Passivation of all-angle black surfaces for silicon solar cells

Optical losses at the front surface of a silicon solar cell have a significant impact on efficiency, and as such, efforts to reduce reflection are necessary. In this work, a method to fabricate and passivate nanowire-pyramid hybrid structures formed on a silicon surface via wet chemical processing i...

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Main Authors: Rahman, T, Bonilla, R, Nawabjan, A, Wilshaw, P, Boden, S
Format: Journal article
Published: Elsevier 2016
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author Rahman, T
Bonilla, R
Nawabjan, A
Wilshaw, P
Boden, S
author_facet Rahman, T
Bonilla, R
Nawabjan, A
Wilshaw, P
Boden, S
author_sort Rahman, T
collection OXFORD
description Optical losses at the front surface of a silicon solar cell have a significant impact on efficiency, and as such, efforts to reduce reflection are necessary. In this work, a method to fabricate and passivate nanowire-pyramid hybrid structures formed on a silicon surface via wet chemical processing is presented. These high surface area structures can be utilised on the front surface of back contact silicon solar cells to maximise light absorption therein. Hemispherical reflectivity under varying incident angles is measured to study the optical enhancement conferred by these structures. The significant reduction in reflectivity (<2%) under low incident angles is maintained at high angles by the hybrid textured surface compared to surfaces textured with nanowires or pyramids alone. Finite Difference Time Domain simulations of these dual micro-nanoscale surfaces under varying angles support the experimental results. In order to translate the optical benefit of these high surface area structures into improvements in device efficiency, they must also be well passivated. To this end, atomic layer deposition of alumina is used to reduce surface recombination velocities of these ultra-black silicon surfaces to below 30 cm/s. A decomposition of the passivation components is performed using capacitance-voltage and Kelvin Probe measurements. Finally, device simulations show power conversion efficiencies exceeding 21% are possible when using these ultra-black Si surfaces for the front surface of back contact silicon solar cells.
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spelling oxford-uuid:4f1d814e-fee1-43f1-ab79-717b455bcf572022-03-26T16:05:19ZPassivation of all-angle black surfaces for silicon solar cellsJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:4f1d814e-fee1-43f1-ab79-717b455bcf57Symplectic Elements at OxfordElsevier2016Rahman, TBonilla, RNawabjan, AWilshaw, PBoden, SOptical losses at the front surface of a silicon solar cell have a significant impact on efficiency, and as such, efforts to reduce reflection are necessary. In this work, a method to fabricate and passivate nanowire-pyramid hybrid structures formed on a silicon surface via wet chemical processing is presented. These high surface area structures can be utilised on the front surface of back contact silicon solar cells to maximise light absorption therein. Hemispherical reflectivity under varying incident angles is measured to study the optical enhancement conferred by these structures. The significant reduction in reflectivity (<2%) under low incident angles is maintained at high angles by the hybrid textured surface compared to surfaces textured with nanowires or pyramids alone. Finite Difference Time Domain simulations of these dual micro-nanoscale surfaces under varying angles support the experimental results. In order to translate the optical benefit of these high surface area structures into improvements in device efficiency, they must also be well passivated. To this end, atomic layer deposition of alumina is used to reduce surface recombination velocities of these ultra-black silicon surfaces to below 30 cm/s. A decomposition of the passivation components is performed using capacitance-voltage and Kelvin Probe measurements. Finally, device simulations show power conversion efficiencies exceeding 21% are possible when using these ultra-black Si surfaces for the front surface of back contact silicon solar cells.
spellingShingle Rahman, T
Bonilla, R
Nawabjan, A
Wilshaw, P
Boden, S
Passivation of all-angle black surfaces for silicon solar cells
title Passivation of all-angle black surfaces for silicon solar cells
title_full Passivation of all-angle black surfaces for silicon solar cells
title_fullStr Passivation of all-angle black surfaces for silicon solar cells
title_full_unstemmed Passivation of all-angle black surfaces for silicon solar cells
title_short Passivation of all-angle black surfaces for silicon solar cells
title_sort passivation of all angle black surfaces for silicon solar cells
work_keys_str_mv AT rahmant passivationofallangleblacksurfacesforsiliconsolarcells
AT bonillar passivationofallangleblacksurfacesforsiliconsolarcells
AT nawabjana passivationofallangleblacksurfacesforsiliconsolarcells
AT wilshawp passivationofallangleblacksurfacesforsiliconsolarcells
AT bodens passivationofallangleblacksurfacesforsiliconsolarcells