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Dipole-field-assisted charge extraction in metal-perovskite-metal back-contact solar cells

journal contribution
posted on 2024-10-31, 08:47 authored by Xiongfeng Lin, Askhat Jumabekov, Niraj Lal, Alexander Pascoe, Daniel Gomez AlviarezDaniel Gomez Alviarez, Noel Duffy, Anthony Chesman, Kallista Sears, Maxime Fournier, Yupeng Zhang, Qiaoliang Bao, Yi-Bing Cheng, Leone Spiccia, Udo Bach
Hybrid organic-inorganic halide perovskites are low-cost solution-processable solar cell materials with photovoltaic properties that rival those of crystalline silicon. The perovskite films are typically sandwiched between thin layers of hole and electron transport materials, which efficiently extract photogenerated charges. This affords high-energy conversion efficiencies but results in significant performance and fabrication challenges. Herein we present a simple charge transport layer-free perovskite solar cell, comprising only a perovskite layer with two interdigitated gold back-contacts. Charge extraction is achieved via self-assembled monolayers and their associated dipole fields at the metal-perovskite interface. Photovoltages of ∼600 mV generated by self-assembled molecular monolayer modified perovskite solar cells are equivalent to the built-in potential generated by individual dipole layers. Efficient charge extraction results in photocurrents of up to 12.1 mA cm -2 under simulated sunlight, despite a large electrode spacing.

Funding

ARC Centre of Excellence in Future Low Energy Electronics Technologies

Australian Research Council

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The Role of Molecular Dipole Layers on Charge Carrier Separation

Australian Research Council

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Plasmonic Photochemistry: A nanoscopic solution to global energy and environmental problems

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Engineering Novel Two-dimensional Materials for Optoelectronic Applications

Australian Research Council

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History

Journal

Nature Communications

Volume

8

Number

613

Issue

1

Start page

1

End page

8

Total pages

8

Publisher

Nature

Place published

United Kingdom

Language

English

Copyright

© 2017 The Author(s). Open Access This article is licensed under a Creative Commons Attribution 4.0

Former Identifier

2006081599

Esploro creation date

2020-06-22

Fedora creation date

2018-12-10

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