Dipartimento di Fisica, Istituto di Fotonica e Nanotecnologie CNR, Politecnico di Milano, Piazza Leonardo da Vinci 32, 20133 Milano, Italy.
Nano Lett. 2011 Nov 9;11(11):4711-7. doi: 10.1021/nl202390s. Epub 2011 Sep 30.
The optical response of metallic nanostructures after intense excitation with femtosecond-laser pulses has recently attracted increasing attention: such response is dominated by ultrafast electron-phonon coupling and offers the possibility to achieve optical modulation with unprecedented terahertz bandwidth. In addition to noble metal nanoparticles, efforts have been made in recent years to synthesize heavily doped semiconductor nanocrystals so as to achieve a plasmonic behavior with spectrally tunable features. In this work, we studied the dynamics of the localized plasmon resonance exhibited by colloidal Cu(2-x)Se nanocrystals of 13 nm in diameter and with x around 0.15, upon excitation by ultrafast laser pulses via pump-probe experiments in the near-infrared, with ∼200 fs resolution time. The experimental results were interpreted according to the two-temperature model and revealed the existence of strong nonlinearities in the plasmonic absorption due to the much lower carrier density of Cu(2-x)Se compared to noble metals, which led to ultrafast control of the probe signal with modulation depth exceeding 40% in transmission.
这种响应主要由超快电子-声子耦合主导,并提供了实现具有前所未有的太赫兹带宽的光学调制的可能性。除了贵金属纳米粒子,近年来还努力合成了重掺杂半导体纳米晶体,以实现具有可调谐光谱特征的等离子体行为。在这项工作中,我们通过在近红外的泵浦-探测实验研究了直径为 13nm 且 x 约为 0.15 的胶体 Cu(2-x)Se 纳米晶体在超快激光脉冲激发下表现出的局域等离子体共振的动力学,分辨率时间为 200fs。实验结果根据双温模型进行了解释,结果表明由于 Cu(2-x)Se 的载流子密度远低于贵金属,因此在等离子体吸收中存在强烈的非线性,这导致探针信号的超快控制,在透射中调制深度超过 40%。