Bi‐Directional Modification to Quench Detrimental Redox Reactions and Minimize Interfacial Energy Offset for NiOX/Perovskite‐Based Solar Cells

Author:

Das Adhikari Ramkrishna1ORCID,Baishya Himangshu1ORCID,Patel Mayur Jagdishbhai2ORCID,Yadav Deepak2ORCID,Iyer Parameswar Krishnan12ORCID

Affiliation:

1. Centre for Nanotechnology Indian Institute of Technology Guwahati Guwahati Assam 781039 India

2. Department of Chemistry Indian Institute of Technology Guwahati Guwahati Assam 781039 India

Abstract

AbstractThe quality of the buried heterojunction of nickel oxide (NiOX)/perovskite is crucial for efficient charge carrier extraction and minimizing interfacial non‐radiative recombination in inverted perovskite solar cells (PSCs). However, NiOX has limitations as a hole transport layer (HTL) due to energy level mismatch, low conduction, and undesirable redox reactions with the perovskite layer, which impede power conversion efficiency (PCE) and long‐term stability. In this study, para‐amino 2,3,5,6‐tetrafluorobenzoic acid (PATFBA) is proposed as a bifacial defect passivator to tailor the NiOX/perovskite interface. The acid group and adjacent fluorine atoms of PATFBA effectively passivate NiOX surface defects, thereby improving its Ni3+/Ni2+ ratio, hole extraction capability, and energy band alignment with perovskite, while also providing active sites for homogenous nucleation. Meanwhile, the amine and adjacent fluorine atomsstabilize the buried perovskite interface by passivating interfacial defects, resulting in higher crystalline perovskite films with supressed non‐radaitive recombination. Furthermore, the PATFBA buffer layer prevents redox reactions between Ni3+ and perovskite.These synergistic bi‐directional interactions lead to optimized inverted PSCs with a PCE of 20.51% compared to 16.89% for pristine devices and the unencapsulated PATFBA‐modified devices exhibit outstanding thermal and long‐term stability. This work provides a new engineering approach to buried interfaces through the synergy of functional groups.

Funder

Ministry of Education, India

Max-Planck-Gesellschaft

Department of Electronics and Information Technology, Ministry of Communications and Information Technology

Publisher

Wiley

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