Measurement of two-photon absorption by gold nanoparticles of different sizes photodeposited onto the core of an optical fibre

IF 0.3 4区 物理与天体物理 Q4 PHYSICS, MULTIDISCIPLINARY Lithuanian Journal of Physics Pub Date : 2021-04-12 DOI:10.3952/PHYSICS.V61I1.4405
J. M. Cuvas-Limón, J. G. Ortega-Mendoza, J. Padilla-Martínez, P. Zaca-Morán
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引用次数: 2

Abstract

In this work, the study of two-photon absorption by gold nanoparticles of different diameters photodeposited onto the core of a single-mode optical fibre is presented. The photodeposition of nanoparticles with diameters of 10, 20, 50 and 100 nm was achieved using a continuous wave laser at a wavelength of 1550 nm and a power of 50 mW. Nonlinear optical characterization was carried out by using the P-scan technique of a high gain erbium doped fibre amplifier with pulses of 20 ns at a frequency of 10 kHz, that provides a maximum intensity of approximately 60 MW/cm2. The results show that for gold nanoparticles greater than 20 nm photodeposited onto the fibre, in both cases, the nonlinear coefficient as well as the third-order susceptibility increase as the diameter of the nanoparticles increases, describing a typical behaviour of the two-photon absorption. The obtained results can be used for the design of filters and optical limiters in the communications area.
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测量不同尺寸的金纳米粒子光沉积在光纤芯上的双光子吸收
本文研究了不同直径的金纳米粒子在单模光纤芯上的光沉积对双光子的吸收。利用波长为1550 nm、功率为50 mW的连续波激光器,实现了直径为10、20、50和100 nm的纳米颗粒的光沉积。利用p扫描技术对一个高增益掺铒光纤放大器进行了非线性光学表征,该放大器的脉冲为20 ns,频率为10 kHz,最大强度约为60 MW/cm2。结果表明,对于大于20 nm的金纳米粒子,在两种情况下,非线性系数和三阶磁化率都随着纳米粒子直径的增加而增加,描述了典型的双光子吸收行为。所得结果可用于通信领域滤波器和光限制器的设计。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Lithuanian Journal of Physics
Lithuanian Journal of Physics 物理-物理:综合
CiteScore
0.90
自引率
16.70%
发文量
21
审稿时长
>12 weeks
期刊介绍: The main aim of the Lithuanian Journal of Physics is to reflect the most recent advances in various fields of theoretical, experimental, and applied physics, including: mathematical and computational physics; subatomic physics; atoms and molecules; chemical physics; electrodynamics and wave processes; nonlinear and coherent optics; spectroscopy.
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