SlideShare una empresa de Scribd logo
1 de 27
Semiconductor Devices
Presentation on Photonic sources of light
By Rohit Singh
M.Tech VST
School of Engineering
Shiv Nadar University
Photonic sources of light
Photonic sources of light are those source of
light in which the basic particle of light-the
photon, plays a major role.
LED
LASER
Light Emitting Diode: LED
What is an LED?
• Light-emitting diode
• Semiconductor
• Has polarity
LED: How It Works
• When current flows
across a diode
• Negative electrons move one way and
positive holes move the other way
LED: How It Works
• The holes exist at a
lower energy level than
the free electrons
• Therefore when a free electrons falls it
losses energy
LED: How It Works
This energy is emitted in
a form of a photon,
which causes light
The color of the light is determined by the
fall of the electron and hence energy level
of the photon
Calculation of wavelength emitted
by LED
• where E is energy h is
planks constant and c is
velocity of light λ is
wavelength of light.
• Rearranging the term
we get final equation. )eV(
240.1
m)(
gE

E=hc/
Inside a Light Emitting Diode
1. Transparent Plastic
Case
2. Terminal Pins
3. Diode
Kinds of LEDs
Light Amplification by Stimulated
Emission of Radiation :
LASER
Principle of Laser
Diode
Stimulated Emission
E1
E2
h
(a) Absorption
h
(b) Spontaneous emission
h
(c) Stimulated emission
In
h
Out
h
E2
E2
E1 E1
Absorption, spontaneous (random photon) emission and stimulated
emission.
© 1999 S.O. Kasap, Optoelectronics (Prentice Hall)
In stimulated emission, an incoming photon with energy h
stimulates the emission process by inducing electrons in E2 to transit
down to E1.
While moving down to E1, photon of the same energy h will be
emitted
Resulting in 2 photons coming out of the system
Photons are amplified – one incoming photon resulting in two
photons coming out.
Population Inversion
• Non equilibrium distribution of
atoms among the various energy
level atomic system
• To induce more atoms in E2, i.e. to
create population inversion, a
large amount of energy is required
to excite atoms to E2
• The excitation process of atoms so
N2 > N1 is called pumping
• It is difficult to attain pumping
when using two-level-system.
• Require 3-level system instead
E2
E1
More atoms
here
N2
N1
N2> N1
E2
E1
E3
There level
system
Principles of Laser
E
1
h13
E
2
Metastable
state
E
1
E
3
E
2
h32
E
1
E
3
E
2
E
1
E
3
E
2
h21
h21
Coherent photons
OUT
(a) (b) (c) (d)
E
3
.
IN
• In actual case, excite atoms from E1 to E3.
• Exciting atoms from E1 to E3 optical pumping
• Atoms from E3 decays rapidly to E2 emitting h3
• If E2 is a long lived state, atoms from E2 will not decay to E1 rapidly
• Condition where there are a lot of atoms in E2 population inversion achieved!
i.e. between E2 and E1.
Coherent Photons Production
• When one atom in E2 decays
spontaneously, a random photon resulted
which will induce stimulated photon from
the neighbouring atoms
• The photons from the neighbouring atoms
will stimulate their neighbours and form
avalanche of photons.
• Large collection of coherent photons
resulted.
Laser Diode Principle
Consider a p-n junction
In order to design a laser diode, the p-n junction
must be heavily doped.
In other word, the p and n materials must be
degenerately doped
By degenerated doping, the Fermi level of the
n-side will lies in the conduction band whereas
the Fermi level in the p-region will lie in the
valance band.
Diode Laser Operation
p+ n+
E
Fn
(a)
E
g
E
v
E
c
E
v
Holes in VB
Electrons in CB
Junction
Electrons E
c
p+
E
g
V
n+
(b)
E
Fn
eV
E
Fp
Inversion
region
E
Fp
E
c
E
c
eV
o
•P-n junction must be degenerately doped.
•Fermi level in valance band (p) and
conduction band (n).
•No bias, built n potential; eVo barrier to
stop electron and holes movement
•Forward bias, eV> Eg
•Built in potential diminished to zero
•Electrons and holes can diffuse to the
space charge layer
Application of Forward Bias
Suppose that the degenerately doped p-n
junction is forward biased by a voltage greater
than the band gap; eV > Eg
The separation between EFn and EFp is now the
applied potential energy
The applied voltage diminished the built-in
potential barrier, eVo to almost zero.
Electrons can now flow to the p-side
Holes can now flow to the n-side
Population Inversion in Diode Laser
Electrons in CB
EFn
EFp
CB
VB
Eg
Holes in VB
eV
EFn-EfP = eV
eV > Eg
eV = forward bias voltage
Fwd Diode current pumping 
injection pumping
More electrons in
the conduction
band near EC
Than electrons in
the valance band
near EV
There is therefore a population inversion
between energies near EC and near EV around the
junction.
This only achieved when degenerately doped p-n
junction is forward bias with energy > Egap
The Lasing Action
• The population inversion region is a layer along the
junction  also call inversion layer or active region
• Now consider a photon with E = Eg
• Obviously this photon can not excite electrons from EV
since there is NO electrons there
• However the photon CAN STIMULATE electron to fall
down from CB to VB.
• Therefore, the incoming photon stimulates emission than
absorption
• The active region is then said to have ‘optical gain’ since
the incoming photon has the ability to cause emission
rather than being absorbed.
Pumping Mechanism in Laser Diode
• It is obvious that the population inversion
between energies near EC and those near
EV occurs by injection of large charge
carrier across the junction by forward
biasing the junction.
• Therefore the pumping mechanism is
FORWARD DIODE CURRENT 
Injection pumping
For Successful Lasing Action:
1. Optical Gain (not absorb)
Achieved by population inversion
2. Optical Feedback
Achieved by device configuration
Needed to increase the total optical amplification by
making photons pass through the gain region
multiple times
Insert 2 mirrors at each end of laser
This is term an oscillator cavity or Fabry Perot
cavity
Mirrors are partly transmitted and party reflected
Reflection of Photons Back and Forth,
Higher Gain
Fabry-Parrot Cavity
The photons vibrates to
and forth with resonant
wavelength
Difference between LASER and LED
LASER
• Lasers are monochromatic
(single color wavelength),
collimated (non-divergent)
and coherent (wavelengths
in- phase)
• The peak output power is
measured in watt
LED
• LED's are neither coherent
nor collimated and generate
a broader band of
wavelengths (multiple).
• The peak output power is
measured in milliwatt.
Graph between optical power and
diode current
Thank You !

