Research Article

InP based converter cells under DC plasma influence

Volume: 3 Number: 4 December 31, 2019
EN

InP based converter cells under DC plasma influence

Abstract

The plasma parameters have been determined in an infrared image converter for the InP based plasma cell in a broad range of gas pressure from 10 Torr to 760 Torr at room temperature.  The electrical properties of the system are controlled by both the plasma and InP electrode. InP has high electron mobility compared to other semiconductors and it can be used for high-speed optoelectronic device applications. Further, any small change in the charge transport mechanism may cause important changes in the system characteristics. The experimental measurements are carried out in air and He media. The homogeneity of the discharge radiation emission depends on the resistivity distribution of the photodetector plate and the radiation intensity is proportional to the plasma current. Local changes in the resistivity of the semiconductor result in local changes in the current and plasma emission.

Keywords

Supporting Institution

Gazi Üniversitesi

References

  1. [1] Kurt, H.H., & Salamov, B.G. Breakdown phenomenon and electrical process in a microplasma system with InP electrode, JOM. 2019. DOI: 10.1007/s11837-019-03956-0
  2. [2] Hayasi, H. Development of compound semiconductor devices -In Search of immense possibilities-, SEI Technical Review, 2011, 72, 1-13
  3. [3] Fathpour, S. Emerging heterogeneous integrated photonic platforms on silicon, Nanophotonics, 2015, 4, 143-164
  4. [4] Sweeney S.J., Mukherjee J. (2017) Optoelectronic Devices and Materials. In: Kasap S., Capper P. (eds) Springer Handbook of Electronic and Photonic Materials. Springer Handbooks. Springer, Cham
  5. [5] Klamkin, J.et al., Indium phosphide photonic integrated circuits: technology and applications, 2018 IEEE BiCMOS and Compound Semiconductor Integrated Circuits and Technology Symposium (BCICTS), San Diego, CA, 2018, pp. 8-13. DOI: 10.1109/BCICTS.2018.8550947
  6. [6] Y. Fu, Zhang, P, Verboncoeur, J. P. Paschen's curve in microgaps with an electrode surface protrusion. Applied Physics Letters 2018, 113, 054102. DOI: 10.1063/1.5045182
  7. [7] Kurt, H.H. Exploration of the infrared sensitivity for a ZnSe electrode of an IR image converter. Journal of Elec Materi. 2018, 47, 4486–4492. DOI: 10.1007/s11664-018-6319-1
  8. [8] Salamov, BG, Kurt, HY, Current instability in a planar gas discharge system with a large-diameter semiconductor cathode. Journal of Physics D: Applied Physics, 2005, 38(5), 682-687.

Details

Primary Language

English

Subjects

Electrical Engineering

Journal Section

Research Article

Publication Date

December 31, 2019

Submission Date

October 13, 2019

Acceptance Date

December 26, 2019

Published in Issue

Year 2019 Volume: 3 Number: 4

APA
Kurt, H. (2019). InP based converter cells under DC plasma influence. Journal of Energy Systems, 3(4), 183-188. https://doi.org/10.30521/jes.659237
AMA
1.Kurt H. InP based converter cells under DC plasma influence. Journal of Energy Systems. 2019;3(4):183-188. doi:10.30521/jes.659237
Chicago
Kurt, Hatice. 2019. “InP Based Converter Cells under DC Plasma Influence”. Journal of Energy Systems 3 (4): 183-88. https://doi.org/10.30521/jes.659237.
EndNote
Kurt H (December 1, 2019) InP based converter cells under DC plasma influence. Journal of Energy Systems 3 4 183–188.
IEEE
[1]H. Kurt, “InP based converter cells under DC plasma influence”, Journal of Energy Systems, vol. 3, no. 4, pp. 183–188, Dec. 2019, doi: 10.30521/jes.659237.
ISNAD
Kurt, Hatice. “InP Based Converter Cells under DC Plasma Influence”. Journal of Energy Systems 3/4 (December 1, 2019): 183-188. https://doi.org/10.30521/jes.659237.
JAMA
1.Kurt H. InP based converter cells under DC plasma influence. Journal of Energy Systems. 2019;3:183–188.
MLA
Kurt, Hatice. “InP Based Converter Cells under DC Plasma Influence”. Journal of Energy Systems, vol. 3, no. 4, Dec. 2019, pp. 183-8, doi:10.30521/jes.659237.
Vancouver
1.Hatice Kurt. InP based converter cells under DC plasma influence. Journal of Energy Systems. 2019 Dec. 1;3(4):183-8. doi:10.30521/jes.659237

Journal of Energy Systems is licensed under CC BY-NC 4.0