Interfacial engineering by multifunctional ruthenium complex for CsPbI2Br perovskite solar cells with a fill factor over 0.82

被引:0
作者
Chen, Shuai [1 ]
Jia, Binxia [1 ]
Chu, Depeng [1 ]
Li, Hua [1 ]
Cui, Jian [1 ]
Zhao, Wangen [1 ]
Ding, Zicheng [1 ]
Zhao, Kui [1 ]
Liu, Shengzhong Frank [1 ]
Zhang, Yaohong [2 ]
Wu, Guohua [1 ,3 ,4 ]
机构
[1] Shaanxi Normal Univ, Shaanxi Engn Lab Adv Energy Technol,Sch Mat Sci &, Key Lab Appl Surface & Colloid Chem, Shaanxi Key Lab Adv Energy Devices,Minist Educ, Xian 710119, Peoples R China
[2] Northwest Univ, Sch Phys, Xian 710127, Peoples R China
[3] Harbin Engn Univ, Qingdao Innovat & Dev Base Harbin Engn Univ, Qingdao 150001, Peoples R China
[4] Minist Educ, Key Lab Funct Mol Solids, Wuhu 241002, Peoples R China
基金
中国国家自然科学基金; 黑龙江省自然科学基金;
关键词
perovskite solar cells; CsPbI2Br; interfacial engineering; ruthenium complex; multifunctional; DEFECT PASSIVATION; HIGHLY EFFICIENT; QUANTUM DOTS; PERFORMANCE; SENSITIZERS; HYSTERESIS; STABILITY; ENHANCE;
D O I
10.1007/s40843-024-3028-8
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The interface is of paramount importance in heterostructures, as it can be considered as a device in accordance with Kroemer's dictum. In perovskite solar cells (PSCs), optimizing the interface between the perovskite layer and the hole transport layer is known to be an effective method for enhancing PSC device performance. Herein, a metal ruthenium complex coded as C101 is introduced to the perovskite (CsPbI2Br)/hole transport layer (PTAA) interface as a "charge driven motor" to selectively extract holes from CsPbI2Br and then transfer them to PTAA, minimizing the voltage loss in PSCs. More significantly, the introduction of C101 layer effectively passivates the surface of CsPbI2Br film and reduces the defect density of CsPbI2Br film due to the covalent bond between the CsPbI2Br and the-C=O group in C101. The photovoltaic performance of CsPbI2Br PSCs is enhanced by 23.60% upon the introduction of C101 interfacial layer, with the champion CsPbI2Br PSC exhibiting a power conversion efficiency of 14.96% in a reverse scan, a short-circuit current of 15.84 mA<middle dot>cm(-2), an open-circuit voltage of 1.15 V, and a fill factor of 82.03%. Additionally, the introduction of C101 simultaneously enhances the humidity tolerance of CsPbI2Br PSCs.
引用
收藏
页码:3245 / 3252
页数:8
相关论文
共 48 条
[1]   Interstitial Mn2+-Driven High-Aspect-Ratio Grain Growth for Low-Trap-Density Microcrystalline Films for Record Efficiency CsPbl2Br Solar Cells [J].
Bai, Dongliang ;
Zhang, Jingru ;
Jin, Zhiwen ;
Bian, Hui ;
Wang, Kang ;
Wang, Haoran ;
Liang, Lei ;
Wang, Qian ;
Liu, Shengzhong Frank .
ACS ENERGY LETTERS, 2018, 3 (04) :970-+
[2]   Enhanced performance of tin-based perovskite solar cells induced by an ammonium hypophosphite additive [J].
Cao, Jiupeng ;
Tai, Qidong ;
You, Penq ;
Tang, Guanqi ;
Wang, Tianyue ;
Wang, Naixiang ;
Yan, Feng .
JOURNAL OF MATERIALS CHEMISTRY A, 2019, 7 (46) :26580-26585
[3]   Enhanced stability and performance of air-processed perovskite solar cells via defect passivation with a thiazole-bridged diketopyrrolopyrrole-based π-conjugated polymer [J].
Chang, Chih-Yu ;
Wang, Chun-Chieh .
JOURNAL OF MATERIALS CHEMISTRY A, 2020, 8 (17) :8593-8604
[4]   Poly(4-Vinylpyridine)-Based Interfacial Passivation to Enhance Voltage and Moisture Stability of Lead Halide Perovskite Solar Cells [J].
Chaudhary, Bhumika ;
Kulkarni, Ashish ;
Jena, Ajay Kumar ;
Ikegami, Masashi ;
Udagawa, Yosuke ;
Kunugita, Hideyuki ;
Ema, Kazuhiro ;
Miyasaka, Tsutomu .
CHEMSUSCHEM, 2017, 10 (11) :2473-2479
[5]   Precise Control of Crystal Growth for Highly Efficient CsPbI2Br Perovskite Solar Cells [J].
Chen, Weijie ;
Chen, Haiyang ;
Xu, Guiying ;
Xue, Rongming ;
Wang, Shuhui ;
Li, Yaowen ;
Li, Yongfang .
JOULE, 2019, 3 (01) :191-204
[6]   Enhance the optical absorptivity of nanocrystalline TiO2 film with high molar extinction coefficient ruthenium sensitizers for high performance dye-sensitized solar cells [J].
Gao, Feifei ;
Wang, Yuan ;
Shi, Dong ;
Zhang, Jing ;
Wang, Mingkui ;
Jing, Xiaoyan ;
Humphry-Baker, Robin ;
Wang, Peng ;
Zakeeruddin, Shaik M. ;
Graetzel, Michael .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2008, 130 (32) :10720-10728
[7]   Rational Surface-Defect Control via Designed Passivation for High-Efficiency Inorganic Perovskite Solar Cells [J].
Gu, Xiaojing ;
Xiang, Wanchun ;
Tian, Qingwen ;
Liu, Shengzhong .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2021, 60 (43) :23164-23170
[8]   Expanding the Light Harvesting of CsPbI2Br to Near Infrared by Integrating with Organic Bulk Heterojunction for Efficient and Stable Solar Cells [J].
Guo, Qiang ;
Bai, Yiming ;
Lang, Kun ;
Yu, Zhong-Zhen ;
Hayat, Tasawar ;
Alsaedi, Ahmed ;
Zhou, Erjun ;
Tan, Zhan'ao .
ACS APPLIED MATERIALS & INTERFACES, 2019, 11 (41) :37991-37998
[9]   Perovskite-polymer composite cross-linker approach for highly-stable and efficient perovskite solar cells [J].
Han, Tae-Hee ;
Lee, Jin-Wook ;
Choi, Chungseok ;
Tan, Shaun ;
Lee, Changsoo ;
Zhao, Yepin ;
Dai, Zhenghong ;
De Marco, Nicholas ;
Lee, Sung-Joon ;
Bae, Sang-Hoon ;
Yuan, Yonghai ;
Lee, Hyuck Mo ;
Huang, Yu ;
Yang, Yang .
NATURE COMMUNICATIONS, 2019, 10 (1)
[10]   High Fill Factor CsPbI2Br Perovskite Solar Cells Via Crystallization Management [J].
Jeong, Min Ju ;
Jeon, Soo Woong ;
Kim, Sung Yong ;
Noh, Jun Hong .
ADVANCED ENERGY MATERIALS, 2023, 13 (23)