Manipulating Electron Density Distribution of Nicotinamide Derivatives Toward Defect Passivation In Perovskite Solar Cells

Author:

Liu Lidan1,Zheng Can1,Xu Zhuo1,Li Yong1,Cao Yang1,Yang Tengteng1,Zhang Hao1,Wang Qiang1,Liu Zhike1,Yuan Ningyi2,Ding Jianning2,Wang Dapeng1ORCID,Liu Shengzhong (F.)13ORCID

Affiliation:

1. Key Laboratory of Applied Surface and Colloid Chemistry Ministry of Education; Shaanxi Key Laboratory for Advanced Energy Devices; Shaanxi Engineering Lab for Advanced Energy Technology School of Materials Science and Engineering Shaanxi Normal University Xi'an 710119 P. R. China

2. School of Materials Science and Engineering Jiangsu Collaborative Innovation Center of Photovoltaic Science and Engineering Jiangsu Province Cultivation Base for State Key Laboratory of Photovoltaic Science and Technology Changzhou University Changzhou 213164 P. R. China

3. Dalian National Laboratory for Clean Energy; iChEM Dalian Institute of Chemical Physics Chinese Academy of Sciences Dalian 116023 P. R. China

Abstract

AbstractThe design of additives mainly involves selection of functional groups with coordination relationships with defects in perovskite materials. However, it is particularly important to further adjust the geometrical configuration and electronic structure of an additive. Here, the nicotinamide (NA) and its derivative 6‐Methylnicotinamide (CNA) with electron‐donor functional groups are comparatively analyzed to investigate the effect of molecular dipole and electronic configuration on the defect passivation of perovskite absorbers and the photovoltaic properties of perovskite solar cells (PSCs). Theoretical calculations demonstrate that the CNA molecule with its large molecular dipole combine with the undercoordinated Pb2+ ions in perovskite to form a higher binding energy, which is beneficial to improve the formation energy of Pb‐related defects. Experimental characterization confirms that the CNA molecule significantly enhances the coordination effect between acylamino and undercoordinated defective Pb2+ cations, which is conducive to obtain high‐quality, low‐defect density of state, large grain size, and smooth surface perovskite absorbers. Thanks to the electronic configuration and electronic cloud distribution of CNA molecules, the PSCs yield impressive efficiency as high as 24.33% with excellent environmental storage, heat, and light stabilities. This research provides a research basis for designing additives with steric‐charge‐dependence to assist perovskite photovoltaics.

Funder

Higher Education Discipline Innovation Project

Publisher

Wiley

Subject

General Materials Science,Renewable Energy, Sustainability and the Environment

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