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通过用金纳米颗粒修饰的多层还原氧化石墨烯进行激光诱导电信号滤波

Laser-induced electrical signal filtering by multilayer reduced graphene oxide decorated with Au nanoparticles.

作者信息

Jiménez-Marín E, Moreno-Valenzuela J, Trejo-Valdez M, Martinez-Rivas A, Vargas-García J R, Torres-Torres C

出版信息

Opt Express. 2019 Mar 4;27(5):7330-7343. doi: 10.1364/OE.27.007330.

Abstract

Nanoscale plasmonic particles represent a crucial transformation on optical and electronic properties exhibited by advanced materials. Herein are reported remarkable interferometric optical effects with dependence on polarization for filtering or modulating electronic signals in multilayer nanostructures. Metallic nanoparticles were incorporated in randomly distributed networks of reduced graphene oxide by an in-situ vapor-phase deposition method. The polarization-selectable nonlinear optical absorption contribution on the photoconductivity of reduced graphene oxide decorated with gold nanoparticles was analyzed. Nanosecond pulses at 532 nm wavelength were employed in a two-wave mixing experiment to study photoconduction and nonlinear optical absorption in this nanohybrid material. The ablation threshold of the sample was measured in 0.4 J/cm. Electrochemical impedance spectroscopy measurements revealed a capacitive response that can be enhanced by gold decoration in carbon nanostructures. A strong two-photon absorption process characterized by 5 × 10 m/W was identified as a physical mechanism responsible for the nonlinear photoconductive behavior of the nanostructures. Experimental shift of 1 MHz for the cutoff frequency associated with an electrical filter function performed by the sample in film form was demonstrated. Moreover, amplitude modulation of electronic signals controlled by the polarization of a two-wave mixing experiment was proposed. All-optical and optoelectronic nanosystems controlled by multi-photonic interactions in carbon-based materials were discussed. The key role of the vectorial nature of light in two-wave mixing experiments is a fascinating tool for the exploration of low-dimensional systems.

摘要

纳米级等离子体粒子代表了先进材料所展现的光学和电子特性的关键转变。本文报道了多层纳米结构中依赖于偏振的显著干涉光学效应,用于滤波或调制电子信号。通过原位气相沉积法将金属纳米颗粒掺入还原氧化石墨烯的随机分布网络中。分析了金纳米颗粒修饰的还原氧化石墨烯的光电导率上的偏振选择性非线性光学吸收贡献。在双波混频实验中使用532nm波长的纳秒脉冲来研究这种纳米杂化材料中的光电导和非线性光学吸收。在0.4J/cm下测量了样品的烧蚀阈值。电化学阻抗谱测量揭示了一种电容响应,碳纳米结构中的金修饰可增强这种响应。以5×10m/W为特征的强双光子吸收过程被确定为负责纳米结构非线性光电导行为的物理机制。证明了由薄膜形式的样品执行的与电滤波器功能相关的截止频率有1MHz的实验性偏移。此外,还提出了由双波混频实验的偏振控制的电子信号的幅度调制。讨论了基于碳材料中多光子相互作用控制的全光和光电子纳米系统。光的矢量性质在双波混频实验中的关键作用是探索低维系统的一个引人入胜的工具。

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