论文标题
通过宽视野飞秒的材料性能对能量载体进化的干涉成像进行解密
Decrypting material performance by wide-field femtosecond interferometric imaging of energy carrier evolution
论文作者
论文摘要
能源载体演化对于材料性能至关重要。超快显微镜已被广泛应用于可视化能量载体的时空演化。但是,由于瞬态信号极为弱,纳米级少量能量载体的直接成像仍然很困难。在这里,我们提出了一种在时空中能量载体演化的超敏和高通量成像的方法。这种方法将飞秒泵探针技术与干涉散射显微镜(ISCAT)结合在一起,称为femto-iscat。干涉原理和独特的空间调节对比增强增加了瞬态图像对比度> 2个数量级,并能够探索新科学。我们解决了三个重要且具有挑战性的问题:在各种接口处不同的能载体的运输,异质的热电子分布以及单个等离子谐振器中的放松以及光电子半导体中载体和激子的独特结构依赖性边缘状态动力学。 FEMTO-ISCAT具有巨大的潜力,是对时空中能量载体进化超敏化成像的通用工具。
Energy carrier evolution is crucial for material performance. Ultrafast microscopy has been widely applied to visualize the spatiotemporal evolution of energy carriers. However, direct imaging of small amounts of energy carriers on nanoscale remains difficult due to extremely weak transient signals. Here we present a method for ultrasensitive and high-throughput imaging of energy carrier evolution in space and time. This method combines femtosecond pump-probe techniques with interferometric scattering microscopy (iSCAT), named Femto-iSCAT. The interferometric principle and unique spatially-modulated contrast enhancement increase the transient image contrast by >2 orders of magnitude and enable the exploration of new science. We address three important and challenging problems: transport of different energy carriers at various interfaces, heterogeneous hot electron distribution and relaxation in single plasmonic resonators, and distinct structure-dependent edge state dynamics of carriers and excitons in optoelectronic semiconductors. Femto-iSCAT holds great potential as a universal tool for ultrasensitive imaging of energy carrier evolution in space and time.