论文标题
复合纳米结构附近的光场驱动电荷转移调制
Optical-Field Driven Charge-Transfer Modulations near Composite Nanostructures
论文作者
论文摘要
材料特性的光学激活说明了通过调谐光 - 物质相互作用与从基础科学到技术应用的影响所具有的电势。在这里,我们首次证明了提供非局部环境的复合纳米结构可以设计为固态的光学触发光诱导的电荷传递动态(CTD)调制。本文探索的纳米结构导致电荷分离和重组动力学之间的前所未有的不相同行为以及与光场振幅的线性CTD变化。使用瞬态吸收光谱,在有机半导体薄膜中获得了高达270%的电荷分离率。我们提供的证据表明,复合纳米结构允许创建表面光电压,这些动力学随复合体系结构而变化,最后超出了光学脉冲时间特性。此外,通过概括MARCUS理论框架,我们解释了为什么只有在通过非局部图像偶极子相互作用增强视觉场效应时才能揭幕CTD调制。证明复合纳米结构可以设计为使用光场作为CTD远程执行器为其在实用和原始应用中使用的路径,从光化学到光学电信。
Optical activation of material properties illustrates the potentials held by tuning light-matter interactions with impacts ranging from basic science to technological applications. Here, we demonstrate for the first time that composite nanostructures providing nonlocal environments can be engineered to optically trigger photoinduced charge transfer dynamic (CTD) modulations in the solid state. The nanostructures herein explored lead to unprecedented out-of-phase behaviour between charge separation and recombination dynamics, along with linear CTD variations with the optical-field amplitude. Using transient absorption spectroscopy, up to 270 % increase in charge separation rate is obtained in organic semiconductor thin films. We provide evidences that composite nanostructures allow for surface photovoltages to be created, which kinetics vary with the composite architecture and last beyond optical pulse temporal characteristics. Furthermore, by generalizing Marcus theory framework, we explain why CTD modulations can only be unveiled when optic field effects are enhanced by nonlocal image dipole interactions. Demonstrating that composite nanostructures can be designed to use optical fields as CTD remote actuators opens the path for their use in practical and original applications ranging from photochemistry to optoelectronics.