622
Views
16
CrossRef citations to date
0
Altmetric
Articles

Photodetection Properties of ZnO/Si Heterojunction Diode: A Simulation Study

, &

REFERENCES

  • R. Hradaynath, “Materials for opto-electronics,” IETE Tech. Rev., Vol. 2, pp. 123–37, 1985.
  • M. M. Mandhare, S. A. Gangal, and R. N. Karekar, “Effect of thick film and bulk ZnO overlays on Ag thick film microstrip rejection filter,” IETE Tech. Rev., Vol. 6, pp. 490–1, Nov. 1989.
  • T. J. Bukowski, K. McCarthy, F. McCarthy, G. Teowee, T. P. Alexander, D. R. Uhlmann, J. T. Dawley, and B. J. J. Zelinski, “Piezoelectric properties of sol–gel derived ZnO thin films,” Integrated Ferroelectrics, Vol. 17, pp. 339–47, Aug. 1997.
  • H. Ohta, K. Kawamura, M. Orita, M. Hirano, N. Sarukura, and H. Hosono, “Current injection emission from a transparent p–n junction composed of p-SrCu2O2/n-ZnO,” Appl. Phys. Lett., Vol. 77, pp. 475–7, 2000.
  • Y. I. Alivov, J. E. Van Nostrand, D. C. Look, M. V. Chukichev, and B. M. Ataev, “Observation of 430 nm electroluminescence from ZnO/GaN heterojunction light-emitting diodes,” Appl. Phys. Lett., Vol. 83, pp. 2943–5, Sep. 2003.
  • S. Sharma, and C. Periasamy, “A study on the electrical characteristic of n-ZnO/p-Si heterojunction diode prepared by vacuum coating technique,” Superlattices Microstruct., Vol. 73, pp. 12–21, Sep. 2014.
  • S. Sharma, and C. Periasamy, “Effect of sputtering power on structural and optical properties of ZnO thin films grown by RF sputtering technique,” J. Nanoelectron. Optoelectron., Vol. 10, pp. 205–10, Apr. 2015.
  • S. Sharma, S. Vyas, C. Periasamy, and P. Chakrabarti, “Structural and optical characterization of ZnO thin films for optoelectronic device applications by RF sputtering technique,” Superlattices Microstruct., Vol. 75, pp. 378–89, Nov. 2014.
  • B. L. Sharma, and R. K. Purohit, Semiconductor Heterojunctions. New York: Pergamon Press, 1974.
  • S. Sharma, and C. Periasamy, “Simulation study and performance analysis of n-ZnO/p-Si heterojunction photodetector,” J. Electron Devices, Vol. 19, pp. 1633–6, Mar. 2014.
  • T. Varma, S. Sharma, C. Periasamy, and D. Boolchandani, “Performance analysis of Pt/ZnO Schottky photodiode using ATLAS,” J. Nanoelectron. Optoelectron., Vol. 10, pp. 761–5, Dec. 2015.
  • ATLAS User's Manual Version 5.10.0.R, SILVACO International, Santa Clara, CA 95054, 2005.
  • C. Periasamy, and P. Chakrabarti, “Effect of temperature on the electrical characteristics of nanostructured n-ZnO/p-Si heterojunction diode,” Sci. Adv. Mater., Vol. 5, pp. 1384–91, Oct. 2013.
  • A. D. D. Dwivedi, A. Mittal, A. Agrawal, and P. Chakrabarti, “Analytical modeling and ATLAS simulation of N+-InP/n0-In0.53Ga0.47As/p+-In0.53Ga0.47 as p-i-n photodetector for optical fiber communication,” Infrared Phys. Technol., Vol. 53, pp. 236–45, Jul. 2010.
  • S. Majumdar, and P. Banerji, “Temperature dependent electrical transport in p-ZnO/n-Si heterojunction formed by pulsed laser deposition,” J. Appl. Phys., Vol. 105, pp. 043704–4, Feb. 2009.
