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Boosting the Efficiency of Photoelectrolysis by the Addition of Non-Noble Plasmonic Metals: Al & Cu

Nanomaterials · 2018 · Vol. 9(1) · pp. 1–1
Qianfan JiangChengyu JiD. Jason RileyFang Xie

Abstract

Solar water splitting by semiconductor based photoanodes and photocathodes is one of the most promising strategies to convert solar energy to chemical energy to meet the high demand for energy consumption in modern society. However, the state-of-the-art efficiency is too low to fulfill the demand. To overcome this challenge and thus enable the industrial realization of a solar water splitting device, different approaches have been taken to enhance the overall device efficiency, one of which is the incorporation of plasmonic nanostructures. Photoanodes and photocathodes coupled to the optimized plasmonic nanostructures, matching the absorption wavelength of the semiconductors, can exhibit a significantly increased efficiency. So far, gold and silver have been extensively explored to plasmonically enhance water splitting efficiency, with disadvantages of high cost and low enhancement. Instead, non-noble plasmonic metals such as aluminum and copper, are earth-abundant and low cost. In this article, we review their potentials in photoelectrolysis, towards scalable applications.

Advanced Photocatalysis TechniquesCopper-based nanomaterials and applicationsAdvanced biosensing and bioanalysis techniquesPlasmonMaterials scienceNoble metalPhotoelectrolysisWater splittingSemiconductorEnergy conversion efficiencyNanotechnologyOptoelectronicsFigure of merit

Funding

  • Engineering and Physical Sciences Research Council
Citations
469
FWCI
29.62
field-weighted impact
References
79
Percentile
100%
vs. same field & year
Citations per year
References
Plasmon-induced hot carrier science and technology
Nature Nanotechnology · 2015 · 3,357 citations
Plasma Losses by Fast Electrons in Thin Films
Physical Review · 1957 · 3,032 citations
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