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Enhanced Carrier Collection in Cd/In-Based Dual Buffers in Kesterite Thin-Film Solar Cells from Nanoparticle Inks

[Image: see text] Increasing the power conversion efficiency (PCE) of kesterite Cu(2)ZnSn(S,Se)(4) (CZTSSe) solar cells has remained challenging over the past decade, in part due to open-circuit voltage (V(OC))-limiting defect states at the absorber/buffer interface. Previously, we found that substi...

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Autores principales: Campbell, Stephen, Zoppi, Guillaume, Bowen, Leon, Maiello, Pietro, Barrioz, Vincent, Beattie, Neil S., Qu, Yongtao
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2023
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10646902/
https://www.ncbi.nlm.nih.gov/pubmed/38020741
http://dx.doi.org/10.1021/acsaem.3c01622
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author Campbell, Stephen
Zoppi, Guillaume
Bowen, Leon
Maiello, Pietro
Barrioz, Vincent
Beattie, Neil S.
Qu, Yongtao
author_facet Campbell, Stephen
Zoppi, Guillaume
Bowen, Leon
Maiello, Pietro
Barrioz, Vincent
Beattie, Neil S.
Qu, Yongtao
author_sort Campbell, Stephen
collection PubMed
description [Image: see text] Increasing the power conversion efficiency (PCE) of kesterite Cu(2)ZnSn(S,Se)(4) (CZTSSe) solar cells has remained challenging over the past decade, in part due to open-circuit voltage (V(OC))-limiting defect states at the absorber/buffer interface. Previously, we found that substituting the conventional CdS buffer layer with In(2)S(3) in CZTSSe devices fabricated from nanoparticle inks produced an increase in the apparent doping density of the CZTSSe film and a higher built-in voltage arising from a more favorable energy-band alignment at the absorber/buffer interface. However, any associated gain in V(OC) was negated by the introduction of photoactive defects at the interface. This present study incorporates a hybrid Cd/In dual buffer in CZTSSe devices that demonstrate an average relative increase of 11.5% in PCE compared to CZTSSe devices with a standard CdS buffer. Current density–voltage analysis using a double-diode model revealed the presence of (i) a large recombination current in the quasi-neutral region (QNR) of the CZTSSe absorber in the standard CdS-based device, (ii) a large recombination current in the space-charge region (SCR) of the hybrid buffer CZTSSe–In(2)S(3)–CdS device, and (iii) reduced recombination currents in both the QNR and SCR of the CZTSSe–CdS–In(2)S(3) device. This accounts for a notable 9.0% average increase in the short-circuit current density (J(SC)) observed in CZTSSe–CdS–In(2)S(3) in comparison to the CdS-only CZTSSe solar cells. Energy-dispersive X-ray, secondary-ion mass spectroscopy, and grazing-incidence X-ray diffraction compositional analysis of the CZTSSe layer in the three types of kesterite solar cells suggest that there is diffusion of elemental In and Cd into the absorbers with a hybrid buffer. Enhanced Cd diffusion concomitant with a double postdeposition heat treatment of the hybrid buffer layers in the CZTSSe–CdS–In(2)S(3) device increases carrier collection and extraction and boosts J(SC). This is evidenced by electron-beam-induced current measurements, where higher current generation and collection near to the p–n junction is observed, accounting for the increase in J(SC) in this device. It is expected that optimization of the heat treatment of the hybrid buffer layers will lead to further improvements in the device performance.
