等离子体子
诺共振
量子
纳米棒
物理
三聚体
纳米光子学
法诺平面
电子
等离子纳米粒子
光电子学
纳米技术
材料科学
量子力学
数学
二聚体
纯数学
核磁共振
作者
Peihang Li,Artur Movsesyan,Alina Muravitskaya,Óscar Ávalos‐Ovando,Peng Yu,Eva Yazmin Santiago,Li Ma,Zhimin Jing,Yue Li,Zhiming M. Wang,Alexander O. Govorov
出处
期刊:ACS Nano
[American Chemical Society]
日期:2025-07-17
卷期号:19 (31): 28160-28170
被引量:3
标识
DOI:10.1021/acsnano.5c02861
摘要
Exploring the mechanisms and potential of hot-electron (HE) generation is a crucial facet of contemporary nanooptics and nanoelectronics research. In this work, we examine the limits of localization and enhancement in HE generation, particularly in the context of photochemical processes such as hydrocarbon fuel synthesis. For this study, we developed a nonlinear, quantum, self-consistent formalism incorporating multipole Kreibig parameters. We employed a plasmonic trimer consisting of two broadband antenna nanoparticles (NPs) and a small "reactor" nanorod (NR) with a narrow resonance. In this Fano scheme, the total absorption of the NP-NR-NP trimer exhibits a pronounced Fano effect─specifically, a Fano dip. Notably, we observe a significant enhancement in HE generation when computing surface maps within the NR. We refer to this configuration as an HE Super-Generator. From a fundamental perspective, the proposed nanooptical regime─combining Fano interference with the antenna effect─represents a scenario approaching the practical upper limit of HE-based quantum effects achievable in plasmonics. Our findings point to a promising strategy for future optoelectronic and photochemical applications at the classical-quantum interface in plasmonic systems.
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