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寡聚金结构内非线性等离子体相互作用中百分之几效率的偏振敏感转换

Few Percent Efficient Polarization-Sensitive Conversion in Nonlinear Plasmonic Interactions Inside Oligomeric Gold Structures.

作者信息

Busleev Nikolay, Kudryashov Sergey, Saraeva Irina, Danilov Pavel, Rudenko Andrey, Zayarny Dmitry, Maier Stefan A, Minh Pham Hong, Ionin Andrey

机构信息

Quantum Electronics Division, Lebedev Physical Institute, Leninskiy Prospect 53, 119991 Moscow, Russia.

Chair in Hybrid Nanosystems, Faculty of Physics and Center for Nanoscience, Ludwig-Maximilians University of Munich, 80539 Munich, Germany.

出版信息

Sensors (Basel). 2020 Dec 24;21(1):59. doi: 10.3390/s21010059.

Abstract

The backscattering spectra of a 500 nm thick gold film, which was excited near the 525 nm transverse localized plasmon resonance of its constituent, self-organized, vertically-aligned nanorods by normally incident 515 nm, 300 fs laser pulses with linear, radial, azimuthal and circular polarizations, revealed a few-percent conversion into Stokes and anti-Stokes side-band peaks. The investigation of these spectral features based on the nanoscale characterization of the oligomeric structure and numerical simulations of its backscattering response indicated nonlinear Fano-like plasmonic interactions, particularly the partially degenerate four-wave mixing comprised by the visible-range transverse plasmon resonance of the individual nanorods and an IR-range collective mode of the oligomeric structure. Such oligomeric structures in plasmonic films may greatly enhance inner nonlinear electromagnetic interactions and inner near-IR hotspots, paving the way for their engineered IR tunability for broad applications in chemosensing and biosensing.

摘要

通过垂直入射的515 nm、300 fs激光脉冲(线性、径向、方位角和圆偏振)激发500 nm厚的金膜,该金膜由其组成的自组织垂直排列纳米棒在525 nm横向局域等离子体共振附近被激发,其背散射光谱显示有百分之几的转换为斯托克斯和反斯托克斯边带峰。基于寡聚体结构的纳米级表征及其背散射响应的数值模拟对这些光谱特征的研究表明存在非线性类法诺等离子体相互作用,特别是由单个纳米棒的可见范围横向等离子体共振和寡聚体结构的红外范围集体模式组成的部分简并四波混频。等离子体薄膜中的此类寡聚体结构可极大地增强内部非线性电磁相互作用和内部近红外热点,为其在化学传感和生物传感中的广泛应用实现工程化红外可调性铺平道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/2eb6/7795775/0b89a714ab48/sensors-21-00059-g001.jpg

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