Kelvin probe force microscopy for the characterization of semiconductor surfaces in chalcopyrite solar cells

被引:13
|
作者
Sommerhalter, C [1 ]
Sadewasser, S [1 ]
Glatzel, T [1 ]
Matthes, TW [1 ]
Jäger-Waldau, A [1 ]
Lux-Steiner, MC [1 ]
机构
[1] Hahn Meitner Inst Berlin GmbH, D-14109 Berlin, Germany
关键词
atomic force microscopy; work function measurements; surface photovoltage; heterojunctions; semiconducting surfaces;
D O I
10.1016/S0039-6028(01)00878-0
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Kelvin probe force microscopy in ultrahigh vacuum is a powerful technique for the quantitative characterization of structural and electronic properties of semiconductor surfaces and interfaces on a nanometer scale. In chalcopyrite heterojunction solar cells the interfaces play a crucial role for the performance of the device. We studied chalcopyrite heterostructures based on epitaxial CuGaSe2 thin films prepared by MOVPE. Lateral variations of the contact potential difference and the surface photovoltage (SPV) were investigated after different process steps, including the deposition of n-CdS or n-ZnSe buffer layers and the n(+)-ZnO window layer. Measurements on the CuGaSe2 absorber material show terraces with preferential orientation in the [110] direction in the topographic image. A negative SPV of -300 mV on the as-grown CuGaSe2 absorber could be attributed to a highly doped p(+)-Cu2-xSe surface layer of a few nm thickness, which was removed by a KCN etch, resulting in a flat band condition. The deposition of the buffer layer alone does not lead to a significant band bending at the CuGaSe2/buffer interface and the deposition of the ZnO window layer seems to be crucial for the development of the band bending within the absorber. (C) 2001 Elsevier Science B.V. All rights reserved.
引用
收藏
页码:1362 / 1367
页数:6
相关论文
共 50 条
  • [41] Kelvin probe force microscopy in liquid using electrochemical force microscopy
    Collins, Liam
    Jesse, Stephen
    Kilpatrick, Jason I.
    Tselev, Alexander
    Okatan, M. Baris
    Kalinin, Sergei V.
    Rodriguez, Brian J.
    BEILSTEIN JOURNAL OF NANOTECHNOLOGY, 2015, 6 : 201 - 214
  • [42] Characterization of semiconductor surfaces with noncontact atomic force microscopy
    Morita, S
    Sugawara, Y
    NANOTECHNOLOGY AND NANO-INTERFACE CONTROLLED ELECTRONIC DEVICES, 2003, : 429 - 453
  • [43] PREDICTABLE BEHAVIOR OF ORGANIC PHOTOVOLTAIC CELLS BY KELVIN PROBE FORCE MICROSCOPY
    Roche, R.
    Lereu, A. L.
    Dumas, Ph.
    PHYSICS, CHEMISTRY AND APPLICATIONS OF NANOSTRUCTURES: REVIEWS AND SHORT NOTES, 2013, : 480 - 486
  • [44] Kelvin probe force microscopy of beveled semiconductors
    Ferguson, RS
    Fobelets, K
    Cohen, LF
    JOURNAL OF VACUUM SCIENCE & TECHNOLOGY B, 2002, 20 (05): : 2133 - 2136
  • [45] Kelvin probe force microscopy and its application
    Melitz, Wilhelm
    Shen, Jian
    Kummel, Andrew C.
    Lee, Sangyeob
    SURFACE SCIENCE REPORTS, 2011, 66 (01) : 1 - 27
  • [46] Practical aspects of Kelvin probe force microscopy
    Jacobs, HO
    Knapp, HF
    Stemmer, A
    REVIEW OF SCIENTIFIC INSTRUMENTS, 1999, 70 (03): : 1756 - 1760
  • [47] On the deconvolution of Kelvin probe force microscopy data
    Bluemel, A.
    Plank, H.
    Klug, A.
    Fisslthaler, E.
    Sezen, M.
    Grogger, W.
    List, E. J. W.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2010, 81 (05):
  • [48] Resolution and contrast in Kelvin probe force microscopy
    Jacobs, HO
    Leuchtmann, P
    Homan, OJ
    Stemmer, A
    JOURNAL OF APPLIED PHYSICS, 1998, 84 (03) : 1168 - 1173
  • [49] Kelvin Probe Force Microscopy in Nonpolar Liquids
    Domanski, Anna L.
    Sengupta, Esha
    Bley, Karina
    Untch, Maria B.
    Weber, Stefan A. L.
    Landfester, Katharina
    Weiss, Clemens K.
    Butt, Hans-Juergen
    Berger, Ruediger
    LANGMUIR, 2012, 28 (39) : 13892 - 13899
  • [50] Quantitative AC - Kelvin Probe Force Microscopy
    Kohl, Dominik
    Mesquida, Patrick
    Schitter, Georg
    MICROELECTRONIC ENGINEERING, 2017, 176 : 28 - 32