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Identification of the zinc-oxygen divacancy in ZnO crystals.

Authors :
Holston, M. S.
Golden, E. M.
Kananen, B. E.
McClory, J. W.
Giles, N. C.
Halliburton, L. E.
Source :
Journal of Applied Physics. 2016, Vol. 119 Issue 14, p145701-1-145701-7. 7p. 2 Diagrams, 1 Chart, 4 Graphs.
Publication Year :
2016

Abstract

n electron paramagnetic resonance(EPR) spectrum in neutron-irradiated ZnO crystals is assigned to the zinc-oxygen divacancy. These divacancies are observed in the bulk of both hydrothermally grown and seeded-chemical-vapor-transport-grown crystals after irradiations with fast neutrons. Neutral nonparamagnetic complexes consisting of adjacent zinc and oxygen vacancies are formed during the irradiation. Subsequent illumination below ∼150K with 442nm laser light converts these (VZn2--Vo2+)o defects to their EPR-active state (VZn--Vo2+)+ as electrons are transferred to donors. The resulting photoinduced S=1/2 spectrum of the divacancy is holelike and has a well-resolved angular dependence from which a complete g matrix is obtained. Principal values of the g matrix are 2.00796, 2.00480, and 2.00244. The unpaired spin resides primarily on one of the three remaining oxygen ions immediately adjacent to the zincvacancy, thus making the electronic structure of the (VZn--Vo2+)+ ground state similar to the isolated singly ionized axial zincvacancy. The neutral (V²Zn-V²o2+)0 divacancies dissociate when the ZnO crystals are heated above 250°C. After heating above this temperature, the divacancy EPR signal cannot be regenerated at low temperature with light. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00218979
Volume :
119
Issue :
14
Database :
Academic Search Index
Journal :
Journal of Applied Physics
Publication Type :
Academic Journal
Accession number :
114547409
Full Text :
https://doi.org/10.1063/1.4945703