Efficient and Stable Quasi‐2D Ruddlesden–Popper Perovskite Solar Cells by Tailoring Crystal Orientation and Passivating Surface Defects

Author:

Kim Ju‐Hyeon12,Oh Chang‐Mok3,Hwang In‐Wook3,Kim Jehan4,Lee Changhoon5,Kwon Sooncheol6,Ki Taeyoon12,Lee Sanseong12,Kang Hongkyu2,Kim Heejoo27,Lee Kwanghee12ORCID

Affiliation:

1. School of Materials Science and Engineering Gwangju Institute of Science and Technology (GIST) Gwangju 61005 Republic of Korea

2. Heeger Center for Advanced Materials (HCAM) and Research Institute for Solar and Sustainable Energies (RISE) Gwangju Institute of Science and Technology (GIST) Gwangju 61005 Republic of Korea

3. Advanced Photonics Research Institute Gwangju Institute of Science and Technology (GIST) Gwangju 61005 Republic of Korea

4. Pohang Accelerator Laboratory Pohang University of Science and Technology Pohang 37673 Republic of Korea

5. Max Planck POSTECH Center for Complex Phase of Materials Pohang University of Science and Technology Pohang 37673 Republic of Korea

6. Department of Energy and Materials Engineering Dongguk University Seoul 04620 Republic of Korea

7. Graduate School of Energy Convergence Institute of Integrated Technology Gwangju Insititute of Science and Technology (GIST) Gwangju 61005 Republic of Korea

Abstract

AbstractSolar cells (PSCs) with quasi‐2D Ruddlesden–Popper perovskites (RPP) exhibit greater environmental stability than 3D perovskites; however, the low power conversion efficiency (PCE) caused by anisotropic crystal orientations and defect sites in the bulk RPP materials limit future commercialization. Herein, a simple post–treatment is reported for the top surfaces of RPP thin films (RPP composition of PEA2MA4Pb5I16 <n> = 5) in which zwitterionic n‐tert‐butyl‐α‐phenylnitrone (PBN) is used as the passivation material. The PBN molecules passivate the surface and grain boundary defects in the RPP and simultaneously induce vertical direction crystal orientations of the RPPs, which lead to efficient charge transport in the RPP photoactive materials. With this surface engineering methodology, the optimized devices exhibit a remarkably enhanced PCE of 20.05% as compared with the devices without PBN (≈17.53%) and excellent long‐term operational stability with 88% retention of the initial PCE under continuous 1‐sun irradiation for over 1000 h. The proposed passivation strategy provides new insights into the development of efficient and stable RPP‐based PSCs.

Funder

National Research Foundation

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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