科技报告详细信息
New Crystal-Growth Methods for Producing Lattice-Matched Substrates for High-Temperature Superconductors
Boatner, L.A.
关键词: CRYSTAL GROWTH;    DEFECTS;    DEPOSITION;    DISLOCATIONS;    MONOCRYSTALS;    ORNL;    PRODUCTION;    SUBSTRATES;    SUPERCONDUCTORS;    THIN FILMS;    TRANSPORT;    ZINC OXIDES;   
DOI  :  10.2172/940375
RP-ID  :  ORNL96-0420
PID  :  OSTI ID: 940375
Others  :  TRN: US200824%%263
学科分类:材料科学(综合)
美国|英语
来源: SciTech Connect
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【 摘 要 】
This effort addressed the technical problem of identifying and growing, on a commercial scale, suitable single-crystal substrates for the subsequent deposition of epitaxial thin films of high temperature semiconductors such as GaN/AlN. The lack of suitable lattice-matched substrate materials was one of the major problem areas in the development of semiconducting devices for use at elevated temperatures as well as practical opto-electronic devices based on Al- and GaN technology. Such lattice-matched substrates are necessary in order to reduce or eliminate high concentrations of defects and dislocations in GaN/AlN and related epitaxial thin films. This effort concentrated, in particular, on the growth of single crystals of ZnO for substrate applications and it built on previous ORNL experience in the chemical vapor transport growth of large single crystals of zinc oxide. This combined expertise in the substrate growth area was further complemented by the ability of G. Eres and his collaborators to deposit thin films of GaN on the subject substrates and the overall ORNL capability for characterizing the quality of such films. The research effort consisted of research on the growth of two candidate substrate materials in conjunction with concurrent research on the growth and characterization of GaN films, i.e. the effort combined bulk crystal growth capabilities in the area of substrate production at both ORNL and the industrial partner, Commercial Crystal Growth Laboratories (CCL), Naples, Florida, with the novel thin-film deposition techniques previously developed in the ORNL SSD.
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