Xu Bo, Zhu Jiankai, Xiao Fei, Liu Na, Liang Yachun, Jiao Chenyin, Li Jing, Deng Qingyang, Wu Song, Wen Ting, Pei Shenghai, Wan Hujie, Xiao Xu, Xia Juan, Wang Zenghui
Institute of Fundamental and Frontier Sciences, University of Electronic Science and Technology of China, Chengdu610054, China.
School of Electronic Science and Engineering, University of Electronic Science and Technology of China, Chengdu611731, China.
ACS Nano. 2022 Dec 27;16(12):20229-20237. doi: 10.1021/acsnano.2c05742. Epub 2022 Dec 12.
As an emerging class of two-dimensional (2D) layered nanomaterial, MXene exhibits a number of intriguing properties, such as good electrical conductivity and high elastic modulus, and has witnessed continued growth in related device research. However, nanoscale MXene devices which leverage both the intrinsic electrical and mechanical properties of these 2D crystals have not been experimentally studied. Here we demonstrate nanoelectromechanical resonators based on 2D MXene crystals, where TiCT drumheads with a wide range of thickness, from more than 50 layers all the way down to a monolayer, exhibit robust nanomechanical vibrations with fundamental-mode frequency up to >70 MHz in the very high frequency (VHF) band, a displacement noise density down to 52 fm/Hz, and a fundamental-mode frequency-quality factor product up to × ≈ 6.85 × 10 Hz. By combining experimental results with theoretical calculations, we independently derive the Young's modulus of 2D TiCT crystals to be 270-360 GPa, in excellent agreement with nanoindentation measurements, based on which we elucidate frequency scaling pathways toward microwave frequencies. We further demonstrate electrical tuning of resonance frequency in MXene resonators and frequency-shift-based MXene vacuum gauges with responsivity of 736%/Torr and detection range down to 10 Torr. Our study can lead to the design and creation of nanoscale vibratory devices that exploit the intrinsic electrical and mechanical properties in 2D MXene crystals.
作为一类新兴的二维(2D)层状纳米材料,MXene展现出许多引人关注的特性,如良好的导电性和高弹性模量,并且在相关器件研究方面持续发展。然而,利用这些二维晶体的固有电学和力学特性的纳米级MXene器件尚未得到实验研究。在此,我们展示了基于二维MXene晶体的纳米机电谐振器,其中具有从50多层一直到单层的广泛厚度范围的TiCT鼓面,在甚高频(VHF)频段展现出稳健的纳米机械振动,基模频率高达>70 MHz,位移噪声密度低至52 fm/Hz,基模频率-品质因数乘积高达×≈6.85×10 Hz。通过将实验结果与理论计算相结合,我们独立推导出二维TiCT晶体的杨氏模量为270 - 360 GPa,与纳米压痕测量结果高度吻合,基于此我们阐明了向微波频率的频率缩放途径。我们进一步展示了MXene谐振器中谐振频率的电调谐以及基于频率偏移的MXene真空计,其响应率为736%/Torr,检测范围低至10 Torr。我们的研究能够促成利用二维MXene晶体固有电学和力学特性的纳米级振动器件的设计与制造。