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Plasmon of Au nanorods activates metal-organic frameworks for both the hydrogen evolution reaction and oxygen evolution reaction

机译:等离子体的Au纳米激活有机配合框架为氢进化进化反应和氧反应

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Electrocatalytic water splitting holds great promise for renewable energy conversion and storage systems. However, it usually suffers from sluggish kinetics, which greatly hinders its real application. Here, we demonstrate the utilization of the localized surface plasmon resonance (LSPR) of Au nanorods (AuNRs) to significantly improve the electroactivity of both the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER) at Co-MOF nanosheets (Co-MOFNs) under different polarizations. Theoretical calculations suggest that the HER enhancement can be largely attributed to the injection of hot electrons from plasmonic AuNRs to Co-MOFN catalysts, which upraises the Fermi level of Co-MOFNs, increasing their reductive activity towards the HER. Regarding the promotion of the OER, it is indicated that the formed holes in Co-MOFNs should majorly locate on the surface oxygen atoms, which may also serve as active positions working jointly with neighboring Co atoms in oxidizing OH-. The plasmon enhanced HER and OER electrocatalysis could also be observed over AuNR/Ni-MOFN and AuNR/NiCo-MOFN catalysts, suggesting the generality of this strategy. This study highlights the possibility of accelerating both the HER and OER efficiency by AuNR plasmonic excitation and provides a new route towards the design of more efficient water splitting systems with the assistance of light energy.
机译:Electrocatalytic水分裂是伟大的对可再生能源转换和承诺存储系统。缓慢的动力学,这极大地阻碍了其真实的应用程序。局部表面等离子体共振(LSPR)金纳米棒(AuNRs)显著改善的electroactivity氢进化进化(她)和氧气的反应反应(OER) Co-MOF nanosheets (Co-MOFNs)在不同的偏振。计算表明,她的增强在很大程度上归因于注入热电子从电浆AuNRs Co-MOFN催化剂,抬起的费米能级Co-MOFNs,提高还原活动向她。OER,表明形成了洞Co-MOFNs应该主要定位在表面上氧原子,这也可能成为活跃职位与周边公司共同工作原子氧化哦,。和OER电催化作用也可以观察到在AuNR / Ni-MOFN和AuNR / NiCo-MOFN催化剂,表明该策略的一般性。研究凸显了加速的可能性她和OER AuNR电浆效率兴奋和对提供了一种新的途径更有效的水分离系统的设计的协助下光能。

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