Strong self-trapping by deformation potential limits photovoltaic performance in bismuth double perovskite.

Wu, Bo; Ning, Weihua; Xu, Qiang; Manjappa, Manukumara; Feng, Minjun; Ye, Senyun; Fu, Jianhui; Lie, Stener et al. · Sci Adv · 2021

basic_science · Level V

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Abstract

Bismuth-based double perovskite Cs<sub>2</sub>AgBiBr<sub>6</sub> is regarded as a potential candidate for low-toxicity, high-stability perovskite solar cells. However, its performance is far from satisfactory. Albeit being an indirect bandgap semiconductor, we observe bright emission with large bimolecular recombination coefficient (reaching 4.5 ± 0.1 × 10<sup>-11</sup> cm<sup>3</sup> s<sup>-1</sup>) and low charge carrier mobility (around 0.05 cm<sup>2</sup> s<sup>-1</sup> V<sup>-1</sup>). Besides intermediate Fröhlich couplings present in both Pb-based perovskites and Cs<sub>2</sub>AgBiBr<sub>6</sub>, we uncover evidence of strong deformation potential by acoustic phonons in the latter through transient reflection, time-resolved terahertz measurements, and density functional theory calculations. The Fröhlich and deformation potentials synergistically lead to ultrafast self-trapping of free carriers forming polarons highly localized on a few units of the lattice within a few picoseconds, which also breaks down the electronic band picture, leading to efficient radiative recombination. The strong self-trapping in Cs<sub>2</sub>AgBiBr<sub>6</sub> could impose intrinsic limitations for its application in photovoltaics.