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Infrared, Self Assembled InAs GaAs Quantum Dot, Photodetectors

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57 meV. 61 meV. h 100 010. h 110. h 200. h 020. s 000. 930 meV ... S.Sauvage et al. C.R. Physique 4, p1133 (2003) Dark and Photo Current. Thermionic emission ... – PowerPoint PPT presentation

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Title: Infrared, Self Assembled InAs GaAs Quantum Dot, Photodetectors


1
Infrared, Self Assembled InAs/ GaAs Quantum Dot,
Photodetectors
June 23, 2005
  • Michiel C. Donker

RuG
2
Infrared Light
Infrared
3
IR Detector Applications
  • Medicine
  • Medicine
  • Astronomy
  • Astronomy
  • Defense
  • Defense
  • Environment
  • Environment

8.5 µm 0.15 eV
4
Content
  • Introduction
  • Quantum Dots
  • Device Fabrication
  • Electronic Structure
  • Characterisation and Performance
  • Conclusion

5
HgCdTe Detectors
  • Hg1-xCdxTe
  • Wavelength 0.7- 25 µm
  • High detectivity
  • Difficult to process

0.0495 - 1.77 eV
Hole
Vbias 1.0 V
  • Photo Current

HgCdTe
  • Dark Current

Electron
6
Quantum Confinement
InAs
Bulk 3D
7
Density of States
Bulk
Quantum Well
Quantum Wire
Quantum Dot
g(E) density of states
8
Quantum Dot Particle in a Box
  • Infinite potential barrier
  • ? sin(npx/ Lx) sin(mpy/ Ly) sin(lpz/ Lz)
  • Selection rules

1-D
9
Self Assembled Quantum Dots
  • Host GaAs 5.653 Å
  • Quantum Dot InAs 5.867 Å
  • Stranski- Krastanov growth

GaAs
10
Electronic Structure
  • Lens shaped QDs
  • Pyrimidal QDs

S.Sauvage et al. C.R. Physique 4, p1133 (2003)
11
Characterisation
  • Intersubband absorption

e ? e ?nodd non zero ?neven zero
In plane as well as normal incidence absorption
S.Sauvage et al. C.R. Physique 4, p1133 (2003)
12
Dark and Photo Current
  • Thermionic emission
  • Tunneling
  • Thermally assisted tunneling
  • Thermal generation e/ h pair

GaAs conduction band
Energy
InAs wetting layer
  • Wetting layer
  • Conduction band
  • Bound state

z direction
13
Capture Probability
Carrier relaxation processes
  • phonon (lattice vibration)
  • e-e scattering
  • e-h scattering

GaAs
  • recombination

D
?E h c/ ?cut off
P
S
The more electrons in a QD, the more charge.
E
GaAs
InAs
z
14
Dark and Photo Current
  • Thermal generation
  • Tunneling
  • Number of electrons per QD
  • QD density
  • Number of QD layers
  • Capture probability

Dark
20 K
  • Angle of incidence
  • Shape and size
  • Absorption cross section
  • Vbias

D.Pang et el. Appl. Phys. Lett. 75, p. 2719 (1999)
15
Responsivity and Detectivity
  • Responsivity (mA/ W)
  • Detectivity (cm Hz1/2/ W) signal to noise ratio
  • Background photon noise
  • Photo electron noise detectable carrier ?,
    not detectable (1- ?)
  • Receiver circuit noise

16
Responsivity and Detectivity
Iphotocurrent
  • Responsivity (mA/ W)

Poptical power
L. Jiang et al. Appl. Phys. Lett. 82, p.1986
(2003)
  • Detectivity (cm Hz1/2/ W) signal to noise ratio

77 K Vbias -2.0 V QD density 1.2 x
1010 Size 26 nm 6 nm
D 3.6 x 1010 cm Hz1/2/ W
17
Conclusion
  • QD D 3.6 x 1010 cm Hz1/2/ W
  • HdCdTe D 2.2 x 1012 cm Hz1/2/ W
  • electrons per dot
  • dot density
  • dot size and shape
  • spacing thickness
  • transport direction

J.Philips et al. Encyclopedia of Nanoscience and
Nanotechnology, 9 p. 131 (2004)
18
Acknowledgements
Paul van Loosdrecht
Quantum Well Camera
19
Questions
  • Infinite potential barrier
  • ? sin(npx/ L) sin(mpy/ L) sin(lpz/ L)
  • Selection rules
  • Fermi golden rule

20
Questions
  • Interband Photo Luminescense
  • Intersubband Absorption

S.Sauvage et al. C.R. Physique 4, p1133 (2003)
21
Questions
  • D R A?f / Inoise
  • H Hkp Hstrain Vconfining potential
  • En (k) En (0) h2k2/2m
  • h2/m2 S n band
    index

22
Questions
GaAs
GaAs
AlGaAs
AlGaAs
InAs
E
z
23
Questions
  • L. Jiang et al. APL 82, p.1986 (2003)

24
Questions
  • S.F. Tang et al. APL 78, p. 2428 (2001)

25
Questions
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