云纹
超晶格
粘弹性
质量(理念)
材料科学
谐振器
纳米力学
光电子学
纳米技术
物理
复合材料
原子力显微镜
光学
量子力学
作者
Q.G. Zeng,Guang Su,Aisheng Song,Xin-Yu Mei,Zhiyue Xu,Yue Ying,Zhuo‐Zhi Zhang,Xiang‐Xiang Song,Guangwei Deng,J. Moser,Tianbao Ma,Ping‐Heng Tan,Xin Zhang
标识
DOI:10.1038/s41467-025-58981-2
摘要
The moiré superlattice, created by stacking van der Waals layered materials with rotational misalignments, exhibits a multitude of emergent correlated phenomena ranging from superconductivity to Mott insulating states. In addition to exotic electronic states, the intricate networks of incommensurate lattices may give rise to polymer-like viscoelasticity, which combines the properties of both elastic solids and viscous fluids. This phenomenon may enrich the dynamics of nanomechanical resonators, in which viscoelasticity has not played a role thus far. Here, we report on a controllable hysteretic response of the nanomechanical vibrations in twisted bilayer graphene membranes, which we attribute to viscoelasticity. Accompanying this hysteretic response, we measure unusually large mechanical quality factors Q reaching a remarkably high value of ~1900 at room temperature. We interpret the enhancement of Q as a signature of dissipation dilution, a phenomenon of considerable interest that has recently been harnessed in quantum optomechanical systems. Viscoelasticity features a "lossless" potential that overcomes the corrugation registry and reinforces such a dissipation dilution. Our work introduces the moiré superlattice as a promising system for viscoelasticity engineering through rotating angles and for observing emergent nanoelectromechanical couplings.
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