Más contenido relacionado

La actualidad más candente

Transmission characteristics of optical fibers
Transmission characteristics of optical fibersTransmission characteristics of optical fibers
Transmission characteristics of optical fibers
aibad ahmed
 

La actualidad más candente (20)

COMMUNICATION LED
COMMUNICATION LEDCOMMUNICATION LED
COMMUNICATION LED
 
Optical fiber laser
Optical fiber laser Optical fiber laser
Optical fiber laser
 
Pin Photodetector
Pin PhotodetectorPin Photodetector
Pin Photodetector
 
Optical fiber communication Part 2 Sources and Detectors
Optical fiber communication Part 2 Sources and DetectorsOptical fiber communication Part 2 Sources and Detectors
Optical fiber communication Part 2 Sources and Detectors
 
Semiconductor Optical Amplifier
Semiconductor Optical AmplifierSemiconductor Optical Amplifier
Semiconductor Optical Amplifier
 
Unit II- TRANSMISSION CHARACTERISTIC OF OPTICAL FIBER
Unit II- TRANSMISSION CHARACTERISTIC OF OPTICAL FIBER 	Unit II- TRANSMISSION CHARACTERISTIC OF OPTICAL FIBER
Unit II- TRANSMISSION CHARACTERISTIC OF OPTICAL FIBER
 
Fbg ppt
Fbg pptFbg ppt
Fbg ppt
 
Avalanche photodiode & there bandwidth
Avalanche photodiode & there bandwidthAvalanche photodiode & there bandwidth
Avalanche photodiode & there bandwidth
 
Gunn Diode
Gunn Diode Gunn Diode
Gunn Diode
 
Optical fiber communication Part 1 Optical Fiber Fundamentals
Optical fiber communication Part 1 Optical Fiber FundamentalsOptical fiber communication Part 1 Optical Fiber Fundamentals
Optical fiber communication Part 1 Optical Fiber Fundamentals
 
Pin photodiode.pptx ashvani
Pin photodiode.pptx ashvaniPin photodiode.pptx ashvani
Pin photodiode.pptx ashvani
 
Optical switching
Optical switchingOptical switching
Optical switching
 
150860106054 150860106004 150860106045_150860106070_150860106010
150860106054 150860106004 150860106045_150860106070_150860106010150860106054 150860106004 150860106045_150860106070_150860106010
150860106054 150860106004 150860106045_150860106070_150860106010
 
