论文标题
纳米力学谐振器:朝向原子量表
Nanomechanical Resonators: Toward Atomic Scale
论文作者
论文摘要
寻求实现和操纵越来越小的人造的可移动结构和动态机器的追求刺激了巨大的努力,导致了重要的发现,并激发了研究人员的发展。机械结构微型化的科学壮举和技术里程碑已被加工和雕塑的进步广泛实现,从而从散装材料(例如硅)中缩小了特征。 With the flourishing multidisciplinary field of low-dimensional nanomaterials, including one-dimensional (1D) nanowires/nanotubes, and two-dimensional (2D) atomic layers such as graphene/phosphorene, growing interests and sustained efforts have been devoted to creating mechanical devices toward the ultimate limit of miniaturization--genuinely down to the molecular or even atomic scale.这些超级可移动结构,尤其是纳米力学的谐振器,这些谐振器可利用这些1D和2D纳米到原子尺度结构中的振动运动,提供了出色的设备级属性,例如超大质量,超级频率调谐范围,宽阔的动态动力消耗,并具有强大的基础性能和Engresserion Eromenteries Engryering anderemist and Eromenteries。在这篇综述中,我们提供了这个充满活力的领域的全面概述和摘要,介绍了最先进的设备,并评估其规格和性能,概述重要成就,并假定研究这些微不足道但有趣的分子规模机器的未来方向。
The quest for realizing and manipulating ever smaller man-made movable structures and dynamical machines has spurred tremendous endeavors, led to important discoveries, and inspired researchers to venture to new grounds. Scientific feats and technological milestones of miniaturization of mechanical structures have been widely accomplished by advances in machining and sculpturing ever shrinking features out of bulk materials such as silicon. With the flourishing multidisciplinary field of low-dimensional nanomaterials, including one-dimensional (1D) nanowires/nanotubes, and two-dimensional (2D) atomic layers such as graphene/phosphorene, growing interests and sustained efforts have been devoted to creating mechanical devices toward the ultimate limit of miniaturization--genuinely down to the molecular or even atomic scale. These ultrasmall movable structures, particularly nanomechanical resonators that exploit the vibratory motion in these 1D and 2D nano-to-atomic-scale structures, offer exceptional device-level attributes, such as ultralow mass, ultrawide frequency tuning range, broad dynamic range, and ultralow power consumption, thus holding strong promises for both fundamental studies and engineering applications. In this Review, we offer a comprehensive overview and summary of this vibrant field, present the state-of-the-art devices and evaluate their specifications and performance, outline important achievements, and postulate future directions for studying these miniscule yet intriguing molecular-scale machines.