Dynamic behaviors of delaminated nanofilms partly bonded on substrates with sub-nanoscale van der Waals dynamic boundaries

Zhi-Qi Dong, Kai-Ming Hu, Hui-Yue Lin, Xin-Lu Deng, Yi-Hang Xin, Guang Meng, Wen-Ming Zhang
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Abstract

Dynamic buckling-induced delamination of nanofilms on substrates is a universal and essential phenomenon in nanoelectromechanical systems (NEMS). Van der Waals (vdWs) interactions play an important role in the dynamic buckling-induced delamination of nanofilms on substrates due to the interaction distances at nanoscale or even sub-nanoscale in NEMS. Therefore, it is interesting yet challenging to reveal the effect of intermolecular vdWs interactions on dynamic buckling-induced delamination of nanofilms on substrates. By considering sub-nanoscale dynamic boundary effects induced by intermolecular vdWs interactions, a parametric excitation nonlinear vibration model for dynamic buckling-induced delamination of nanofilms partly bonded on substrates is established. Effects of sub-nanoscale vdWs dynamic boundaries on transient and steady-state responses of dynamically delaminated nanofilms on substrates are analyzed. The sub-nanoscale vdWs dynamic boundaries lead the dynamic responses of delaminated-nanofilm/substrate systems very sensitive to initial conditions. The bending and shifting frequency response results demonstrated that the system nonlinearities can be greatly amplified by the sub-nanoscale vdWs dynamic boundary effect. Moreover, the spontaneous symmetry breaking and violent interfacial tearing/healing phenomena can be also triggered in the systems. Based on spontaneous symmetry breaking, a trans-scale relationship between nanofilm equilibrium positions and intermolecular vdWs interactions is established, which can provide a promising route for trans-scale measurements of molecular scale interfacial interactions. The work can also be helpful for the dynamic design of resonant NEMS devices based on nanofilm/substrate systems.
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在具有亚纳米级范德华动态边界的基底上部分粘合的脱层纳米薄膜的动态行为
纳米薄膜在基底上的动态降压诱导分层是纳米机电系统(NEMS)中的一个普遍而重要的现象。范德华(vdWs)相互作用在纳米薄膜在基底上的动态降压诱导分层中起着重要作用,因为在 NEMS 中,相互作用距离达到纳米级甚至亚纳米级。因此,揭示分子间 vdWs 相互作用对纳米薄膜在基底上的动态降压诱导分层的影响既有趣又具有挑战性。通过考虑分子间 vdWs 相互作用引起的亚纳米尺度动态边界效应,建立了部分粘合在基底上的纳米薄膜动态降压诱导分层的参数激励非线性振动模型。分析了亚纳米尺度 vdWs 动态边界对基底上动态分层纳米薄膜的瞬态和稳态响应的影响。亚纳米级 vdWs 动态边界导致分层纳米薄膜/基底系统的动态响应对初始条件非常敏感。弯曲和移频响应结果表明,亚纳米级 vdWs 动态边界效应会极大地放大系统的非线性。此外,自发对称性破缺和剧烈的界面撕裂/愈合现象也会在系统中触发。在自发对称破缺的基础上,建立了纳米薄膜平衡位置与分子间 vdWs 相互作用之间的跨尺度关系,为分子尺度界面相互作用的跨尺度测量提供了一条可行的途径。这项研究还有助于基于纳米薄膜/基底系统的共振 NEMS 器件的动态设计。
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