Optical modulator (8,12,17,29)
Optical modulator (8,12,17,29)Optical modulator (8,12,17,29)
Optical modulator (8,12,17,29)
 
Laser diodes
Laser diodesLaser diodes
Laser diodes
 
Transmission characteristics of optical fibers
Transmission characteristics of optical fibersTransmission characteristics of optical fibers
Transmission characteristics of optical fibers
 
Laser diode
Laser diodeLaser diode
Laser diode
 
OPTICAL FIBER COMMUNICATION UNIT-1
OPTICAL FIBER COMMUNICATION UNIT-1OPTICAL FIBER COMMUNICATION UNIT-1
OPTICAL FIBER COMMUNICATION UNIT-1
 
Attenuation in fiber
Attenuation in fiberAttenuation in fiber
Attenuation in fiber
 
Impatt diode
Impatt diodeImpatt diode
Impatt diode
 

Similar a LED & LASER sources of light

2415_web_Lec_30_EM_Waves.5234524524045040pptx
2415_web_Lec_30_EM_Waves.5234524524045040pptx2415_web_Lec_30_EM_Waves.5234524524045040pptx
2415_web_Lec_30_EM_Waves.5234524524045040pptx
vikknaguem
 

Similar a LED & LASER sources of light (20)

Chapter 5a
Chapter 5aChapter 5a
Chapter 5a
 
Lecture-1(Lasersbasics) (1).ppt
Lecture-1(Lasersbasics) (1).pptLecture-1(Lasersbasics) (1).ppt
Lecture-1(Lasersbasics) (1).ppt
 
UV PES.pdf
UV PES.pdfUV PES.pdf
UV PES.pdf
 
Optical sources - Principle of Lasers
Optical sources  - Principle of LasersOptical sources  - Principle of Lasers
Optical sources - Principle of Lasers
 
SEMICONDUCTOR PHYSICS.ppt
SEMICONDUCTOR  PHYSICS.pptSEMICONDUCTOR  PHYSICS.ppt
SEMICONDUCTOR PHYSICS.ppt
 
PPT.ppt
PPT.pptPPT.ppt
PPT.ppt
 
Classification of solid using energy level.pptx
Classification of solid using energy level.pptxClassification of solid using energy level.pptx
Classification of solid using energy level.pptx
 
Semiconductor lasers
Semiconductor lasersSemiconductor lasers
Semiconductor lasers
 
Photoelectron spectroscopy
Photoelectron spectroscopyPhotoelectron spectroscopy
Photoelectron spectroscopy
 
Optical properties and hall effect
Optical properties and hall effectOptical properties and hall effect
Optical properties and hall effect
 
Laser
LaserLaser
Laser
 
Interaction of Radiation with Matter
Interaction of Radiation with MatterInteraction of Radiation with Matter
Interaction of Radiation with Matter
 
Chapter 4b
Chapter 4bChapter 4b
Chapter 4b
 
Nature of light (edexcel AS levels)
Nature of light (edexcel AS levels)Nature of light (edexcel AS levels)
Nature of light (edexcel AS levels)
 
Laser for engineering students
Laser for engineering studentsLaser for engineering students
Laser for engineering students
 
Communication Engineering LED and LASER Sources.ppt
Communication Engineering LED and LASER Sources.pptCommunication Engineering LED and LASER Sources.ppt
Communication Engineering LED and LASER Sources.ppt
 
Electronic Devices
Electronic DevicesElectronic Devices
Electronic Devices
 
2415_web_Lec_30_EM_Waves.5234524524045040pptx
2415_web_Lec_30_EM_Waves.5234524524045040pptx2415_web_Lec_30_EM_Waves.5234524524045040pptx
2415_web_Lec_30_EM_Waves.5234524524045040pptx
 
Electronic structure ggg
Electronic structure gggElectronic structure ggg
Electronic structure ggg
 
Laser and it's application.
 Laser and it's application. Laser and it's application.
Laser and it's application.
 

