Shalish, Ilan ; Temkin, Henryk ; Narayanamurti, Venkatesh (2004) Size-dependent surface luminescence in ZnO nanowires Physical Review B, 69 (24). 245401_1-245401_4. ISSN 1098-0121
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Official URL: http://link.aps.org/doi/10.1103/PhysRevB.69.245401
Related URL: http://dx.doi.org/10.1103/PhysRevB.69.245401
Abstract
Nanometer sized whiskers (nanowires) offer a vehicle for the study of size-dependent phenomena. While quantum-size effects are commonly expected and easily predicted, size reduction also causes more atoms to be closer to the surface. Here we show that intensity relations of below-band-gap and band-edge luminescence in ZnO nanowires depend on the wire radius. Assuming a surface layer wherein the surface-recombination probability is 1 (surface-recombination approximation), we explain this size effect in terms of bulk-related to surface-related material-volume ratio that varies almost linearly with the radius. This relation supports a surface-recombination origin for the deep-level luminescence we observe. The weight of this surface-luminescence increases as the wire radius decreases at the expense of the band-edge emission. Using this model, we obtain a radius of 30 nm, below which in our wires surface-recombination prevails. More generally, our results suggest that in quantum-size nanowires, surface-recombination may entirely quench band-to-band recombination, presenting an efficient sink for charge carriers that unless deactivated may be detrimental for electronic devices.
Item Type: | Article |
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Source: | Copyright of this article belongs to American Physical Society. |
ID Code: | 30713 |
Deposited On: | 27 Dec 2010 08:25 |
Last Modified: | 17 May 2016 13:19 |
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