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Narrow-Bandgap Halide Perovskite Cs4CuSb2Cl12 with Full-Spectrum Photothermal Conversion AITranslate

Fuzhou University; Fuzhou University; Fuzhou University; Fuzhou University; Fujian Normal University; Fujian Normal University; Nanjing University; Fuzhou University
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Publisher: ACS
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Abstract AITranslate

Light-to-heat conversion represents one of the most promising pathways to utilize full-spectrum solar energy. The key for boosting the photothermal conversion in semiconductor-based light absorbers relies on narrowing the bandgap for harvesting wide-range sunlight and localizing thermal energy via decreasing heat loss. Here, we demonstrate the first example of using a halide perovskite, Cs4CuSb2Cl12, as the photothermal material for efficient solar-to-heat conversion, with an intrinsic narrow bandgap and ultralow thermal conductivity. Full-spectrum (200–2500 nm) absorption and solar-thermal conversion efficiency up to 93.4% are achieved. The photothermal property enables a low-temperature and rapid hydrogen production from ammonia borane, with 2.0 equiv of hydrogen released, and a photothermal activation efficiency of 12.2% is realized, without any extra energy input. This high photothermal performance not only provides a potential for an energy-efficient on-board hydrogen supply for fuel cells but also opens up a new field for halide perovskites utilized as photothermal convertors.

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DOI:https://doi.org/10.1021/acsenergylett.3c02218

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Citation Information:

Light-to-heat conversion represents one of the most promising pathways to utilize full-spectrum solar energy. The key for boosting the photothermal conversion in semiconductor-based light absorbers relies on narrowing the bandgap for harvesting wide-range sunlight and localizing thermal energy via decreasing heat loss. Here, we demonstrate the first example of using a halide perovskite, Cs4CuSb2Cl12, as the photothermal material for efficient solar-to-heat conversion, with an intrinsic narrow bandgap and ultralow thermal conductivity. Full-spectrum (200–2500 nm) absorption and solar-thermal conversion efficiency up to 93.4% are achieved. The photothermal property enables a low-temperature and rapid hydrogen production from ammonia borane, with 2.0 equiv of hydrogen released, and a photothermal activation efficiency of 12.2% is realized, without any extra energy input. This high photothermal performance not only provides a potential for an energy-efficient on-board hydrogen supply for fuel cells but also opens up a new field for halide perovskites utilized as photothermal convertors.

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GB/T 7714-2015 [1] Yutian Wang, Yuanxin Ji, Yalin Yang, et al. ACS Energy Letters, 2024(9). DOI:10.1021/acsenergylett.3c02218.
MLA [1] Yutian Wang, et al., ACS Energy Letters, no. 9, 2024, https://doi.org/10.1021/acsenergylett.3c02218.
APA [1] Yutian Wang, Yuanxin Ji, Yalin Yang, Zheyan Chen, Hao Sun, Xuejiao Wang, Zhigang Zou, & Hanlin Huang. (2024). ACS Energy Letters(9). https://doi.org/10.1021/acsenergylett.3c02218
IEEE [1] Yutian Wang, Yuanxin Ji, Yalin Yang, Zheyan Chen, Hao Sun, Xuejiao Wang, Zhigang Zou, and Hanlin Huang, ACS Energy Letters, no. 9, 2024, doi: 10.1021/acsenergylett.3c02218.