Dual-plasmonic Au@Cu7S4 yolk@shell nanocrystals for photocatalytic hydrogen production across visible to near infrared spectral region

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作者
Chun-Wen Tsao
Sudhakar Narra
Jui-Cheng Kao
Yu-Chang Lin
Chun-Yi Chen
Yu-Cheng Chin
Ze-Jiung Huang
Wei-Hong Huang
Chih-Chia Huang
Chih-Wei Luo
Jyh-Pin Chou
Shigenobu Ogata
Masato Sone
Michael H. Huang
Tso-Fu Mark Chang
Yu-Chieh Lo
Yan-Gu Lin
Eric Wei-Guang Diau
Yung-Jung Hsu
机构
[1] National Yang Ming Chiao Tung University,Department of Materials Science and Engineering
[2] National Yang Ming Chiao Tung University,Department of Applied Chemistry and Institute of Molecular Science
[3] National Synchrotron Radiation Research Center,Institute of Innovative Research
[4] Tokyo Institute of Technology,Department of Photonics
[5] National Cheng Kung University,Department of Electrophysics
[6] National Yang Ming Chiao Tung University,Institute of Physics
[7] National Yang Ming Chiao Tung University,Department of Physics
[8] National Changhua University of Education,Department of Mechanical Science and Bioengineering
[9] Osaka University,Department of Chemistry
[10] National Tsing Hua University,Center for Emergent Functional Matter Science
[11] National Yang Ming Chiao Tung University,International Research Frontiers Initiative
[12] Institute of Innovative Research,undefined
[13] Tokyo Institute of Technology,undefined
来源
Nature Communications | / 15卷
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摘要
Near infrared energy remains untapped toward the maneuvering of entire solar spectrum harvesting for fulfilling the nuts and bolts of solar hydrogen production. We report the use of Au@Cu7S4 yolk@shell nanocrystals as dual-plasmonic photocatalysts to achieve remarkable hydrogen production under visible and near infrared illumination. Ultrafast spectroscopic data reveal the prevalence of long-lived charge separation states for Au@Cu7S4 under both visible and near infrared excitation. Combined with the advantageous features of yolk@shell nanostructures, Au@Cu7S4 achieves a peak quantum yield of 9.4% at 500 nm and a record-breaking quantum yield of 7.3% at 2200 nm for hydrogen production in the absence of additional co-catalysts. The design of a sustainable visible- and near infrared-responsive photocatalytic system is expected to inspire further widespread applications in solar fuel generation. In this work, the feasibility of exploiting the localized surface plasmon resonance property of self-doped, nonstoichiometric semiconductor nanocrystals for the realization of wide-spectrum-driven photocatalysis is highlighted.
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