激光与磁化金属表面相互作用产生太赫兹表面等离子体

IF 3.3 4区 物理与天体物理 Q2 CHEMISTRY, PHYSICAL Plasmonics Pub Date : 2024-05-27 DOI:10.1007/s11468-024-02358-6
Avijit Chamoli, Devki Nandan Gupta, Vijay Kumar
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引用次数: 0

摘要

通过激光与金属表面的相互作用激发表面等离子体波(SPW),可以在无金属空间界面产生太赫兹(THz)辐射。我们提出了一种新颖的太赫兹辐射产生模型,利用两束激光在磁场存在的情况下在金属表面跳动。这种相互作用会共振激发 SPW,从而产生太赫兹等离子体。两个共面激光器的频率与电子等离子体的有效频率存在差异,它们对金属表皮层施加了一种思索动力,从而引起表面电子的振荡速度,并驱动表面等离子体波。表面等离子波的横向分量导致产生太赫兹频率的电磁辐射。此外,外加磁性会增强与 SPW 相关的横向电流。因此,太赫兹场强显著增加。我们得到了太赫兹辐射场的表达式,并估算了场强与磁场的比例关系。我们的研究结果表明,在磁场强度优化的情况下,太赫兹转换效率更高。这项研究成果提供了一种通过激光与金属表面相互作用产生太赫兹辐射场的可行方法。
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Terahertz Surface Plasmon Generation from Laser Interaction with a Magnetized Metallic Surface

The excitation of surface plasma waves (SPWs) by the interaction of lasers with a metal surface can generate terahertz (THz) radiation at metal-free space interface. We present a novel model for THz radiation generation using two lasers, beating at a metal surface in the presence of a magnetic field. This interaction resonantly excites a SPW, leading to the generation of THz plasmon. Two co-planar lasers having frequency difference of effective electron plasma frequency exert a ponderomotive force to the skin layer of the metal, which induces an oscillatory velocity to the surface electrons and drives the surface plasma waves. The transverse component of the SPW leads to the generation of electromagnetic radiation at THz frequency. Furthermore, the applied external magnetic enhances the transverse current associated with the SPWs. As a result, the THz field strength increased significantly. An expression of THz radiation field is obtained and the field scaling with the magnetic field has been estimated. Our results reported a better THz conversion efficiency for an optimized magnetic field strength. The result of this work delivers a plausible approach to generate THz radiation field from a laser interaction with a metallic surface.

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来源期刊
Plasmonics
Plasmonics 工程技术-材料科学:综合
CiteScore
5.90
自引率
6.70%
发文量
164
审稿时长
2.1 months
期刊介绍: Plasmonics is an international forum for the publication of peer-reviewed leading-edge original articles that both advance and report our knowledge base and practice of the interactions of free-metal electrons, Plasmons. Topics covered include notable advances in the theory, Physics, and applications of surface plasmons in metals, to the rapidly emerging areas of nanotechnology, biophotonics, sensing, biochemistry and medicine. Topics, including the theory, synthesis and optical properties of noble metal nanostructures, patterned surfaces or materials, continuous or grated surfaces, devices, or wires for their multifarious applications are particularly welcome. Typical applications might include but are not limited to, surface enhanced spectroscopic properties, such as Raman scattering or fluorescence, as well developments in techniques such as surface plasmon resonance and near-field scanning optical microscopy.
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