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Sub-Bandgap Luminescence from Doped Polycrystalline and Amorphous Silicon Films and Its Application to Understanding Passivating-Contact Solar Cells
Author(s) -
Hieu T. Nguyen,
AnYao Liu,
Di Yan,
Harvey Guthrey,
Thien N. Truong,
Mike Tebyetekerwa,
Ziyuan Li,
Zhuofeng Li,
Mowafak AlJassim,
Andrés Cuevas,
Daniel Macdonald
Publication year - 2018
Publication title -
acs applied energy materials
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.833
H-Index - 36
ISSN - 2574-0962
DOI - 10.1021/acsaem.8b01561
Subject(s) - luminescence , materials science , silicon , amorphous silicon , doping , amorphous solid , optoelectronics , band gap , polycrystalline silicon , crystalline silicon , crystallite , monocrystalline silicon , nanocrystalline silicon , solar cell , nanotechnology , layer (electronics) , chemistry , crystallography , thin film transistor , metallurgy
We report luminescence phenomena from doped polycrystalline silicon (poly-Si) films and their applications to study carrier transport properties in passivating-contact solar cells. Low-temperature luminescence spectra emitted from doped poly-Si layers are found to be very broad and stretched from the crystalline silicon (c-Si) luminescence peak to significantly lower energies. This suggests that these layers contain radiative defect levels whose energies are continuously distributed from the band edges to deep levels in the poly-Si bandgap. Moreover, photoinduced carriers inside poly-Si layers are found to be completely blocked by an ultrathin SiO interlayer (-4.3 nm). This demonstrates that there is no free-carrier coupling from poly-Si layers in practical passivating-contact solar cells. Finally, we demonstrate that the same principle can be applied to study carrier transport properties in hydrogenated amorphous silicon films.

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