首页> 外文期刊>The journal of physical chemistry, C. Nanomaterials and interfaces >Ultrafast Resonant Dynamics of Surface Plasmons in Gold Nanorods
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Ultrafast Resonant Dynamics of Surface Plasmons in Gold Nanorods

机译:金纳米棒中表面等离激元的超快共振动力学。

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Electron dynamics in Au nanorods are studied with femtosecond nonlinear spectroscopic techniques, by directly exciting and probing the longitudinal surface plasmon resonance. The dispersive and absorptive parts of the third-order signal are measured using optical heterodyne detected four-wave-mixing spectroscopy. These signals are used to describe dynamics in Au nanorods in terms of frequency shift and broadening of the plasmon resonance. Pump-probe experiments are performed with a series of pump intensities. The results are treated in two ways: (1) by calculating the temperature changes of electrons and phonons in the nanorods and the effects of these temperatures on the dielectric constant of Au; and (2) by a nonlinear least-squares fitting using a phenomenological response function. The first model agrees with the pump-probe experimental results for pump energies up to 2.0 nJ (2.5 GW/cm2) and for delays in the range of 150 fs to 150 ps, but does not reproduce three additional features present in the data and the phenomenological model: (1) an "instantaneous" response, attributed to coherent plasmon oscillation; (2) a decaying component with an intensity-independent time constant of 170 fs, attributed to a nonthermal electron distribution or to two-photon-excited interband transitions; and (3) oscillations with a period of 71 ps, attributed to coherent vibration of the rods. Higher pump intensities yield substantial deviation at short delays from the lower-intensity response. Additional plasmon damping and higher-order nonlinear mechanisms are suggested to account for these deviations.
机译:飞秒非线性光谱技术通过直接激发和探测纵向表面等离子体共振,研究了金纳米棒中的电子动力学。使用光学外差检测四波混合光谱法测量三阶信号的色散和吸收部分。这些信号用于描述金纳米棒中的频移和等离振子共振变宽的动力学。在一系列泵浦强度下执行泵浦探针实验。用两种方法处理结果:(1)通过计算纳米棒中电子和声子的温度变化以及这些温度对Au介电常数的影响; (2)使用现象学响应函数通过非线性最小二乘拟合。第一个模型与高达2.0 nJ(2.5 GW / cm2)的泵浦能量以及150 fs至150 ps的延迟范围内的泵浦探针实验结果相符,但没有重现数据和现象模型:(1)“瞬时”响应,归因于相干等离子体激元振荡; (2)衰减分量,其强度独立的时间常数为170 fs,归因于非热电子分布或双光子激发的带间跃迁; (3)振动周期为71 ps,归因于杆的相干振动。较高的泵浦强度会在较短的延迟时间内与较低的强度响应产生较大的偏差。建议使用附加的等离激元阻尼和高阶非线性机制来解决这些偏差。

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