Optimization of the Number of Stacks in the Submonolayer Quantum Dot Heterostructure for Infrared Photodetectors

被引:16
|
作者
Das, Debabrata [1 ]
Ghadi, Hemant [1 ]
Sengupta, Saumya [1 ]
Ahmad, Aijaz [1 ]
Manohar, Ashutosh [1 ]
Chakrabarti, Subhananda [1 ]
机构
[1] Indian Inst Technol, Bombay 400076, Maharashtra, India
关键词
Infrared detectors; photodetectors; photoluminescence; quantum dots; WELL;
D O I
10.1109/TNANO.2015.2513318
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
We studied the optical, electrical, and spectral properties of InAs submonolayer quantum dot infrared photodetectors with different number of stacks. Three samples with 4, 6, and 8 dot stacks were grown by molecular beam epitaxy under identical conditions. Increasing the number of stacks results in a gradual shift in the photoluminescence ground-state transition energy of the samples from 1.195 to 1.111 eV. Cross-sectional transmission electron microscopy images confirm increase in dot size with increasing number of stacks from 4 to 8. Samples with 4 and 6 stacks measured moderately uniform dot size distribution and with further increasing the number of stacks 4 to 8 variations in dot sizes along with improper dot size formation were observed. The activation energy of the samples was measured by both optical and electrical methods increase with increasing number of dots. All photodetectors exhibit a photocurrent peak in the range of 7.3-7.8 mu m at 77 K at an applied bias of -1 V. Highest peak responsivity value of 0.04523 A/W at 77 K was observed from the 6 stacked sample, which was highest among the three samples. It also exhibited highest detectivity of 5E9 Jones with lowest noise current density among the others. The sample with 6 dot stacks is the best as it exhibited lowest dark current density of 6.1 (10(-7) A/cm(2) and highest operating temperature of 110 K).
引用
收藏
页码:214 / 219
页数:6
相关论文
共 50 条
  • [1] Effect of As flux on InAs submonolayer quantum dot formation for infrared photodetectors
    Alzeidan, A.
    Cantalice, T. F.
    Vallejo, K. D.
    Gajjela, R. S. R.
    Hendriks, A. L.
    Simmonds, P. J.
    Koenraad, P. M.
    Quivy, A. A.
    SENSORS AND ACTUATORS A-PHYSICAL, 2022, 334
  • [2] Submonolayer quantum dot infrared photodetector
    Ting, David Z. -Y.
    Bandara, Sumith V.
    Gunapala, Sarath D.
    Mumolo, Jason M.
    Keo, Sam A.
    Hill, Cory J.
    Liu, John K.
    Blazejewski, Edward R.
    Rafol, Sir B.
    Chang, Yia-Chung
    APPLIED PHYSICS LETTERS, 2009, 94 (11)
  • [3] Quantum dot infrared photodetectors
    Bhattacharya, P
    Stiff-Roberts, AD
    Krishna, S
    Kennerly, S
    PHYSICS AND SIMULATION OF OPTOELECTRONIC DEVICES X, 2002, 4646 : 100 - 109
  • [4] Quantum dot infrared photodetectors
    Ye, ZM
    Campbell, JC
    Chen, ZH
    Kim, ET
    Madhukar, A
    QUANTUM DOT DEVICES AND COMPUTING, 2002, 4656 : 16 - 24
  • [5] Quantum dot infrared photodetectors
    Liu, HC
    Duboz, JY
    Dudek, R
    Wasilewski, ZR
    Fafard, S
    Finnie, P
    PHYSICA E-LOW-DIMENSIONAL SYSTEMS & NANOSTRUCTURES, 2003, 17 (1-4): : 631 - 633
  • [6] Quantum dot infrared photodetectors
    Liu, HC
    Gao, M
    McCaffrey, J
    Wasilewski, ZR
    Fafard, S
    APPLIED PHYSICS LETTERS, 2001, 78 (01) : 79 - 81
  • [7] Quantum Dot Infrared Photodetectors
    Barve, Ajit V.
    Krishna, Sanjay
    ADVANCES IN INFRARED PHOTODETECTORS, 2011, 84 : 153 - 193
  • [8] Quantum dot and quantum wire infrared photodetectors
    Ryzhii, V
    Khymrova, I
    PHYSICS AND SIMULATION OF OPTOELECTRONIC DEVICES XI, 2003, 4986 : 190 - 205
  • [9] Outlook on quantum dot infrared photodetectors
    Rogalski A.
    Opt. Mem. Neural Netw. (Inf. Opt.), 2009, 3 (234-252): : 234 - 252
  • [10] Quantum-dot infrared photodetectors
    Campbell, Joe C.
    Madhukar, Anupam
    PROCEEDINGS OF THE IEEE, 2007, 95 (09) : 1815 - 1827