A Crystalline 2D Fullerene‐Based Metal Halide Semiconductor for Efficient and Stable Ideal‐bandgap Perovskite Solar Cells

Author:

Shen Weicheng12,Azmy Ali3,Li Guang12,Mishra Anamika3,Syrgiannis Zois4,Zheng Wenwen1,Volonakis George5,Kepenekian Mikaël5,Even Jacky6,Wojtas Lukasz3,Wang Cheng2,Huang Lishuai2,Chen Weiqing2,Zhou Shun2,Zhou Jin2,Zeng Guojun2,Pu Dexin2,Guan Hongling2,Fang Guojia2,Ke Weijun2,Spanopoulos Ioannis3ORCID

Affiliation:

1. Hubei Key Laboratory of Optical Information and Pattern Recognition School of Optical Information and Energy Engineering Wuhan Institute of Technology Wuhan 430205 China

2. Key Lab of Artificial Micro‐ and Nano‐Structures of Ministry of Education School of Physics and Technology Wuhan University Wuhan 430072 China

3. Department of Chemistry University of South Florida Tampa FL 33620 USA

4. Nanoneurosciences LLC 16192 Coastal HWY Lewes DE 19958 USA

5. Univ Rennes ENSCR, CNRS ISCR‐UMR 6226 Rennes F‐35000 France

6. Univ Rennes INSA Rennes, CNRS Institut FOTON UMR 6082 Rennes F‐35000 France

Abstract

AbstractDespite advances in mixed tin‐lead (Sn‐Pb) perovskite‐based solar cells, achieving both high‐efficiency and long‐term device stability remains a major challenge. Current device deficiencies stem partly from inefficient carrier transport, originating from defects and improper band energy alignment among the device's interfaces. Developing multifunctional interlayer materials simultaneously addressing the above concerns poses an excellent strategy. Herein, through molecular and crystal engineering, an amine‐functionalized C60 mono‐adduct derivative (C60‐2NH3 = bis(2‐aminoethyl) malonate‐C60) is utilized for the synthesis of the first crystalline fullerene‐based 2D metal halide semiconductor, namely (C60‐2NH3)Pb2I6. Single crystal XRD studies elucidated the structure of the new material, while DFT calculations highlighted the strong contribution of C60‐2NH3 to the electronic density of states of the conduction band of (C60‐2NH3)Pb2I6. Utilization of C60‐2NH3 as an interlayer between a FA0.6MA0.4Pb0.7Sn0.3I3 perovskite and a C60 layer offered superior band energy alignment, reduced nonradiative recombination, and enhanced carrier mobility. The corresponding perovskite solar cell (PSC) device achieved a power conversion efficiency (PCE) value of 21.64%, maintaining 90% of its initial efficiency, after being stored under a N2 atmosphere for 2400 h. This work sets the foundation for developing a new family of functional materials, namely Fullerene Metal Halide Semiconductors, targeting applications from photovoltaics to catalysis, transistors, and supercapacitors.

Funder

National Natural Science Foundation of China

Institut Universitaire de France

Grand Équipement National De Calcul Intensif

Natural Science Foundation of Hubei Province

Publisher

Wiley

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