Tandem nanostructures: a prospective platform for photoelectrochemical water splitting

Affiliation
Guangdong-Hong Kong Joint Laboratory for Water Security Engineering Research Center of Ministry of Education on Groundwater Pollution Control and Remediation Center for Water Research Advanced Institute of Natural Sciences Beijing Normal University at Zhuhai Zhuhai 519087 P. R. China
Liu, Jun;
Affiliation
Fachgebiet Angewandte Nanophysik Institut für Physik & IMN MacroNano Technische Universität Ilmenau 98693 Ilmenau Germany
Zhao, Huaping;
Affiliation
Key Laboratory of Semiconductor Materials Science Beijing Key Laboratory of Low Dimensional Semiconductor Materials and Devices Institute of Semiconductors Chinese Academy of Sciences Beijing 100083 P. R. China
Wang, Zhijie;
Affiliation
Fundamentals of Energy Materials Institute of Physics Technische Universität Ilmenau 98693 Ilmenau Germany
Hannappel, Thomas;
Affiliation
Department of Chemistry, Catalysts and Electrocatalysts group Technical University of Darmstadt 64287 Darmstadt Germany
Kramm, Ulrike I.;
Affiliation
Department of Chemistry Ernst-Berl-Institut für Technische und Makromolekulare Chemie Technical University of Darmstadt 64287 Darmstadt Germany
Etzold, Bastian J. M.;
ORCID
0000-0001-5048-7433
Affiliation
Fachgebiet Angewandte Nanophysik Institut für Physik & IMN MacroNano Technische Universität Ilmenau 98693 Ilmenau Germany
Lei, Yong

A platform for efficient photoelectrochemical (PEC) water splitting must fulfil different requirements: the absorption of the solar spectrum should be maximized in use for charge carrier generation. To avoid recombination, fast separation of charge carriers is required and the energetic positions of the band structure(s) must be optimized with respect to the water splitting reactions. In these respects, constructing tandem nanostructures with rationally designed nanostructured units offers a potential opportunity to break the performance bottleneck imposed by the unitary nanostructure. So far, quite a few tandem nanostructures have been designed, fabricated, and employed to improve the efficiency of PEC water splitting, and significant achievements have been realized. This review focuses on the current advances in tandem nanostructures for PEC water splitting. Firstly, the state of the art for tandem nanostructures applied in PEC water splitting is summarized. Secondly, the advances in this field and advantages arising of employing tandem nanostructures for PEC water splitting are outlined. Subsequently, different types of tandem nanostructures are reviewed, including core‐shell tandem nanostructured photoelectrode, the two‐photoelectrode tandem cell, and the tandem nanostructures of plasmon related devices for PEC water splitting. Based on this, the future perspective of this field is proposed.

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