Hostname: page-component-78c5997874-xbtfd Total loading time: 0 Render date: 2024-11-17T20:15:22.297Z Has data issue: false hasContentIssue false

Study of MBE ZnSe Growth Using Rheed Oscillations

Published online by Cambridge University Press:  28 February 2011

Francoise S. Turco
Affiliation:
BELLCORE, 331 Newman Springs Road, Red Bank, NJ 07701
M.C. Tamargo
Affiliation:
BELLCORE, 331 Newman Springs Road, Red Bank, NJ 07701
Get access

Abstract

Reflection high energy electron diffraction (RHEED) intensity oscillations are often used to investigate in situ the growth of III-V materials by molecular beam epitaxy (MBE). In this work, we have used RHEED oscillations to perform a quantitative study of the growth mechanisms of ZnSe, a II-VI semiconductor.

Our experiments illustrate that the RHEED pattern of ZnSe is far less intense than that of III-V materials grown by MBE, and no specular spot is observed over a wide range of growth conditions. We have, however, been able to record up to 25 oscillations allowing a quantitative study of the growth of ZnSe by MBE. Thus we have used RHEED oscillations to make an in situ systematic study of the influence of the three main growth parameters (substrate temperature and Zn or Se impinging fluxes) on the ZnSe growth rate. We observed that the variation of the ZnSe growth rate is due to a non unity sticking coefficient of both Zn and Se species at the interface in the standard growth conditions used. Our observations can be described using a thermodynamic model and enable us to control the desired growth conditions. Our work demonstrates the utility of RHEED oscillations to understand the MBE growth mechanisms of II-VI compounds.

Type
Research Article
Copyright
Copyright © Materials Research Society 1989

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

1. Yao, T., The technology and Physics of Molecular Beam Epitaxv (E.H.C.Parker Plenum, New York, 1986) and references thereinGoogle Scholar
2. Yao, T., Taneda, H., Funaki, M., Jpn.J.Appl.Phys. 25 (12), L952 (1986)Google Scholar
3. Gunshor, R.L., Kolodziejski, L.A., Melloch, M.R., Vaziri, M., Choi, C., Otsuka, N., Appl.Phys.Lett. 50 (4) 200 (1987)Google Scholar
4. Kolodziejski, L.A., Gunshor, R.L., Otsuka, N., Gu, B.P., Hefetz, Y., Nurmikko, A.V., J.Cryst.Growth 81, 491 (1987)CrossRefGoogle Scholar
5. Yao, T., Fujimoto, M., Uesugi, K., Kamiyama, S., Growth and optical properties of wide-gap II-VI's low dimensional semiconductors (Ed. McGill, T.C., Sotomayor-Torres, C.M. and Gebhardt, W.)Google Scholar
6.J.M.Arias and Sullivan, G., J.Vac.Sci.Technol. A5 (5), 3143 (1987)Google Scholar
7. Heckingbottom, R., J.Vac.Sci.Technol. B3 (2), 572 (1985)Google Scholar
8. Tamargo, M.C., Miguel, J.L. de, Hwang, D.M., Farrell, H.H., J.Vac.Sci.Technol. B1 (2), 784 (1988)Google Scholar
9. Yao, T. and Takeda, T., Appl.Phys.Lett. 48, 160 (1986)CrossRefGoogle Scholar