论文标题
对真实和虚拟电荷载体的光场控制
Light-field control of real and virtual charge carriers
论文作者
论文摘要
光驱动电子激发是能量和信息传输的基石。在强烈和超快光场与固体的相互作用中,电子可能仅在照明期间不可逆地或瞬时受到激发。由于在光脉冲消失后无法观察到瞬态电子种群,因此称为虚拟的,而仍然被激发的种群称为真实。虚拟电荷载体最近与高谐波产生和瞬时吸收有关,而光电流产生可能源于实际和虚拟电荷载体。然而,缺少其一代载体类型与对可观察到技术相关性的观察力的重要性之间的联系。在这里,我们表明,使用少量循环激光脉冲在金(金烯基金)异质结构中的光学电流中可以激发和虚拟载体。根据用于光激发的波形,真实载体会接收净动量并传播到金电极,而虚拟载体在金格芬烯界面上产生偏振响应。基于这些见解,我们进一步展示了未来Lightwave电子逻辑门的概念证明。我们的结果提供了一种直接的手段,可以监视和激发真实和虚拟的载荷。对每种类型的个人控制将大大增加集成的电路设计空间,并更接近现实Petahertz信号处理。
Light-driven electronic excitation is a cornerstone for energy and information transfer. In the interaction of intense and ultrafast light fields with solids, electrons may be excited irreversibly, or transiently during illumination only. As the transient electron population cannot be observed after the light pulse is gone it is referred to as virtual, while the population remaining excited is called real. Virtual charge carriers have recently been associated with high-harmonic generation and transient absorption, while photocurrent generation may stem from real as well as virtual charge carriers. Yet, a link between the carrier types in their generation and importance for observables up to technological relevance is missing. Here we show that real and virtual carriers can be excited and disentangled in the optical generation of currents in a gold-graphene-gold heterostructure using few-cycle laser pulses. Depending on the waveform used for photoexcitation, real carriers receive net momentum and propagate to the gold electrodes, while virtual carriers generate a polarization response read out at the gold-graphene interfaces. Based on these insights, we further demonstrate a proof of concept of a logic gate for future lightwave electronics. Our results offer a direct means to monitor and excite real and virtual charge carriers. Individual control over each type will dramatically increase the integrated circuit design space and bring closer to reality petahertz signal processing.