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通过石墨烯实现的无 Pt 高效可见光响应光催化剂中热等离子体电子的超快和高效输运。

Ultrafast and Efficient Transport of Hot Plasmonic Electrons by Graphene for Pt Free, Highly Efficient Visible-Light Responsive Photocatalyst.

机构信息

KU-KIST Graduate School of Converging Science and Technology, Korea University , 145 Anam-ro, Seongbuk-gu, Seoul 136-701, South Korea.

Department of Chemistry and Chemistry Institute for Functional Materials, Pusan National University , Busan 609-735 South Korea.

出版信息

Nano Lett. 2016 Mar 9;16(3):1760-7. doi: 10.1021/acs.nanolett.5b04764. Epub 2016 Feb 10.

Abstract

We report that reduced graphene-coated gold nanoparticles (r-GO-AuNPs) are excellent visible-light-responsive photocatalysts for the photoconversion of CO2 into formic acid (HCOOH). The wavelength-dependent quantum and chemical yields of HCOOH shows a significant contribution of plasmon-induced hot electrons for CO2 photoconversion. Furthermore, the presence and reduced state of the graphene layers are critical parameters for the efficient CO2 photoconversion because of the electron mobility of graphene. With an excellent selectivity toward HCOOH (>90%), the quantum yield of HCOOH using r-GO-AuNPs is 1.52%, superior to that of Pt-coated AuNPs (quantum yield: 1.14%). This indicates that r-GO is a viable alternative to platinum metal. The excellent colloidal stability and photocatalytic stability of r-GO-AuNPs enables CO2 photoconversion under more desirable reaction conditions. These results highlight the role of reduced graphene layers as highly efficient electron acceptors and transporters to facilitate the use of hot electrons for plasmonic photocatalysts. The femtosecond transient spectroscopic analysis also shows 8.7 times higher transport efficiency of hot plasmonic electrons in r-GO-AuNPs compared with AuNPs.

摘要

我们报告称,还原氧化石墨烯包覆的金纳米粒子(r-GO-AuNPs)是出色的可见光响应光催化剂,可将二氧化碳高效光转化为甲酸(HCOOH)。HCOOH 的波长相关量子产率和化学产率表明等离子体诱导热电子对 CO2 光转化有显著贡献。此外,石墨烯层的存在和还原态是 CO2 高效光转化的关键参数,这是因为石墨烯具有较高的电子迁移率。r-GO-AuNPs 对 HCOOH 具有优异的选择性(>90%),其 HCOOH 的量子产率为 1.52%,优于 Pt 包覆的 AuNPs(量子产率:1.14%)。这表明 r-GO 是替代铂金属的可行选择。r-GO-AuNPs 具有出色的胶体稳定性和光催化稳定性,可在更理想的反应条件下进行 CO2 光转化。这些结果突出了还原氧化石墨烯层作为高效电子受体和传输体的作用,可促进利用等离子体光催化剂中的热电子。飞秒瞬态光谱分析还表明,与 AuNPs 相比,r-GO-AuNPs 中热等离子体电子的传输效率高 8.7 倍。

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