Improved mobility and photovoltaic performance of two-dimensional Ruddlesden−Popper (ThMA)₂(MA)₂M₃I₁₀ perovskites applied in perovskite solar cells

Two-dimensional Ruddlesden−Popper (2DRP) perovskites have received extensive attention for perovskite solar cells (PSCs) application due to their enhanced thermal and light stability, high photoluminescence quantum yield, and long carrier lifetime. Notably, the power conversion efficiency (PCE) of 2...

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Main Authors: Sun, Ping-Ping, Kripalani, Devesh Raju, Chi, Weijie
Other Authors: School of Mechanical and Aerospace Engineering
Format: Article
Language:English
Published: 2023
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Online Access:https://hdl.handle.net/10356/172869
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spelling sg-ntu-dr.10356-1728692023-12-27T04:44:51Z Improved mobility and photovoltaic performance of two-dimensional Ruddlesden−Popper (ThMA)₂(MA)₂M₃I₁₀ perovskites applied in perovskite solar cells Sun, Ping-Ping Kripalani, Devesh Raju Chi, Weijie School of Mechanical and Aerospace Engineering Engineering::Mechanical engineering Two-Dimensional Ruddlesden−Popper Metal Halides Carrier Mobility Two-dimensional Ruddlesden−Popper (2DRP) perovskites have received extensive attention for perovskite solar cells (PSCs) application due to their enhanced thermal and light stability, high photoluminescence quantum yield, and long carrier lifetime. Notably, the power conversion efficiency (PCE) of 2DRP (ThMA)2(MA)2Pb3I10 perovskite is up to19%. However, lead pollution is still a problem that may hinder the development and widespread use of (ThMA)2(MA)2Pb3I10 perovskites. With the aim of revealing lead-free 2DRP alternatives with high photovoltaic performance based on such (ThMA)2(MA)2M3I10 perovskites, metal replacements, such as Cd, Cu, Ge, Ni, Sn, Yb, and Zn, were investigated in terms of their optoelectronic characteristics, carrier transport properties, broadband–emission nature, and photovoltaic parameters from first-principles calculations. Our results indicated that these replacements of Cd, Cu, and Zn can fine-tune the bandgap of (ThMA)2(MA)2M3I10 toward the optimum range required for photovoltaic applications (0.9–1.6 eV). In particular, (ThMA)2(MA)2Cd3I10 and (ThMA)2(MA)2Cu3I10 demonstrated a strong broad–emission nature and photoluminescence tendency due to their large Stokes shifts and Huang-Rhys factors. (ThMA)2(MA)2Ge3I10 and (ThMA)2(MA)2Sn3I10 exhibited the best capacities for electron and hole transport with carrier mobilities of 12.869 and 9.856 cm2 V–1 s–1, respectively, which are 1–2 orders of magnitude higher than that of (ThMA)2(MA)2Pb3I10. Nevertheless, (ThMA)2(MA)2Cu3I10 was predicted to have the highest PCE of 22.97%, featuring itself as a potential photo–absorber candidate for photovoltaic applications. The findings reported herein not only achieve our goal in designing highly efficient and environmentally-friendly 2DRP perovskites, but also shed light on new strategies for advancing their applications in optoelectronic. This work is financially supported by the Research Start-up Fund Project of Hainan University (No. RZ2200001217 and RZ2200001216). We gratefully acknowledge HZWTECH for providing computation facilities and the support of Defect and Dopant ab-initio Simulation Package (DASP). 2023-12-27T04:44:51Z 2023-12-27T04:44:51Z 2023 Journal Article Sun, P., Kripalani, D. R. & Chi, W. (2023). Improved mobility and photovoltaic performance of two-dimensional Ruddlesden−Popper (ThMA)₂(MA)₂M₃I₁₀ perovskites applied in perovskite solar cells. Journal of Alloys and Compounds, 937, 168464-. https://dx.doi.org/10.1016/j.jallcom.2022.168464 0925-8388 https://hdl.handle.net/10356/172869 10.1016/j.jallcom.2022.168464 2-s2.0-85144764927 937 168464 en Journal of Alloys and Compounds © 2022 Elsevier B.V. All rights reserved.
