论文标题
成像栅极诱导的石墨烯场现场效应晶体管上的分子融化
Imaging gate-induced molecular melting on a graphene field-effect transistor
论文作者
论文摘要
固液相变是基本的物理过程,但是原子分辨的显微镜尚未捕获这种过渡的固体和液体动力学。我们已经开发了一种新技术,用于控制石墨烯场现场效应晶体管(FET)上2D分子层的融化和冷冻,该技术使我们能够通过原子分辨扫描隧道显微镜对相过渡动力学进行映像。施加在F4TCNQ被装饰的石墨烯FET上的后门电压可在电荷中性固相和带负电荷的液相之间诱导可逆的转变。通过用电流快速加热石墨烯表面并将所得进化向新的平衡状态成像,可以看到非平衡的分子熔化动力学。已经开发了一个分析模型,该模型解释了基于固体和液体分子能级的光谱测量的观察到的平衡混合状态相。观察到的非平衡熔化动力学与蒙特卡洛模拟一致。
Solid-liquid phase transitions are fundamental physical processes, but atomically-resolved microscopy has yet to capture both the solid and liquid dynamics for such a transition. We have developed a new technique for controlling the melting and freezing of 2D molecular layers on a graphene field-effect transistor (FET) that allows us to image phase transition dynamics via atomically-resolved scanning tunneling microscopy. Back-gate voltages applied to a F4TCNQ-decorated graphene FET induce reversible transitions between a charge-neutral solid phase and a negatively charged liquid phase. Nonequilibrium molecular melting dynamics are visualized by rapidly heating the graphene surface with electrical current and imaging the resulting evolution toward new equilibrium states. An analytical model has been developed that explains the observed equilibrium mixed-state phases based on spectroscopic measurement of both solid and liquid molecular energy levels. Observed non-equilibrium melting dynamics are consistent with Monte Carlo simulations.