论文标题

观察混合等离子体 - 异位纳米结构中的多方向能传递

Observation of multi-directional energy transfer in a hybrid plasmonic-excitonic nanostructure

论文作者

Pincelli, Tommaso, Vasileiadis, Thomas, Dong, Shuo, Beaulieu, Samuel, Dendzik, Maciej, Zahn, Daniela, Lee, Sang-Eun, Seiler, Hélène, Qi, Yinpeng, Xian, R. Patrick, Maklar, Julian, Coy, Emerson, Müller, Niclas S., Okamura, Yu, Reich, Stephanie, Wolf, Martin, Rettig, Laurenz, Ernstorfer, Ralph

论文摘要

混合等离激元设备涉及支撑局部表面等离子体的纳米结构金属,以扩大光 - 物质的相互作用,并具有非质子材料以使电荷激发功能化。然而,与应用相关的外延异质结构产生了弹道超快动力学,这些动力学挑战了对单向纳米纳米底底能量转移的常规半经典理解。我们研究了在WSE $ _2 $上的外延Au Nanoislands,并通过时间和角度分辨的光发射光谱和飞秒电子衍射:这种技术的组合解决了在异质结构中激发的材料,能量和电荷 - 载体和声音的动量。我们观察到强烈的非线性等离子体激子相互作用,该相互作用非常有效地转移到半导体,使金属冷,直到非辐射激发激素重组将纳米颗粒加热到数百个femtsoconds时尺度上。我们的结果解决了比纳米纳米的电子热化的时间尺度上的多向能量交换。电子 - 音波耦合和扩散电荷转移确定随后的能量流。这种复杂的动力学为光电和光催化应用打开了观点,同时为最先进的建模提供了限制的实验测试床。

Hybrid plasmonic devices involve a nanostructured metal supporting localized surface plasmons to amplify light-matter interaction, and a non-plasmonic material to functionalize charge excitations. Application-relevant epitaxial heterostructures, however, give rise to ballistic ultrafast dynamics that challenge the conventional semiclassical understanding of unidirectional nanometal-to-substrate energy transfer. We study epitaxial Au nanoislands on WSe$_2$ with time- and angle-resolved photoemission spectroscopy and femtosecond electron diffraction: this combination of techniques resolves material, energy and momentum of charge-carriers and phonons excited in the heterostructure. We observe a strong non-linear plasmon-exciton interaction that transfers the energy of sub-bandgap photons very efficiently to the semiconductor, leaving the metal cold until non-radiative exciton recombination heats the nanoparticles on hundreds of femtoseconds timescales. Our results resolve a multi-directional energy exchange on timescales shorter than the electronic thermalization of the nanometal. Electron-phonon coupling and diffusive charge-transfer determine the subsequent energy flow. This complex dynamics opens perspectives for optoelectronic and photocatalytic applications, while providing a constraining experimental testbed for state-of-the-art modelling.

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