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research article

Measuring carrier injection from amorphous silicon into crystalline silicon using photoluminescence

Paduthol, A.
•
Juhl, M. K.
•
Nogay, G.  
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December 1, 2018
Progress In Photovoltaics

In devices with intrinsic amorphous silicon layer on a crystalline silicon substrate, the light absorbed in the amorphous layer can be weakly electronically coupled into the silicon base. Such carrier injection has previously been reported from measurements on finished devices containing stacks of intrinsic and doped amorphous silicon layers. Here, we use spectral response of photoluminescence, a contactless approach, to investigate this carrier injection on significantly simpler structures. In such devices, the effect of absorption in the front layer can be measured by the internal quantum efficiency. A highly absorbing front layer is expected to cause a drop in the quantum efficiency at short wavelengths. However, if electron-hole pairs that are generated in the front layer are subsequently injected into the base, the optical losses will be reduced, resulting in a partial recovery of the quantum efficiency at short wavelengths. Here, we quantify the efficiency of carrier injection from the intrinsic amorphous silicon front layer to the crystalline silicon base, by measuring the spectral response of photoluminescence heterojunction test structures. For devices with just an intrinsic amorphous silicon layer, the carrier injection from the layer was found to be close to unity.

  • Details
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Type
research article
DOI
10.1002/pip.3042
Web of Science ID

WOS:000450333300002

Author(s)
Paduthol, A.
Juhl, M. K.
Nogay, G.  
Loper, P.  
Trupke, T.
Date Issued

2018-12-01

Publisher

WILEY

Published in
Progress In Photovoltaics
Volume

26

Issue

12

Start page

968

End page

973

Subjects

Energy & Fuels

•

Materials Science, Multidisciplinary

•

Physics, Applied

•

Materials Science

•

Physics

•

amorphous silicon

•

heterojunction

•

photoluminescence

•

spectral response

•

heterojunction solar-cells

•

efficiency

•

spectra

•

wafer

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

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PV-LAB  
Available on Infoscience
December 13, 2018
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/152901
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