Loading…

Selective nano-emitter fabricated by silver assisted chemical etch-back for multicrystalline solar cells

A nano-emitter is fabricated by one-step Ag-assisted chemical etch-back after conventional POCl sub(3) diffusion, with the intention of overcoming the relatively low efficiency of black silicon solar cells. The conversion efficiency of the multicrystalline silicon nano-emitter solar cell with a suit...

Full description

Saved in:
Bibliographic Details
Published in:RSC advances 2013-01, Vol.3 (35), p.15483-15489
Main Authors: Wang, Y., Liu, Y. P., Lai, T., Liang, H. L., Li, Z. L., Mei, Z. X., Zhang, F. M., Kuznetsov, A., Du, X. L.
Format: Article
Language:English
Subjects:
Citations: Items that this one cites
Items that cite this one
Online Access:Get full text
Tags: Add Tag
No Tags, Be the first to tag this record!
Description
Summary:A nano-emitter is fabricated by one-step Ag-assisted chemical etch-back after conventional POCl sub(3) diffusion, with the intention of overcoming the relatively low efficiency of black silicon solar cells. The conversion efficiency of the multicrystalline silicon nano-emitter solar cell with a suitable sheet resistance is significantly improved thanks to the increased open-circuit voltage, short current and fill factor, all arising from the reduced surface recombination and Auger recombination, as well as the improved ohmic contact. In order to further improve the performance of the solar cell, it is combined with the selective emitter technique, resulting in a multicrystalline silicon selective nano-emitter solar cell. The selective emitters - etched back for different sheet resistances - are investigated to optimize the conversion efficiency. A 16.94% conversion efficiency is finally achieved with a sheet resistance of 107 Omega sq super(-1), which is 0.34% higher than a standard selective emitter solar cell. Such an improved efficiency can be attributed to a lower reflectivity, a more homogeneous emitter, a smaller surface area and Auger recombination.
ISSN:2046-2069
2046-2069
DOI:10.1039/c3ra43100b