纳米技术
小型化
纳米机电系统
石墨烯
繁荣的
磷烯
比例(比率)
计算机科学
利用
工程物理
材料科学
工程类
物理
纳米颗粒
心理学
心理治疗师
计算机安全
纳米医学
量子力学
作者
Bo Xu,Pengcheng Zhang,Jiankai Zhu,Zuheng Liu,Alexander Eichler,Xu-Qian Zheng,Jaesung Lee,Aneesh Dash,Swapnil More,Song Wu,Yanan Wang,Hao Jia,Akshay Naik,Adrian Bachtold,Rui Yang,Philip X.‐L. Feng,Zenghui Wang
出处
期刊:ACS Nano
[American Chemical Society]
日期:2022-09-02
卷期号:16 (10): 15545-15585
被引量:61
标识
DOI:10.1021/acsnano.2c01673
摘要
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 previously unexplored 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 effort 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.
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