In Situ Reconstruction of Hole‐Selective Perovskite Heterojunction with Graded Energetics Toward Highly Efficient and Stable Solar Cells

Author:

Jiang Sheng1,Xiong Shaobing12,Wu Hongbo3,Zhao Dongyang1,You Xiaomeng4,Xu Yehui1,Jia Menghui5,Bai Wei1,Ma Zaifei3,Liu Xianjie6,Yao Yefeng4,Sun Zhenrong5,Bao Qinye127ORCID

Affiliation:

1. School of Physics and Electronic Science East China Normal University Shanghai 200241 China

2. Shanghai Frontiers Science Research Base of Intelligent Optoelectronics and Perception Institute of Optoelectronics Department of Materials Science Fudan University Shanghai 200433 China

3. Center for Advanced Low‐dimension Materials Donghua University Shanghai 201620 China

4. Shanghai Key Laboratory of Magnetic Resonance East China Normal University Shanghai 200241 China

5. State Key Laboratory of Precision Spectroscopy East China Normal University Shanghai 200241 China

6. Laboratory of Organic Electronics Linköping University Norrköping 60174 Sweden

7. Collaborative Innovation Center of Extreme Optics Shanxi University Taiyuan Shanxi 030006 China

Abstract

AbstractPerovskite solar cells (PSCs) have demonstrated a high power conversion efficiency, however, the large energy loss due to non‐radiative recombination is the main challenge for further performance enhancement. Here, a surface treatment strategy is developed by heat‐induced decomposition of a thin interlayer 2,7‐Naphthaleneditriflate (NAP) to in situ reconstruct perovskite energetics. It is verified that the reconstructed perovskite surface energetics match better with the upper hole transport layer compared to the intrinsic condition. Spontaneous generation of n/n homojunctions between the perovskite film bulk and the surface region promotes hole extraction, enhancing built‐in electric field, and thus significantly suppresses charge recombination at such perovskite hole‐selective heterojunctions. Moreover, the surface decomposed fluorine‐rich complexes passivate the defects and improve the crystallinity of the perovskite film. These advantages are confirmed by a remarkably improved efficiency from 20.52% for the control device to 23.37% for the treated one with excellent stability. The work provides a promising approach of in situ reconstructing perovskite surface and interface for the design of highly efficient and stable PSCs.

Funder

National Key Research and Development Program of China

Fundamental Research Funds for the Central Universities

East China Normal University

China Postdoctoral Science Foundation

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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