Active SnO2 Crystal Planes Enable Efficient and Ultra‐Bendable n‐i‐p Perovskite Solar Cells with Record Certificated Power Conversion Efficiency

Author:

Yang Yingguo12ORCID,Yang Lifeng23,Feng Shanglei2,Niu Yingchun4,Li Xiaoxi1,Cheng Liwei2,Li Lina2,Qin Wenming2,Wang Tingting5,Xu Quan4,Dong Hua6,Lu Haizhou7,Qin Tianshi8,Huang Wei8

Affiliation:

1. School of Microelectronics Fudan University Shanghai 200433 China

2. Shanghai Synchrotron Radiation Facility (SSRF) Zhangjiang Lab Shanghai Advanced Research Institute Shanghai Institute of Applied Physics Chinese Academy of Sciences Shanghai 201204 China

3. Double Carbon Optoelectronic Research Centre,Department of physics Shaoxing University Shaoxing 321000 China

4. State Key Laboratory of Heavy Oil Processing China University of Petroleum Beijing 102249 China

5. Shanghai Institute of Quality Inspection and Technical Research Shanghai 201114 China

6. Key Laboratory for Physical Electronics and Devices of the Ministry of Education & Shaanxi Xi'an Jiaotong University Xi'an 710049 China

7. SEU‐FEI Nano‐Pico Center Key Laboratory of MEMS of Ministry of Education School of Electronics Science and Engineering Southeast University Nanjing 210096 China

8. Key Laboratory of Flexible Electronics (KLOFE) and Institute of Advanced Materials (IAM) Nanjing Tech University 5 Xinmofan Road Nanjing 210009 China

Abstract

AbstractThe tin (IV) oxide (SnO2) electron transport layer (ETL) has been widely employed to fabricate high‐performance perovskite solar cells (PSCs). It has been reported that carbon quantum dots (CQDs) can be used to enhance electron mobility of SnO2. However, an in‐depth understanding of the driving force in this process is still lacking. Here, a high‐angle annular dark‐field scanning transmission electron microscope (HAADF‐STEM) is employed, for the first time, to reveal the SnO2 crystal face changes with one new type of CQD doping. Synchrotron‐based grazing incidence wide‐angle X‐ray scattering (GIWAXS) can penetrate the flexible substrate to detect the buried region of the perovskite layer, showing the crystallinity and phase purity of the perovskite are significantly improved with CQD‐modified SnO2. The flexible n‐i‐p PSCs delivers a power conversion efficiency (PCE) up to 23.57% (22.75%, certificated), which is one of the highest values for single‐junction n‐i‐p flexible PSCs. The corresponding n‐i‐p flexible modules achieve a PCE of 17.79% with aperture area ~ 24 cm2. Furthermore, the flexible PSCs show excellent stability, preserving ≈95% of their initial efficiency after 1200 h under 40% relative humidity and 1‐sun light irradiation at 25 °C, and maintained > 90% of initial efficiency after 2500 bending cycles at a bending radius of 6 mm.

Funder

National Natural Science Foundation of China

Youth Innovation Promotion Association of the Chinese Academy of Sciences

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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