Synchronized B-site alloying for high-efficiency inorganic tin–lead perovskite solar cells

Author:

Zhang Ting1ORCID,Wang Feng23ORCID,Chen Hao1,Qian Feng1ORCID,Li Jian1ORCID,Zheng Hualin1ORCID,Yuan Shihao1,Peng Xuefeng1ORCID,Wang Yafei4ORCID,Huang Jiang1,Cui Hao5ORCID,Yu Zhinong2ORCID,Chen Zhi David6ORCID,Li Shibin1ORCID

Affiliation:

1. School of Optoelectronic Science and Engineering, University of Electronic Science and Technology of China 1 , Chengdu 610054, China

2. Beijing Engineering Research Center for Mixed Reality and Advanced Display Technology, School of Optics and Photonics, Beijing Institute of Technology 2 , Beijing 100081, China

3. Beijing Key Laboratory for Theory and Technology of Advanced Battery Materials, Department of Materials Science and Engineering, Peking University 3 , Beijing 100871, China

4. School of Mechanical and Electric Engineering, Guangzhou University 4 , Guangzhou, Guangdong 510006, China

5. Institute of Optics and Electronics, Chinese Academy of Sciences 5 , Chengdu, Sichuan 610209, China

6. Department of Electrical & Computer Engineering and Center for Nanoscale Science & Engineering, University of Kentucky 6 , Lexington, Kentucky 40506, USA

Abstract

Inorganic tin–lead perovskites with low bandgap (1.2–1.4 eV) are desired absorber materials for solar cells owing to their ideal bandgap and compositional stability. However, such tin–lead perovskites are currently subject to inferior power conversion efficiency (PCE) and the origin remains unclear. Here, for the first time, we report the metal-cation-derived unsynchronized crystallization behavior of inorganic tin–lead perovskite, exemplifying by a representative composition CsPb0.7Sn0.3I3. A tin-perovskite-targeted crystallization modulation agent, 1-(4-fluorophenyl) piperazine (1-4FP), is introduced to synchronize the B-site alloying through its strong targeted bonding with SnI2, resulting in substantially enhanced film quality with better morphology and photoelectrical properties. Furthermore, first-principles molecular dynamics simulations reveal that the agent regulates the crystallization route toward the pure phase of CsPb0.7Sn0.3I3 by suppressing the preforming of tin perovskite. With our proposed approach, the best device attains PCE of 17.55%, which is record-high for inorganic tin–lead perovskite solar cells. In addition, treated devices show excellent stability with only 10% and negligible loss after being exposed to 1 sun intensity for 700 h and being stored in N2 after over 4000 h, respectively. Our findings open a new avenue of crystallization route design in inorganic tin–lead perovskites, so as to obtaining high-quality perovskite films and associated solar cells.

Funder

National Natural Science Foundation of China

Creative Research Groups of the National Natural Science Foundation of Sichuan Province

Natural Science Foundation of Sichuan Province

China Postdoctoral Science Foundation

Publisher

AIP Publishing

Subject

General Physics and Astronomy

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