  • R. K. Lal, and P. Chakrabarti, “An analytical model of P+-InAsSbP/no-InAs/n+-InAs single heterojunction photodetector for 2.4–3.5 μm region,” Opt. Quantum Electron., Vol. 36, pp. 935–47, Aug. 2004.
  • P. Chakrabarti, A. Krier, and A. F. Morgan, “Analysis and simulation of a mid-infrared P+-InAs0.55Sb0.15P0.30/n0-InAs0.89Sb0.11/N+-InAs0.55Sb0.15P0.30 double heterojunction photodetector grown by LPE,” IEEE Trans. Electron Devices, Vol. 50, pp. 2049–58, Oct. 2003.
  • P. K. Saxena, “ZnO based LED: A performance optimization through TCAD simulation,” Simul. Standard, Vol. 22, pp. 7–10, 2012.
  • L. J. Mandalapu, Z. Yang, S. Chu, and J. L. Liu, “Ultraviolet emission from Sb-doped p-type ZnO based heterojunction light-emitting diodes,” Appl. Phys. Lett., Vol. 92, pp. 122101–3, Mar. 2008.
  • V. Kabra, L. Aamir, and M. M. Malik, “Low cost, p-ZnO/n-Si, rectifying, nano heterojunction diode: Fabrication and electrical characterization,” Beilstein J. Nanotechnol. Vol. 5, pp. 2216–21, Nov. 2014.
  • K. Liu, M. Sakurai, and M. Aono, “ZnO based ultraviolet photodetectors,” Sensors, Vol. 10, pp. 8604–34, Sep. 2010.
  • S. Mridha, and D. Basak, “Ultraviolet and visible photoresponse properties of n-ZnO/p-Si heterojunction,” J. Appl. Phys., Vol. 101, pp. 083102–5, Apr. 2007.
  • I. S. Jeong, J. H. Kim, and S. Im, “Ultraviolet-enhanced photodiode employing n-ZnO/p-Si structure,” Appl. Phys. Lett., Vol. 83, pp. 2946–8, Sep. 2003.
  • M. S. P. Reddy, B. Kim, and J. Jang, “Dual detection of ultraviolet and visible lights using a DNA-CTMA/GaN photodiode with electrically different polarity,” Opt. Express, Vol. 22, pp. 908–15, 2014.
  • L.C. Chen,“Si-based ZnO ultraviolet photodiodes (Photodiodes - From Fundamentals to Applications and Dr. Ilgu Yun),” in InTech, Croatia, European Union, 2012, pp. 195–213.
  • P.K. Saxena, and P. Chakrabarti, “Computer modeling of MWIR single heterojunction photodetector based on mercury cadmium telluride,” Infrared Phys. Technol., Vol. 52, pp. 196–203, Sep. 2009.
  • R. K. Lal, M. Jain, S. Gupta, and P. Chakrabarti, “An analytical model of a double-heterostructure mid-infrared photodetector,” Infrared Phys. Technol., Vol. 44, pp. 125–32, Apr. 2003.
  • A. D. D. Dwivedi, “Analytical modeling and numerical simulation of P+-Hg0.69Cd0.31Te/n-Hg0.78Cd0.22Te/CdZnTe heterojunction photodetector for a long-wavelength infrared free space optical communication system,” J. Appl. Phys., Vol. 110, pp. 043101–10, Aug. 2011.
  • C. H. Park, I. S. Jeong, J. H. Kim, and S. Im, “Spectral responsivity and quantum efficiency of n-ZnO/p-Si photodiode fully isolated by ion-beam treatment,” Appl. Phys. Lett., Vol. 82, pp. 3973–5, May 2003.
  • G. M. Ali, and P. Chakrabarti, “Performance of ZnO-based ultraviolet photodetectors under varying thermal treatment,” IEEE Photon. J., Vol. 2, 784–93, Oct. 2010.
  • S. Mridha, M. Dutta, and D. Basak, “Photoresponse of n-ZnO/p-Si heterojunction towards ultraviolet/visible lights: Thickness dependent behaviour,” J. Mater. Sci. Mater. Electron., Vol. 20, pp. 376–9, Jan. 2009.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.