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Light management in planar silicon heterojunction solar cells via nanocrystalline silicon oxide films and nano‐imprint textures
Author(s) -
Richter Alexei,
Lentz Florian,
Meier Matthias,
Finger Friedhelm,
Ding Kaining
Publication year - 2016
Publication title -
physica status solidi (a)
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 0.532
H-Index - 104
eISSN - 1862-6319
pISSN - 1862-6300
DOI - 10.1002/pssa.201533024
Subject(s) - nanocrystalline silicon , materials science , optoelectronics , silicon , amorphous silicon , polymer solar cell , nanocrystalline material , heterojunction , plasmonic solar cell , crystalline silicon , monocrystalline silicon , strained silicon , solar cell , nanotechnology
In order to increase the efficiency of high performance silicon heterojunction solar cells even further, it is paramount to increase the photoelectric current by enhancing the amount of light being captured within the absorber. Therefore, to reduce the parasitic absorption in the other layers, optoelectronically favorable hydrogenated nanocrystalline silicon oxide films can substitute the commonly used hydrogenated amorphous silicon layers. In this work, we systematically investigate the combination of hydrogenated nanocrystalline silicon oxide and front side nano‐imprint textures as anti‐reflection layers in silicon heterojunction solar cells. Ultimately, we were able to tune the parasitic absorption via variation of the front surface field layer and enhance the short‐circuit current of the planar solar cells by about 2 mA cm −2 due to a random silicon pyramid textured imprint layer. A maximum active area efficiency of 20.4% was achieved with a short‐circuit current of 37.7 mA cm −2 .