光子对等离子体金属表观塞贝克系数的贡献。

IF 9.1 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Boqin Zhao, Annika Lee, Ju Eun Yim, Zachary Brawley, Emma Brass and Matthew Sheldon*, 
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引用次数: 0

摘要

等离子体金属纳米结构中的光致电荷输运在传感和功率转换方面的应用引起了人们的极大兴趣,但其潜在机制仍存在争议。在这里,我们报道了在聚焦毫瓦级激光激发下,在光工程金纳米线中产生空间相关的光电压。放置在纳米线附近的等离子体纳米盘天线在光子环境中产生了局部变化,从而产生了明确的光电压增强区域。实验结果和模拟强烈支持热驱动的光热电(PTE)机制,其中局部光子结构改变了金属的固有塞贝克系数,独立于其他电子结构因素。我们的研究结果强调了光子-电子相互作用对观察到的输运现象至关重要,表明光子工程是系统控制和优化热电性能的可行策略。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Photonic Contributions to the Apparent Seebeck Coefficient of Plasmonic Metals

Photonic Contributions to the Apparent Seebeck Coefficient of Plasmonic Metals

Photoinduced charge transport in plasmonic metal nanostructures has garnered significant interest for applications in sensing and power conversion, yet the underlying mechanisms remain debated. Here, we report spatially correlated photovoltage generation in photonically engineered Au nanowires illuminated by focused, milliwatt-level laser excitation. Plasmonic nanodisk antennas placed adjacent to the nanowires created local variations in the photonic environment, resulting in clearly defined regions of enhanced photovoltage. Experimental results and simulations strongly support a thermally driven photothermoelectric (PTE) mechanism, where the local photonic structure modifies the intrinsic Seebeck coefficient of the metal, independent of other electronic structural factors. Our findings highlight photon-electron interactions as critical to the observed transport phenomena, suggesting photonic engineering as a viable strategy to systematically control and optimize thermoelectric performance.

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来源期刊
Nano Letters
Nano Letters 工程技术-材料科学:综合
CiteScore
16.80
自引率
2.80%
发文量
1182
审稿时长
1.4 months
期刊介绍: Nano Letters serves as a dynamic platform for promptly disseminating original results in fundamental, applied, and emerging research across all facets of nanoscience and nanotechnology. A pivotal criterion for inclusion within Nano Letters is the convergence of at least two different areas or disciplines, ensuring a rich interdisciplinary scope. The journal is dedicated to fostering exploration in diverse areas, including: - Experimental and theoretical findings on physical, chemical, and biological phenomena at the nanoscale - Synthesis, characterization, and processing of organic, inorganic, polymer, and hybrid nanomaterials through physical, chemical, and biological methodologies - Modeling and simulation of synthetic, assembly, and interaction processes - Realization of integrated nanostructures and nano-engineered devices exhibiting advanced performance - Applications of nanoscale materials in living and environmental systems Nano Letters is committed to advancing and showcasing groundbreaking research that intersects various domains, fostering innovation and collaboration in the ever-evolving field of nanoscience and nanotechnology.
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