Más de Rohit Singh (7)

Personality Development Presentation
Personality Development PresentationPersonality Development Presentation
Personality Development Presentation
 
A Report on State MachinesTiming Behavior and Data storage in hard disk drive
A Report on State MachinesTiming Behavior and Data storage in hard disk driveA Report on State MachinesTiming Behavior and Data storage in hard disk drive
A Report on State MachinesTiming Behavior and Data storage in hard disk drive
 
Design of FFT Processor
Design of FFT ProcessorDesign of FFT Processor
Design of FFT Processor
 
Microprocessor-Compatible Quadrature Decoder/Counter Design
Microprocessor-Compatible Quadrature Decoder/Counter DesignMicroprocessor-Compatible Quadrature Decoder/Counter Design
Microprocessor-Compatible Quadrature Decoder/Counter Design
 
M.Tech Voltage Reference Thesis Presentation
M.Tech Voltage Reference Thesis PresentationM.Tech Voltage Reference Thesis Presentation
M.Tech Voltage Reference Thesis Presentation
 
B.Tech Project Report
B.Tech Project ReportB.Tech Project Report
B.Tech Project Report
 
B.Tech Industrial Training Report
B.Tech Industrial Training ReportB.Tech Industrial Training Report
B.Tech Industrial Training Report
 

Último

Call Now ≽ 9953056974 ≼🔝 Call Girls In New Ashok Nagar ≼🔝 Delhi door step de...
Call Now ≽ 9953056974 ≼🔝 Call Girls In New Ashok Nagar  ≼🔝 Delhi door step de...Call Now ≽ 9953056974 ≼🔝 Call Girls In New Ashok Nagar  ≼🔝 Delhi door step de...
Call Now ≽ 9953056974 ≼🔝 Call Girls In New Ashok Nagar ≼🔝 Delhi door step de...
9953056974 Low Rate Call Girls In Saket, Delhi NCR
 
Call Girls in Netaji Nagar, Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
Call Girls in Netaji Nagar, Delhi 💯 Call Us 🔝9953056974 🔝 Escort ServiceCall Girls in Netaji Nagar, Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
Call Girls in Netaji Nagar, Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
9953056974 Low Rate Call Girls In Saket, Delhi NCR
 
Cara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak Hamil
Cara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak HamilCara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak Hamil
Cara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak Hamil
Cara Menggugurkan Kandungan 087776558899
 
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoorTop Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
dharasingh5698
 
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
ssuser89054b
 
Call Girls in Ramesh Nagar Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
Call Girls in Ramesh Nagar Delhi 💯 Call Us 🔝9953056974 🔝 Escort ServiceCall Girls in Ramesh Nagar Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
Call Girls in Ramesh Nagar Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
9953056974 Low Rate Call Girls In Saket, Delhi NCR
 

Último (20)

KubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghlyKubeKraft presentation @CloudNativeHooghly
KubeKraft presentation @CloudNativeHooghly
 
Call Girls Walvekar Nagar Call Me 7737669865 Budget Friendly No Advance Booking
Call Girls Walvekar Nagar Call Me 7737669865 Budget Friendly No Advance BookingCall Girls Walvekar Nagar Call Me 7737669865 Budget Friendly No Advance Booking
Call Girls Walvekar Nagar Call Me 7737669865 Budget Friendly No Advance Booking
 
data_management_and _data_science_cheat_sheet.pdf
data_management_and _data_science_cheat_sheet.pdfdata_management_and _data_science_cheat_sheet.pdf
data_management_and _data_science_cheat_sheet.pdf
 
Call Now ≽ 9953056974 ≼🔝 Call Girls In New Ashok Nagar ≼🔝 Delhi door step de...
Call Now ≽ 9953056974 ≼🔝 Call Girls In New Ashok Nagar  ≼🔝 Delhi door step de...Call Now ≽ 9953056974 ≼🔝 Call Girls In New Ashok Nagar  ≼🔝 Delhi door step de...
Call Now ≽ 9953056974 ≼🔝 Call Girls In New Ashok Nagar ≼🔝 Delhi door step de...
 
(INDIRA) Call Girl Aurangabad Call Now 8617697112 Aurangabad Escorts 24x7
(INDIRA) Call Girl Aurangabad Call Now 8617697112 Aurangabad Escorts 24x7(INDIRA) Call Girl Aurangabad Call Now 8617697112 Aurangabad Escorts 24x7
(INDIRA) Call Girl Aurangabad Call Now 8617697112 Aurangabad Escorts 24x7
 
Thermal Engineering -unit - III & IV.ppt
Thermal Engineering -unit - III & IV.pptThermal Engineering -unit - III & IV.ppt
Thermal Engineering -unit - III & IV.ppt
 
Call Girls in Netaji Nagar, Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
Call Girls in Netaji Nagar, Delhi 💯 Call Us 🔝9953056974 🔝 Escort ServiceCall Girls in Netaji Nagar, Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
Call Girls in Netaji Nagar, Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
 
