化学物理
材料科学
催化作用
表面等离子体子
光催化
光催化分解水
分解水
飞秒
激发
等离子体子
电子转移
超短脉冲
纳米晶
纳米技术
纳米颗粒
载流子
电荷(物理)
电子
金属
女性化学
四面体
分子物理学
原子物理学
Atom(片上系统)
光化学
过渡金属
星团(航天器)
超快激光光谱学
半导体
化学
原子单位
静电感应
有效核电荷
量子隧道
作者
Yimin Zhang,Daqiang Chen,Weite Meng,Shunfang Li,Sheng Meng
标识
DOI:10.3389/fchem.2021.742794
摘要
A promising route to realize solar-to-chemical energy conversion resorts to water splitting using plasmon photocatalysis. However, the ultrafast carrier dynamics and underlying mechanism in such processes has seldom been investigated, especially when the single-atom catalyst is introduced. Here, from the perspective of quantum dynamics at the atomic length scale and femtosecond time scale, we probe the carrier and structural dynamics of plasmon-assisted water splitting on an Ag-alloyed Pt single-atom catalyst, represented by the Ag 19 Pt nanocluster. The substitution of an Ag atom by the Pt atom at the tip of the tetrahedron Ag 20 enhances the interaction between water and the nanoparticle. The excitation of localized surface plasmons in the Ag 19 Pt cluster strengthens the charge separation and electron transfer upon illumination. These facts cooperatively turn on more than one charge transfer channels and give rise to enhanced charge transfer from the metal nanoparticle to the water molecule, resulting in rapid plasmon-induced water splitting. These results provide atomistic insights and guidelines for the design of efficient single-atom photocatalysts for plasmon-assisted water splitting.
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