Singlet fission photovoltaics: Progress and promising pathways

Author:

Baldacchino Alexander J.1ORCID,Collins Miles I.2ORCID,Nielsen Michael P.1ORCID,Schmidt Timothy W.3ORCID,McCamey Dane R.2ORCID,Tayebjee Murad J. Y.1ORCID

Affiliation:

1. School of Photovoltaic and Renewable Energy Engineering, UNSW Sydney, Sydney, New South Wales, Australia

2. ARC Centre of Excellence in Exciton Science, School of Physics, UNSW Sydney, Sydney, New South Wales, Australia

3. ARC Centre of Excellence in Exciton Science, School of Chemistry, UNSW Sydney, Sydney, New South Wales, Australia

Abstract

Singlet fission is a form of multiple exciton generation, which occurs in organic chromophores when a high-energy singlet exciton separates into two lower energy triplet excitons, each with approximately half the singlet energy. Since this process is spin-allowed, it can proceed on an ultrafast timescale of less than several picoseconds, outcompeting most other loss mechanisms and reaching quantitative yields approaching 200%. Due to this high quantum efficiency, the singlet fission process shows promise as a means of reducing thermalization losses in photovoltaic cells. This would potentially allow for efficiency improvements beyond the thermodynamic limit in a single junction cell. Efforts to incorporate this process into solar photovoltaic cells have spanned a wide range of device structures over the past decade. In this review, we compare and categorize these attempts in order to assess the state of the field and identify the most promising avenues of future research and development.

Funder

Australian Centre for Advanced Photovoltaics

Australian Research Council Centre of Excellence in Exciton Science

Sydney Quantum Academy

Publisher

AIP Publishing

Subject

General Earth and Planetary Sciences,General Engineering,General Environmental Science

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