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机械稳定的超薄层状石墨烯纳米复合材料减轻残余界面应力:对纳米机电系统的启示

Mechanically Stable Ultrathin Layered Graphene Nanocomposites Alleviate Residual Interfacial Stresses: Implications for Nanoelectromechanical Systems.

作者信息

Vassaux Maxime, Müller Werner A, Suter James L, Vijayaraghavan Aravind, Coveney Peter V

机构信息

Université de Rennes, CNRS, IPR (Institut de Physique de Rennes), UMR 6251, Rennes 35000, France.

Centre for Computational Science, Department of Chemistry, University College London, London WC1H 0AJ, United Kingdom.

出版信息

ACS Appl Nano Mater. 2022 Dec 23;5(12):17969-17976. doi: 10.1021/acsanm.2c03955. Epub 2022 Dec 14.

DOI:10.1021/acsanm.2c03955
PMID:36583124
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9791614/
Abstract

Advanced nanoelectromechanical systems made from polymer dielectrics deposited onto 2D-nanomaterials such as graphene are increasingly popular as pressure and touch sensors, resonant sensors, and capacitive micromachined ultrasound transducers (CMUTs). However, durability and accuracy of layered nanocomposites depend on the mechanical stability of the interface between polymer and graphene layers. Here we used molecular dynamics computer simulations to investigate the interface between a sheet of graphene and a layer of parylene-C thermoplastic polymer during large numbers of high-frequency (MHz) cycles of bending relevant to the operating regime. We find that important interfacial sliding occurs almost immediately in usage conditions, resulting in more than 2% expansion of the membrane, a detrimental mechanism which requires repeated calibration to maintain CMUTs accuracy. This irreversible mechanism is caused by relaxation of residual internal stresses in the nanocomposite bilayer, leading to the emergence of self-equilibrated tension in the polymer and compression in the graphene. It arises as a result of deposition-polymerization processing conditions. Our findings demonstrate the need for particular care to be exercised in overcoming initial expansion. The selection of appropriate materials chemistry including low electrostatic interactions will also be key to their successful application as durable and reliable devices.

摘要

由沉积在二维纳米材料(如石墨烯)上的聚合物电介质制成的先进纳米机电系统,作为压力和触摸传感器、谐振传感器以及电容式微机电超声换能器(CMUT)越来越受欢迎。然而,层状纳米复合材料的耐久性和准确性取决于聚合物与石墨烯层之间界面的机械稳定性。在这里,我们使用分子动力学计算机模拟来研究在与工作状态相关的大量高频(MHz)弯曲循环过程中,一片石墨烯与一层聚对二甲苯-C热塑性聚合物之间的界面。我们发现,在使用条件下几乎立即会发生重要的界面滑动,导致膜膨胀超过2%,这是一种有害机制,需要反复校准以维持CMUT的准确性。这种不可逆机制是由纳米复合双层中残余内应力的松弛引起的,导致聚合物中出现自平衡张力,石墨烯中出现压缩。它是由沉积-聚合加工条件导致的。我们的研究结果表明,在克服初始膨胀方面需要格外小心。选择包括低静电相互作用在内的合适材料化学性质,对于它们作为耐用可靠器件的成功应用也至关重要。

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