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Mechanical engineering
Two-Dimensional Ruddlesden−Popper Metal Halides
Carrier Mobility
spellingShingle Engineering::Mechanical engineering
Two-Dimensional Ruddlesden−Popper Metal Halides
Carrier Mobility
Sun, Ping-Ping
Kripalani, Devesh Raju
Chi, Weijie
Improved mobility and photovoltaic performance of two-dimensional Ruddlesden−Popper (ThMA)₂(MA)₂M₃I₁₀ perovskites applied in perovskite solar cells
description Two-dimensional Ruddlesden−Popper (2DRP) perovskites have received extensive attention for perovskite solar cells (PSCs) application due to their enhanced thermal and light stability, high photoluminescence quantum yield, and long carrier lifetime. Notably, the power conversion efficiency (PCE) of 2DRP (ThMA)2(MA)2Pb3I10 perovskite is up to19%. However, lead pollution is still a problem that may hinder the development and widespread use of (ThMA)2(MA)2Pb3I10 perovskites. With the aim of revealing lead-free 2DRP alternatives with high photovoltaic performance based on such (ThMA)2(MA)2M3I10 perovskites, metal replacements, such as Cd, Cu, Ge, Ni, Sn, Yb, and Zn, were investigated in terms of their optoelectronic characteristics, carrier transport properties, broadband–emission nature, and photovoltaic parameters from first-principles calculations. Our results indicated that these replacements of Cd, Cu, and Zn can fine-tune the bandgap of (ThMA)2(MA)2M3I10 toward the optimum range required for photovoltaic applications (0.9–1.6 eV). In particular, (ThMA)2(MA)2Cd3I10 and (ThMA)2(MA)2Cu3I10 demonstrated a strong broad–emission nature and photoluminescence tendency due to their large Stokes shifts and Huang-Rhys factors. (ThMA)2(MA)2Ge3I10 and (ThMA)2(MA)2Sn3I10 exhibited the best capacities for electron and hole transport with carrier mobilities of 12.869 and 9.856 cm2 V–1 s–1, respectively, which are 1–2 orders of magnitude higher than that of (ThMA)2(MA)2Pb3I10. Nevertheless, (ThMA)2(MA)2Cu3I10 was predicted to have the highest PCE of 22.97%, featuring itself as a potential photo–absorber candidate for photovoltaic applications. The findings reported herein not only achieve our goal in designing highly efficient and environmentally-friendly 2DRP perovskites, but also shed light on new strategies for advancing their applications in optoelectronic.
author2 School of Mechanical and Aerospace Engineering
author_facet School of Mechanical and Aerospace Engineering
Sun, Ping-Ping
Kripalani, Devesh Raju
Chi, Weijie
format Article
author Sun, Ping-Ping
Kripalani, Devesh Raju
Chi, Weijie
author_sort Sun, Ping-Ping
title Improved mobility and photovoltaic performance of two-dimensional Ruddlesden−Popper (ThMA)₂(MA)₂M₃I₁₀ perovskites applied in perovskite solar cells
title_short Improved mobility and photovoltaic performance of two-dimensional Ruddlesden−Popper (ThMA)₂(MA)₂M₃I₁₀ perovskites applied in perovskite solar cells
title_full Improved mobility and photovoltaic performance of two-dimensional Ruddlesden−Popper (ThMA)₂(MA)₂M₃I₁₀ perovskites applied in perovskite solar cells
title_fullStr Improved mobility and photovoltaic performance of two-dimensional Ruddlesden−Popper (ThMA)₂(MA)₂M₃I₁₀ perovskites applied in perovskite solar cells
title_full_unstemmed Improved mobility and photovoltaic performance of two-dimensional Ruddlesden−Popper (ThMA)₂(MA)₂M₃I₁₀ perovskites applied in perovskite solar cells
title_sort improved mobility and photovoltaic performance of two-dimensional ruddlesden−popper (thma)₂(ma)₂m₃i₁₀ perovskites applied in perovskite solar cells
publishDate 2023
url https://hdl.handle.net/10356/172869
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