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Controlling Photoluminescence and Photocatalysis Activities in Lead‐Free Cs<sub>2</sub>Pt<sub><i>x</i></sub>Sn<sub>1−<i>x</i></sub>Cl<sub>6</sub> Perovskites via Ion Substitution

82

Citations

39

References

2021

Year

Abstract

Lead-free halide perovskites have triggered interest in the field of optoelectronics and photocatalysis because of their low toxicity, and tunable optical and charge-carrier properties. From an application point of view, it is desirable to develop stable multifunctional lead-free halide perovskites. We have developed a series of Cs<sub>2</sub> Pt<sub>x</sub> Sn<sub>1-x</sub> Cl<sub>6</sub> perovskites (0≤x≤1) with high stability, which show switchable photoluminescence and photocatalytic functions by varying the amount of Pt<sup>4+</sup> substitution. A Cs<sub>2</sub> Pt<sub>x</sub> Sn<sub>1-x</sub> Cl<sub>6</sub> solid solution with a dominant proportion of Pt<sup>4+</sup> shows broadband photoluminescence with a lifetime on the microsecond timescale. A Cs<sub>2</sub> Pt<sub>x</sub> Sn<sub>1-x</sub> Cl<sub>6</sub> solid solution with a small amount of Pt<sup>4+</sup> substitution exhibits photocatalytic hydrogen evolution activity. An optical spectroscopy study reveals that the switch between photoluminescence and photocatalysis functions is controlled by sub-band gap states. Our finding provides a new way to develop lead-free multifunctional halide perovskites with high stability.

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