Influence of Organic Spacer Cation on Dark Excitons in 2D Perovskites

Author:

Bailey Christopher G.1ORCID,Gillan Lara V.1ORCID,Lee Minwoo2,Sloane Nicholas1,Liu Xu2,Hao Xiaojing2,Soufiani Arman Mahboubi2ORCID,McCamey Dane R.1ORCID

Affiliation:

1. ARC Centre of Excellence in Exciton Science School of Physics University of New South Wales Sydney NSW 2052 Australia

2. School of Photovoltaics and Renewable Energy Engineering University of New South Wales Sydney NSW 2052 Australia

Abstract

AbstractThe organic spacer cation plays a crucial role in determining the exciton fine structure in 2D perovskites. Here, magneto‐optical spectroscopy is used to gain insight into the influence of the organic spacer on dark excitons in Ruddlesden–Popper (RP) perovskites. Using modest magnetic field strengths (<1.5 T), the optically forbidden dark exciton state can be identified and its emission properties significantly modulated via application of in‐plane magnetic fields, up to temperatures of 15 K. At low temperatures, an increase in collected photoluminescence efficiency of >30% is demonstrated, signifying the critical role of the dark exciton state for light‐emitting applications of 2D perovskites. The exciton fine structure and the degree of magnetic‐field‐induced mixing are significantly impacted by the choice of organic spacer cation, with 4–methoxyphenylethylammonium (MeO‐PEA) showing the largest effect due to larger bright–dark exciton splitting. This study distinguishes between interior (bulk) and surface dark‐exciton emission, showing that bright–dark exciton splitting differs between the interior and surface. The results emphasize the significance of the organic spacer cation in controlling the exciton fine structure in 2D perovskites and have important implications for the development of optoelectronic technology based on 2D perovskites.

Funder

Centre of Excellence in Exciton Science

Australian Research Council

Australian Centre for Advanced Photovoltaics

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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