Paper
10 December 1992 State of the art of Hg-melt LPE HgCdTe at Santa Barbara Research Center
Tse Tung, L V. DeArmond, R. F. Herald, P. E. Herning, Murray H. Kalisher, D. A. Olson, R. F. Risser, Andrew Stevens, S. J. Tighe
Author Affiliations +
Abstract
Liquid-phase epitaxy (LPE) has emerged as the predominant materials growth technology for the fabrication of HgCdTe infrared (IR) detectors in the IR community over the past decade. This paper reviews one of the most successful LPE technologies developed for HgCdTe, specifically, 'infinite-melt' vertical LPE (VLPE) from Hg-rich solutions. A historical perspective and the current status of VLPE technology are reported. Extensive statistics of performance and producibility of the VLPE technology are elaborated to show its maturity and manufacturing readiness. Particular emphasis is placed on the key role of the double-layer heterojunction (DLHJ) detectors realized by the VLPE technology for high-performance second-generation focal plane arrays. Recent developments in the successful use of the VLPE technology for epitaxial growth on Si-based alternative substrates and for growth of triple- layer heterostructures for two-color applications, which further demonstrate the versatility of the technology, are also reported. The review concludes with a discussion of the prospects for use of the VLPE technology for fabricating advanced device structures of high performance as well as investigating fundamental material properties of HgCdTe.
© (1992) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Tse Tung, L V. DeArmond, R. F. Herald, P. E. Herning, Murray H. Kalisher, D. A. Olson, R. F. Risser, Andrew Stevens, and S. J. Tighe "State of the art of Hg-melt LPE HgCdTe at Santa Barbara Research Center", Proc. SPIE 1735, Infrared Detectors: State of the Art, (10 December 1992); https://doi.org/10.1117/12.138616
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Cited by 60 scholarly publications and 1 patent.
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KEYWORDS
Mercury cadmium telluride

Liquid phase epitaxy

Long wavelength infrared

Sensors

Heterojunctions

Infrared detectors

Mid-IR

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