High‐Performance Perovskite Solar Cell via Chirality‐Engineered Graphene Quantum Dot Interface Passivation

Author:

Han Jonghoon1,Dai Xinchen2,Hettiarachchi Sandhuli1,The Zhi Li1,Park Sangwook3,Chen Sam4,Veettil Binesh Puthen1,Huang Shujuan1ORCID,Kim Dong Jun2ORCID,Kim Jincheol1ORCID

Affiliation:

1. School of Engineering Macquarie University Sydney NSW 2109 Australia

2. School of Chemistry University of New South Wales Sydney NSW 2052 Australia

3. Research and Development Division Solar Skin Pty Ltd. Macquarie Park 2113 NSW Australia

4. School of Environmental and Life Sciences The University of Newcastle Callaghan NSW 2308 Australia

Abstract

In the rapidly advancing field of perovskite solar cells (PSCs), achieving the Shockley–Queisser efficiency limit is primarily hindered by nonradiative recombination losses. In this study, the strategic incorporation of chiral graphene quantum dots (GQDs) at the PSC interface is pioneered, significantly mitigating these losses through this chiral interface engineering. Also in this study, by synthesizing and characterizing the chiroptic behavior and doping effects of both chiral and racemic GQDs, their pivotal role in enhancing charge extraction and transport is unveiled. In the findings of this study, it is shown that GQDs do not alter the crystallization of perovskite films but significantly boost light absorption owing to improved interfacial contact. Subsequent optical and electrical assessments reveal that the PSCs treated with chiral GQDs outperform those with racemic GQDs, primarily on account of the chiral specificity of chiral GQDs, which leads to reduced nonradiative recombination and enhanced charge transport efficiency. In this work, not only the potential of chiral GQDs is underscored in elevating PSC efficiency but also a compelling proof of concept for chiral interface engineering is established as a key to unlocking the full potential of PSCs.

Funder

Australian Research Council

Publisher

Wiley

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