special Topics in Optical Engineering II(15/1) Mar 12 2015 Contents Two-port model Rate equation and damping Small signal response Conclusion Two Port Model I:Current V:Voltage P: Optical Power ν: Optical frequency shift Model summarize parasitic effects

More information

Survey on Laser Spectroscopic Techniques for Condensed Matter

Survey on Laser Spectroscopic Techniques for Condensed Matter Survey on Laser Spectroscopic Techniques for Condensed Matter Coherent Radiation Sources for Small Laboratories CW: Tunability: IR Visible Linewidth: 1 Hz Power: μw 10W Pulsed: Tunabality: THz Soft X-ray

More information

OPTI 511R, Spring 2018 Problem Set 10 Prof. R.J. Jones Due Thursday, April 19

OPTI 511R, Spring 2018 Problem Set 10 Prof. R.J. Jones Due Thursday, April 19 OPTI 511R, Spring 2018 Problem Set 10 Prof. R.J. Jones Due Thursday, April 19 1. (a) Suppose you want to use a lens focus a Gaussian laser beam of wavelength λ in order to obtain a beam waist radius w

More information

Emission Spectra of the typical DH laser

Emission Spectra of the typical DH laser Emission Spectra of the typical DH laser Emission spectra of a perfect laser above the threshold, the laser may approach near-perfect monochromatic emission with a spectra width in the order of 1 to 10

More information

Experimentally confirmed design guidelines for passively Q-switched microchip lasers using semiconductor saturable absorbers

Experimentally confirmed design guidelines for passively Q-switched microchip lasers using semiconductor saturable absorbers 376 J. Opt. Soc. Am. B/Vol. 16, No. 3/March 1999 Spühler et al. Experimentally confirmed design guidelines for passively Q-switched microchip lasers using semiconductor saturable absorbers G. J. Spühler,

More information

Photon Physics. Week 5 5/03/2013

Photon Physics. Week 5 5/03/2013 Photon Physics Week 5 5/3/213 1 Rate equations including pumping dn 2 = R 2 N * σ 21 ( ω L ω ) I L N 2 R 2 2 dn 1 = R 1 + N * σ 21 ( ω L ω ) I L N 1 + N 2 A 21 ss solution: dn 2 = dn 1 = N 2 = R 2 N *

More information

A microring multimode laser using hollow polymer optical fibre

A microring multimode laser using hollow polymer optical fibre PRAMANA c Indian Academy of Sciences Vol. 75, No. 5 journal of November 2010 physics pp. 923 927 A microring multimode laser using hollow polymer optical fibre M KAILASNATH, V P N NAMPOORI and P RADHAKRISHNAN

More information

MODELING OF ABOVE-THRESHOLD SINGLE-MODE OPERATION OF EDGE- EMITTING DIODE LASERS

MODELING OF ABOVE-THRESHOLD SINGLE-MODE OPERATION OF EDGE- EMITTING DIODE LASERS MODELING OF ABOVE-THRESHOLD SINGLE-MODE OPERATION OF EDGE- EMITTING DIODE LASERS A. P. Napartovich, N. N. Elkin, A. G. Sukharev, V. N. Troshchieva, and D. V. Vysotsky Troitsk Institute for Innovation and

More information

OPTI510R: Photonics. Khanh Kieu College of Optical Sciences, University of Arizona Meinel building R.626

OPTI510R: Photonics. Khanh Kieu College of Optical Sciences, University of Arizona Meinel building R.626 OPTI510R: Photonics Khanh Kieu College of Optical Sciences, University of Arizona kkieu@optics.arizona.edu Meinel building R.626 Announcements HW #5 due today April 11 th class will be at 2PM instead of

More information

OPTI 511L Fall Objectives:

OPTI 511L Fall Objectives: RJ Jones OPTI 511L Fall 2017 Optical Sciences Experiment: Saturated Absorption Spectroscopy (2 weeks) In this experiment we explore the use of a single mode tunable external cavity diode laser (ECDL) to

More information

LASER. Light Amplification by Stimulated Emission of Radiation

LASER. Light Amplification by Stimulated Emission of Radiation LASER Light Amplification by Stimulated Emission of Radiation Laser Fundamentals The light emitted from a laser is monochromatic, that is, it is of one color/wavelength. In contrast, ordinary white light

More information

Photonics and Optical Communication

Photonics and Optical Communication Photonics and Optical Communication (Course Number 300352) Spring 2007 Optical Source Dr. Dietmar Knipp Assistant Professor of Electrical Engineering http://www.faculty.iu-bremen.de/dknipp/ 1 Photonics

More information

Introduction to Semiconductor Integrated Optics

Introduction to Semiconductor Integrated Optics Introduction to Semiconductor Integrated Optics Hans P. Zappe Artech House Boston London Contents acknowledgments reface itroduction Chapter 1 Basic Electromagnetics 1 1.1 General Relationships 1 1.1.1

More information

Free-Electron Lasers

Free-Electron Lasers Introduction to Free-Electron Lasers Neil Thompson ASTeC Outline Introduction: What is a Free-Electron Laser? How does an FEL work? Choosing the required parameters Laser Resonators for FELs FEL Output

More information

School of Electrical and Computer Engineering, Cornell University. ECE 5330: Semiconductor Optoelectronics. Fall 2014

School of Electrical and Computer Engineering, Cornell University. ECE 5330: Semiconductor Optoelectronics. Fall 2014 School of Electrical and Computer Engineering, Cornell University ECE 5330: Semiconductor Optoelectronics Fall 014 Homework 7 Due on Nov. 06, 014 Suggested Readings: i) Study lecture notes. ii) Study Coldren

More information

The textbook used in this module is: Photonics and Laser: An Introduction by R.S. Quimby

The textbook used in this module is: Photonics and Laser: An Introduction by R.S. Quimby PH 2601: Introduction to Laser Final Examination 2010/2011 The textbook used in this module is: Photonics and Laser: An Introduction by R.S. Quimby By: Yonathan Priambada (yona0004@e.ntu.edu.sg) 1) A)Three

More information

FIBER OPTICS. Prof. R.K. Shevgaonkar. Department of Electrical Engineering. Indian Institute of Technology, Bombay. Lecture: 17.

FIBER OPTICS. Prof. R.K. Shevgaonkar. Department of Electrical Engineering. Indian Institute of Technology, Bombay. Lecture: 17. FIBER OPTICS Prof. R.K. Shevgaonkar Department of Electrical Engineering Indian Institute of Technology, Bombay Lecture: 17 Optical Sources- Introduction to LASER Fiber Optics, Prof. R.K. Shevgaonkar,

More information

Principles of Mode-Hop Free Wavelength Tuning

Principles of Mode-Hop Free Wavelength Tuning Principles of Mode-Hop Free Wavelength Tuning Table of Contents 1. Introduction... 2 2. Tunable Diode Lasers in Littrow Cavity Design... 5 2.1 Pivot Point Requirements... 5 2.2 Realization according to

More information