Unit 1 - Soil Classification and Compaction.pdf
Unit 1 - Soil Classification and Compaction.pdfUnit 1 - Soil Classification and Compaction.pdf
Unit 1 - Soil Classification and Compaction.pdf
 
Intze Overhead Water Tank Design by Working Stress - IS Method.pdf
Intze Overhead Water Tank  Design by Working Stress - IS Method.pdfIntze Overhead Water Tank  Design by Working Stress - IS Method.pdf
Intze Overhead Water Tank Design by Working Stress - IS Method.pdf
 
University management System project report..pdf
University management System project report..pdfUniversity management System project report..pdf
University management System project report..pdf
 
Intro To Electric Vehicles PDF Notes.pdf
Intro To Electric Vehicles PDF Notes.pdfIntro To Electric Vehicles PDF Notes.pdf
Intro To Electric Vehicles PDF Notes.pdf
 
Unleashing the Power of the SORA AI lastest leap
Unleashing the Power of the SORA AI lastest leapUnleashing the Power of the SORA AI lastest leap
Unleashing the Power of the SORA AI lastest leap
 
Cara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak Hamil
Cara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak HamilCara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak Hamil
Cara Menggugurkan Sperma Yang Masuk Rahim Biyar Tidak Hamil
 
FEA Based Level 3 Assessment of Deformed Tanks with Fluid Induced Loads
FEA Based Level 3 Assessment of Deformed Tanks with Fluid Induced LoadsFEA Based Level 3 Assessment of Deformed Tanks with Fluid Induced Loads
FEA Based Level 3 Assessment of Deformed Tanks with Fluid Induced Loads
 
(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7
(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7
(INDIRA) Call Girl Bhosari Call Now 8617697112 Bhosari Escorts 24x7
 
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoorTop Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
Top Rated Call Girls In chittoor 📱 {7001035870} VIP Escorts chittoor
 
Booking open Available Pune Call Girls Pargaon 6297143586 Call Hot Indian Gi...
Booking open Available Pune Call Girls Pargaon  6297143586 Call Hot Indian Gi...Booking open Available Pune Call Girls Pargaon  6297143586 Call Hot Indian Gi...
Booking open Available Pune Call Girls Pargaon 6297143586 Call Hot Indian Gi...
 
NFPA 5000 2024 standard .
NFPA 5000 2024 standard                                  .NFPA 5000 2024 standard                                  .
NFPA 5000 2024 standard .
 
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
XXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXXX
 
Call Girls in Ramesh Nagar Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
Call Girls in Ramesh Nagar Delhi 💯 Call Us 🔝9953056974 🔝 Escort ServiceCall Girls in Ramesh Nagar Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
Call Girls in Ramesh Nagar Delhi 💯 Call Us 🔝9953056974 🔝 Escort Service
 

