Reciprocal space mapping for semiconductor substrates and device heterostructures

被引:6
|
作者
Goorsky, MS [1 ]
Matney, KM [1 ]
Meshkinpour, M [1 ]
Streit, DC [1 ]
Block, TR [1 ]
机构
[1] TRW CO INC, ELECT TECHNOL DIV, SPACE & ELECT GRP, REDONDO BEACH, CA 90278 USA
关键词
D O I
10.1007/BF03040981
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
We produced wafer maps of triple-axis X-ray diffraction omega scans (omega or omega-map) to determine the location of high and low crystalline perfection in both the substrate and the 15-20 nm channel region in device-quality GaAs and InP-based pseudomorphic high electron mobility transistors. The triple-axis maps are more sensitive to different types of crystallographic defects than are double-axis measurements. A map showing full width at half-maximum variations provides information on variations in crystallographic tilt; a map showing full width at five thousandths maximum shows polishing damage variations across the wafer. Monitoring the detector position determines lattice parameter variations across the wafer as well, although we did not observe significant lattice parameter variations in a given wafer. The crystallographic perfection of the channel layer replicates that of the underlying substrate and electrical measurements taken at the different regions show that the lower crystalline quality conforms with reduced electrical performance. Omega maps are also used to assess the influence of different growth parameters and post-growth annealing treatments on substrate crystallographic perfection. The non-destructive nature of this technique makes it ideal for studying structure/performance relationships in semiconductor heterostructures.
引用
收藏
页码:257 / 266
页数:10
相关论文
共 50 条
  • [1] Reciprocal space mapping of implanted AIIIBV semiconductor compounds
    Wieteska, K. (wierzc_w@sp.itme.edu.pl), 1600, Elsevier Ltd (362): : 1 - 2
  • [2] Reciprocal space mapping of implanted AIIIBV semiconductor compounds
    Wieteska, K
    Wierzchowski, W
    Graeff, W
    Kuri, G
    Misiuk, A
    Turos, A
    Gawlik, G
    JOURNAL OF ALLOYS AND COMPOUNDS, 2004, 362 (1-2) : 297 - 300
  • [3] Reciprocal space mapping of MBE-grown HgCdTe heterostructures
    Sewell, RH
    Musca, CA
    Dell, JM
    Faraone, L
    Dieing, T
    Usher, B
    Commad 04: 2004 Conference on Optoelectronic and Microelectronic Materials and Devices, Proceedings, 2005, : 81 - 84
  • [4] Reciprocal space mapping
    Fewster, PF
    CRITICAL REVIEWS IN SOLID STATE AND MATERIALS SCIENCES, 1997, 22 (02) : 69 - 110
  • [5] Reciprocal space mapping
    Fewster, PF
    X-RAY AND NEUTRON DYNAMICAL DIFFRACTION: THEORY AND APPLICATIONS, 1996, 357 : 269 - 288
  • [6] Neuro-space mapping technique for semiconductor device modeling
    Zhang, Lei
    Zhang, Qi-Jun
    OPTIMIZATION AND ENGINEERING, 2008, 9 (04) : 393 - 405
  • [7] Neuro-space mapping technique for semiconductor device modeling
    Lei Zhang
    Qi-Jun Zhang
    Optimization and Engineering, 2008, 9 : 393 - 405
  • [8] Mapping in real and reciprocal space
    Wroblewski, T.
    Breuer, D.
    Crostack, H.-A.
    Fandrich, F.
    Gross, M.
    Klimanek, P.
    Materials Science Forum, 1998, 278-281 (Pt 1): : 216 - 220
  • [9] Mapping in real and reciprocal space
    Wroblewski, T
    Breuer, D
    Crostack, HA
    Fandrich, F
    Gross, M
    Klimanek, P
    EPDIC 5, PTS 1 AND 2, 1998, 278-2 : 216 - 220
  • [10] X-ray reciprocal space mapping of Si/Si1-xCex heterostructures
    Bauer, G
    Li, JH
    Koppensteiner, E
    JOURNAL OF CRYSTAL GROWTH, 1995, 157 (1-4) : 61 - 67