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Boosting photoelectrochemical efficiency by near-infrared-active lattice-matched morphological heterojunctions.


ABSTRACT: Photoelectrochemical catalysis is an attractive way to provide direct hydrogen production from solar energy. However, solar conversion efficiencies are hindered by the fact that light harvesting has so far been of limited efficiency in the near-infrared region as compared to that in the visible and ultraviolet regions. Here we introduce near-infrared-active photoanodes that feature lattice-matched morphological hetero-nanostructures, a strategy that improves energy conversion efficiency by increasing light-harvesting spectral range and charge separation efficiency simultaneously. Specifically, we demonstrate a near-infrared-active morphological heterojunction comprised of BiSeTe ternary alloy nanotubes and ultrathin nanosheets. The heterojunction's hierarchical nanostructure separates charges at the lattice-matched interface of the two morphological components, preventing further carrier recombination. As a result, the photoanodes achieve an incident photon-to-current conversion efficiency of 36% at 800 nm in an electrolyte solution containing hole scavengers without a co-catalyst.

SUBMITTER: Liu GQ 

PROVIDER: S-EPMC8280183 | biostudies-literature | 2021 Jul

REPOSITORIES: biostudies-literature

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Boosting photoelectrochemical efficiency by near-infrared-active lattice-matched morphological heterojunctions.

Liu Guo-Qiang GQ   Yang Yuan Y   Li Yi Y   Zhuang Taotao T   Li Xu-Feng XF   Wicks Joshua J   Tian Jie J   Gao Min-Rui MR   Peng Jin-Lan JL   Ju Huan-Xin HX   Wu Liang L   Pan Yun-Xiang YX   Shi Lu-An LA   Zhu Haiming H   Zhu Junfa J   Yu Shu-Hong SH   Sargent Edward H EH  

Nature communications 20210714 1


Photoelectrochemical catalysis is an attractive way to provide direct hydrogen production from solar energy. However, solar conversion efficiencies are hindered by the fact that light harvesting has so far been of limited efficiency in the near-infrared region as compared to that in the visible and ultraviolet regions. Here we introduce near-infrared-active photoanodes that feature lattice-matched morphological hetero-nanostructures, a strategy that improves energy conversion efficiency by incre  ...[more]

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