LED & LASER sources of light

  • 1. Semiconductor Devices Presentation on Photonic sources of light By Rohit Singh M.Tech VST School of Engineering Shiv Nadar University
  • 2. Photonic sources of light Photonic sources of light are those source of light in which the basic particle of light-the photon, plays a major role. LED LASER
  • 4. What is an LED? • Light-emitting diode • Semiconductor • Has polarity
  • 5. LED: How It Works • When current flows across a diode • Negative electrons move one way and positive holes move the other way
  • 6. LED: How It Works • The holes exist at a lower energy level than the free electrons • Therefore when a free electrons falls it losses energy
  • 7. LED: How It Works This energy is emitted in a form of a photon, which causes light The color of the light is determined by the fall of the electron and hence energy level of the photon
  • 8. Calculation of wavelength emitted by LED • where E is energy h is planks constant and c is velocity of light λ is wavelength of light. • Rearranging the term we get final equation. )eV( 240.1 m)( gE  E=hc/
  • 9. Inside a Light Emitting Diode 1. Transparent Plastic Case 2. Terminal Pins 3. Diode
  • 11. Light Amplification by Stimulated Emission of Radiation : LASER
  • 13. Stimulated Emission E1 E2 h (a) Absorption h (b) Spontaneous emission h (c) Stimulated emission In h Out h E2 E2 E1 E1 Absorption, spontaneous (random photon) emission and stimulated emission. © 1999 S.O. Kasap, Optoelectronics (Prentice Hall) In stimulated emission, an incoming photon with energy h stimulates the emission process by inducing electrons in E2 to transit down to E1. While moving down to E1, photon of the same energy h will be emitted Resulting in 2 photons coming out of the system Photons are amplified – one incoming photon resulting in two photons coming out.
  • 14. Population Inversion • Non equilibrium distribution of atoms among the various energy level atomic system • To induce more atoms in E2, i.e. to create population inversion, a large amount of energy is required to excite atoms to E2 • The excitation process of atoms so N2 > N1 is called pumping • It is difficult to attain pumping when using two-level-system. • Require 3-level system instead E2 E1 More atoms here N2 N1 N2> N1 E2 E1 E3 There level system
  • 15. Principles of Laser E 1 h13 E 2 Metastable state E 1 E 3 E 2 h32 E 1 E 3 E 2 E 1 E 3 E 2 h21 h21 Coherent photons OUT (a) (b) (c) (d) E 3 . IN • In actual case, excite atoms from E1 to E3. • Exciting atoms from E1 to E3 optical pumping • Atoms from E3 decays rapidly to E2 emitting h3 • If E2 is a long lived state, atoms from E2 will not decay to E1 rapidly • Condition where there are a lot of atoms in E2 population inversion achieved! i.e. between E2 and E1.
  • 16. Coherent Photons Production • When one atom in E2 decays spontaneously, a random photon resulted which will induce stimulated photon from the neighbouring atoms • The photons from the neighbouring atoms will stimulate their neighbours and form avalanche of photons. • Large collection of coherent photons resulted.
  • 17. Laser Diode Principle Consider a p-n junction In order to design a laser diode, the p-n junction must be heavily doped. In other word, the p and n materials must be degenerately doped By degenerated doping, the Fermi level of the n-side will lies in the conduction band whereas the Fermi level in the p-region will lie in the valance band.
  • 18. Diode Laser Operation p+ n+ E Fn (a) E g E v E c E v Holes in VB Electrons in CB Junction Electrons E c p+ E g V n+ (b) E Fn eV E Fp Inversion region E Fp E c E c eV o •P-n junction must be degenerately doped. •Fermi level in valance band (p) and conduction band (n). •No bias, built n potential; eVo barrier to stop electron and holes movement •Forward bias, eV> Eg •Built in potential diminished to zero •Electrons and holes can diffuse to the space charge layer
  • 19. Application of Forward Bias Suppose that the degenerately doped p-n junction is forward biased by a voltage greater than the band gap; eV > Eg The separation between EFn and EFp is now the applied potential energy The applied voltage diminished the built-in potential barrier, eVo to almost zero. Electrons can now flow to the p-side Holes can now flow to the n-side
  • 20. Population Inversion in Diode Laser Electrons in CB EFn EFp CB VB Eg Holes in VB eV EFn-EfP = eV eV > Eg eV = forward bias voltage Fwd Diode current pumping  injection pumping More electrons in the conduction band near EC Than electrons in the valance band near EV There is therefore a population inversion between energies near EC and near EV around the junction. This only achieved when degenerately doped p-n junction is forward bias with energy > Egap
  • 21. The Lasing Action • The population inversion region is a layer along the junction  also call inversion layer or active region • Now consider a photon with E = Eg • Obviously this photon can not excite electrons from EV since there is NO electrons there • However the photon CAN STIMULATE electron to fall down from CB to VB. • Therefore, the incoming photon stimulates emission than absorption • The active region is then said to have ‘optical gain’ since the incoming photon has the ability to cause emission rather than being absorbed.
  • 22. Pumping Mechanism in Laser Diode • It is obvious that the population inversion between energies near EC and those near EV occurs by injection of large charge carrier across the junction by forward biasing the junction. • Therefore the pumping mechanism is FORWARD DIODE CURRENT  Injection pumping
  • 23. For Successful Lasing Action: 1. Optical Gain (not absorb) Achieved by population inversion 2. Optical Feedback Achieved by device configuration Needed to increase the total optical amplification by making photons pass through the gain region multiple times Insert 2 mirrors at each end of laser This is term an oscillator cavity or Fabry Perot cavity Mirrors are partly transmitted and party reflected
  • 24. Reflection of Photons Back and Forth, Higher Gain Fabry-Parrot Cavity The photons vibrates to and forth with resonant wavelength
  • 25. Difference between LASER and LED LASER • Lasers are monochromatic (single color wavelength), collimated (non-divergent) and coherent (wavelengths in- phase) • The peak output power is measured in watt LED • LED's are neither coherent nor collimated and generate a broader band of wavelengths (multiple). • The peak output power is measured in milliwatt.
  • 26. Graph between optical power and diode current