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Chemical Bridge-Mediated Heterojunction Electron Transport Layers Enable Efficient and Stable Perovskite Solar Cells

journal contribution
posted on 2024-11-03, 09:58 authored by Pramila Patil, Ashakiran Maibam, Sushil Sangale, Dilpreet Mann, Hyun-Jung Lee, Sailaja Krishnamurty, Sung-Nam Kwon, Seok-In Na
Perovskite solar cells (PSCs) emerged as potential photovoltaic energy-generating devices developing in recent years because of their excellent photovoltaic properties and ease of processing. However, PSCs are still reporting efficiencies much lower than their theoretical limits owing to various losses caused by the charge transport layer and the perovskite. In this regard, herein, an interface engineering strategy using functional molecules and chemical bridges was applied to reduce the loss of the heterojunction electron transport layer. As a functional interface layer, ethylenediaminetetraacetic acid (EDTA) was introduced between PCBM and the ZnO layer, and as a result, EDTA simultaneously formed chemical bonds with PCBM and ZnO to serve as a chemical bridge connecting the two. DFT and chemical analyses revealed that EDTA can act as a chemical bridge between PCBM and ZnO, passivate defect sites, and improve charge transfer. Optoelectrical analysis proved that EDTA chemical bridge-mediated charge transfer (CBM-CT) provides more efficient interfacial charge transport by reducing trap-assisted recombination losses at ETL interfaces, thereby improving device performance. The PSC with EDTA chemical bridge-mediated heterojunction ETL exhibited a high PCE of 21.21%, almost no hysteresis, and excellent stability to both air and light.

History

Journal

ACS Applied Materials and Interfaces

Volume

15

Issue

24

Start page

29597

End page

29608

Total pages

12

Publisher

American Chemical Society

Place published

United States

Language

English

Copyright

© 2023 American Chemical Society

Former Identifier

2006124236

Esploro creation date

2023-08-24

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