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spelling pubmed-106469022023-11-15 Enhanced Carrier Collection in Cd/In-Based Dual Buffers in Kesterite Thin-Film Solar Cells from Nanoparticle Inks Campbell, Stephen Zoppi, Guillaume Bowen, Leon Maiello, Pietro Barrioz, Vincent Beattie, Neil S. Qu, Yongtao ACS Appl Energy Mater [Image: see text] Increasing the power conversion efficiency (PCE) of kesterite Cu(2)ZnSn(S,Se)(4) (CZTSSe) solar cells has remained challenging over the past decade, in part due to open-circuit voltage (V(OC))-limiting defect states at the absorber/buffer interface. Previously, we found that substituting the conventional CdS buffer layer with In(2)S(3) in CZTSSe devices fabricated from nanoparticle inks produced an increase in the apparent doping density of the CZTSSe film and a higher built-in voltage arising from a more favorable energy-band alignment at the absorber/buffer interface. However, any associated gain in V(OC) was negated by the introduction of photoactive defects at the interface. This present study incorporates a hybrid Cd/In dual buffer in CZTSSe devices that demonstrate an average relative increase of 11.5% in PCE compared to CZTSSe devices with a standard CdS buffer. Current density–voltage analysis using a double-diode model revealed the presence of (i) a large recombination current in the quasi-neutral region (QNR) of the CZTSSe absorber in the standard CdS-based device, (ii) a large recombination current in the space-charge region (SCR) of the hybrid buffer CZTSSe–In(2)S(3)–CdS device, and (iii) reduced recombination currents in both the QNR and SCR of the CZTSSe–CdS–In(2)S(3) device. This accounts for a notable 9.0% average increase in the short-circuit current density (J(SC)) observed in CZTSSe–CdS–In(2)S(3) in comparison to the CdS-only CZTSSe solar cells. Energy-dispersive X-ray, secondary-ion mass spectroscopy, and grazing-incidence X-ray diffraction compositional analysis of the CZTSSe layer in the three types of kesterite solar cells suggest that there is diffusion of elemental In and Cd into the absorbers with a hybrid buffer. Enhanced Cd diffusion concomitant with a double postdeposition heat treatment of the hybrid buffer layers in the CZTSSe–CdS–In(2)S(3) device increases carrier collection and extraction and boosts J(SC). This is evidenced by electron-beam-induced current measurements, where higher current generation and collection near to the p–n junction is observed, accounting for the increase in J(SC) in this device. It is expected that optimization of the heat treatment of the hybrid buffer layers will lead to further improvements in the device performance. American Chemical Society 2023-10-27 /pmc/articles/PMC10646902/ /pubmed/38020741 http://dx.doi.org/10.1021/acsaem.3c01622 Text en © 2023 The Authors. Published by American Chemical Society https://creativecommons.org/licenses/by/4.0/Permits the broadest form of re-use including for commercial purposes, provided that author attribution and integrity are maintained (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Campbell, Stephen
Zoppi, Guillaume
Bowen, Leon
Maiello, Pietro
Barrioz, Vincent
Beattie, Neil S.
Qu, Yongtao
Enhanced Carrier Collection in Cd/In-Based Dual Buffers in Kesterite Thin-Film Solar Cells from Nanoparticle Inks
title Enhanced Carrier Collection in Cd/In-Based Dual Buffers in Kesterite Thin-Film Solar Cells from Nanoparticle Inks
title_full Enhanced Carrier Collection in Cd/In-Based Dual Buffers in Kesterite Thin-Film Solar Cells from Nanoparticle Inks
title_fullStr Enhanced Carrier Collection in Cd/In-Based Dual Buffers in Kesterite Thin-Film Solar Cells from Nanoparticle Inks
title_full_unstemmed Enhanced Carrier Collection in Cd/In-Based Dual Buffers in Kesterite Thin-Film Solar Cells from Nanoparticle Inks
title_short Enhanced Carrier Collection in Cd/In-Based Dual Buffers in Kesterite Thin-Film Solar Cells from Nanoparticle Inks
title_sort enhanced carrier collection in cd/in-based dual buffers in kesterite thin-film solar cells from nanoparticle inks
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10646902/
https://www.ncbi.nlm.nih.gov/pubmed/38020741
http://dx.doi.org/10.1021/acsaem.3c01622
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