Stable and Efficient Perovskite Solar Cells by Controlling the Crystal Growth via Introduction of Plasmonic TiN Nanoparticles

Author:

Omelianovych Oleksii1,Sandhu Sanjay2,Ewusi Mensah Appiagyei2,Larina Liudmila13,Kim Byeonggwan1,Trinh Ba Thong4,Szaniel Adam1,Yoon Ilsun4,Lee Jae‐Joon2,Choi Ho‐Suk1ORCID

Affiliation:

1. Department of Chemical Engineering and Applied Chemistry Chungnam National University Daejeon 34134 Republic of Korea

2. Research Center for Photoenergy Harvesting & Conversion Technology Department of Energy Materials and Engineering Dongguk University Seoul 04620 Republic of Korea

3. Solar Photovoltaic Laboratory Institute of Biochemical Physics Russian Academy of Sciences Moscow 119334 Russia

4. Department of Chemistry Chungnam National University Daejeon 34134 Republic of Korea

Abstract

AbstractIncorporating noble‐metal plasmonic nanoparticles (NPs) enhances the optoelectronic properties of perovskite solar cells (PSCs) but at a higher cost. In this work, the overlooked potential of refractory plasmonic materials is highlighted as a cost‐effective alternative additive in PSC research. This investigation aims to stimulate interest in this area by showcasing the theoretical and practical impacts of TiN plasmonic NPs when integrated into PSCs. TiN plasmonic NPs present a cost‐effective yet underexplored option. This study explores the impact of TiN NPs on PSCs through theoretical and experimental approaches. Finite‐difference time‐domain (FDTD) optical simulations and empirical data indicate that TiN NPs increase absorption and reduce reflectance in PSCs, driven by surface plasmon resonance and the significant growth of perovskite grains from 450 to 1400 nm. These NPs also regulate the perovskite crystallization rate by adsorbing DMF/DMSO, fostering larger grain formation. Improved band alignment and decreased trap states enhance charge transport and diminish non‐radiative recombination losses. As a result, PSC efficiency with optimal TiN NP concentration increased from 19.07% to 21.37%. Additionally, TiN‐enhanced PSCs display better stability, retaining 98.1% of their original PCE after 31 days under ambient conditions.

Funder

National Research Foundation of Korea

Publisher

Wiley

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