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高效的等离子体介导的电子从嵌入的银纳米颗粒注入氧化铈。

Highly efficient plasmon-mediated electron injection into cerium oxide from embedded silver nanoparticles.

作者信息

Pelli Cresi Jacopo Stefano, Spadaro Maria Chiara, D'Addato Sergio, Valeri Sergio, Benedetti Stefania, Di Bona Alessandro, Catone Daniele, Di Mario Lorenzo, O'Keeffe Patrick, Paladini Alessandra, Bertoni Giovanni, Luches Paola

机构信息

Dipartimento FIM, Università di Modena e Reggio Emilia, Via G. Campi 213/a, Modena, Italy.

出版信息

Nanoscale. 2019 May 30;11(21):10282-10291. doi: 10.1039/c9nr01390c.

Abstract

The coupling with plasmonic metal nanoparticles (NPs) represents a promising opportunity to sensitize wide band gap oxides to visible light. The processes which come into play after the excitation of localized surface plasmon resonances (LSPRs) in the NPs largely determine the efficiency of the charge/energy transfer from the metal NP to the oxide. We report a study of plasmon-mediated energy transfer from mass-selected silver NPs into the cerium oxide matrix in which they are embedded. Femtosecond transient absorption spectroscopy is used to probe the dynamics of charge carrier relaxation after the excitation of the LSPR of the silver nanoparticles and to evaluate the plasmon-mediated electron transfer efficiency from the silver nanoparticles to the cerium oxide. High injection efficiencies in the 6-16% range have been identified for excitation between 400 and 600 nm. These high values have been explained in terms of plasmon-mediated direct electron injection as well as indirect hot electron injection from the NPs to the oxide. The information obtained provides an important contribution towards a knowledge-driven design of efficient cerium oxide based nanostructured materials for solar to chemical energy conversion.

摘要

与等离子体金属纳米颗粒(NPs)耦合是使宽带隙氧化物对可见光敏感的一个有前景的机会。纳米颗粒中局域表面等离子体共振(LSPRs)激发后起作用的过程在很大程度上决定了从金属纳米颗粒到氧化物的电荷/能量转移效率。我们报告了一项关于等离子体介导的能量从质量选择的银纳米颗粒转移到嵌入其中的氧化铈基质的研究。飞秒瞬态吸收光谱用于探测银纳米颗粒的LSPR激发后电荷载流子弛豫的动力学,并评估等离子体介导的从银纳米颗粒到氧化铈的电子转移效率。已确定在400至600nm激发下的高注入效率在6 - 16%范围内。这些高值已根据等离子体介导的直接电子注入以及从纳米颗粒到氧化物的间接热电子注入进行了解释。所获得的信息为基于知识驱动设计用于太阳能到化学能转换的高效氧化铈基纳米结构材料做出了重要贡献。

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