Title | Thermally Crosslinked Hole Conductor Enables Stable Inverted Perovskite Solar Cells with 23.9% Efficiency |
Author | |
Corresponding Author | Wang, Yang; Yang, Li; Guo, Xugang; Zhang, Jinbao |
Publication Years | 2023-03-02
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DOI | |
Source Title | |
ISSN | 0935-9648
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EISSN | 1521-4095
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Volume | 35 |
Abstract | Poly[bis(4-phenyl)(2,4,6-trimethylphenyl)amine] (PTAA) represents the state-of-the-art hole transport material (HTM) in inverted perovskite solar cells (PSCs). However, unsatisfied surface properties of PTAA and high energy disorder in the bulk film hinder the further enhancement of device performance. Herein, a simple small molecule 10-(4-(3,6-dimethoxy-9H-carbazol-9-yl)phenyl)-3,7-bis(4-vinylphenyl)-10H-phenoxazine (MCz-VPOZ) is strategically developed for in situ fabrication of polymer hole conductor (CL-MCz) via a facile and low-temperature cross-linking technology. The resulting polymer CL-MCz offers high energy ordering and improved electrical conductivity, as well as appropriate energy-level alignment, enabling efficient charge carrier collection in the devices. Meanwhile, CL-MCz synchronously provides satisfied surface wettability and interfacial functionalization, facilitating the formation of high-quality perovskite films with fewer bulk iodine vacancies and suppressed carrier recombination. Significantly, the device with CL-MCz yields a champion efficiency of 23.9% along with an extremely low energy loss down to 0.41 eV, which represents the highest reported efficiency for non-PTAA-based polymer HTMs in inverted PSCs. Furthermore, the corresponding unencapsulated devices exhibit competitive shelf-life stability under various operational stressors up to 2500 h, reflecting high promises of CL-MCz in the scalable PSC application. This work underscores the promising potential of the cross-linking approach in preparing low-cost, stable, and efficient polymer HTMs toward reliable PSCs. © 2023 Wiley-VCH GmbH. |
Indexed By | |
Language | English
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Important Publications | NI Journal Papers
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SUSTech Authorship | Corresponding
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Funding Project | This work was supported by the National Natural Science Foundation of China (No. 52102309), Central guide local science and technology development funds (No. 2021Szvup064), Guangdong Basic and Applied Basic Research Foundation (No. 2020A1515110068, 2022A1515011869), Shenzhen Science and Technology Program (No. JCYJ20210324121803009; JCYJ20220530143214032), Natural Science Foundation of Fujian Province of China (No. 2021J01040) and Nanqiang Youth Talented Program of Xiamen University. The authors thank Wanhai Wang for molecular simulation and the Tan Kah Kee Innovation Laboratory (IKKEM) of Xiamen University for the assistance on measurements.This work was supported by the National Natural Science Foundation of China (No. 52102309), Central guide local science and technology development funds (No. 2021Szvup064), Guangdong Basic and Applied Basic Research Foundation (No. 2020A1515110068, 2022A1515011869), Shenzhen Science and Technology Program (No. JCYJ20210324121803009; JCYJ20220530143214032), Natural Science Foundation of Fujian Province of China (No. 2021J01040) and Nanqiang Youth Talented Program of Xiamen University. The authors thank Wanhai Wang for molecular simulation and the Tan Kah Kee Innovation Laboratory (IKKEM) of Xiamen University for the assistance on measurements.
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WOS Accession No | WOS:000907372100001
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Publisher | |
EI Accession Number | 20230213356639
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EI Keywords | Crosslinking
; Energy dissipation
; Perovskite
; Temperature
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ESI Classification Code | Minerals:482.2
; Energy Losses (industrial and residential):525.4
; Thermodynamics:641.1
; Solar Cells:702.3
; Chemical Reactions:802.2
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ESI Research Field | MATERIALS SCIENCE
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Data Source | EV Compendex
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Citation statistics |
Cited Times [WOS]:0
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Document Type | Journal Article |
Identifier | http://kc.sustech.edu.cn/handle/2SGJ60CL/519705 |
Department | Department of Materials Science and Engineering |
Affiliation | 1.College of Materials, Fujian Key Laboratory of Advanced Materials, Xiamen Key Laboratory of Electronic Ceramic Materials and Devices, Xiamen University, Xiamen; 361005, China 2.Department of Materials Science and Engineering, Southern University of Science and Technology (SUSTech), Shenzhen; 518055, China 3.Electronic Materials Research Laboratory, Key Laboratory of the Ministry of Education and International Center for Dielectric Research, School of Electronic and Information Engineering & The International Joint Laboratory for Micro/Nano Manufacturing and Measurement Technology, Xi'an Jiaotong University, Xi'an; 710049, China 4.State Key Laboratory of Physical Chemistry of Solid Surfaces, College of Chemistry and Chemical Engineering, Xiamen University, Xiamen; 361005, China 5.Now at Strait Institute of Flexible Electronics (SIFE, Future Technologies), Fujian Normal University, Fujian, Fuzhou; 350117, China 6.Qingdao Institute of Bioenergy and Bioprocess Technology, Chinese Academy of Sciences, Qingdao; 266101, China 7.Shenzhen Research Institute of Xiamen University, Shenzhen; 518000, China |
Corresponding Author Affilication | Department of Materials Science and Engineering |
Recommended Citation GB/T 7714 |
Zhang, Cuiping,Liao, Qiaogan,Chen, Jinyu,et al. Thermally Crosslinked Hole Conductor Enables Stable Inverted Perovskite Solar Cells with 23.9% Efficiency[J]. ADVANCED MATERIALS,2023,35.
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APA |
Zhang, Cuiping.,Liao, Qiaogan.,Chen, Jinyu.,Li, Bolin.,Xu, Chaoying.,...&Zhang, Jinbao.(2023).Thermally Crosslinked Hole Conductor Enables Stable Inverted Perovskite Solar Cells with 23.9% Efficiency.ADVANCED MATERIALS,35.
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MLA |
Zhang, Cuiping,et al."Thermally Crosslinked Hole Conductor Enables Stable Inverted Perovskite Solar Cells with 23.9% Efficiency".ADVANCED MATERIALS 35(2023).
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