Wang Enze, Xiong Zixin, Chen Zekun, Xin Zeqin, Ma Huachun, Ren Hongtao, Wang Bolun, Guo Jing, Sun Yufei, Wang Xuewen, Li Chenyu, Li Xiaoyan, Liu Kai
State Key Laboratory of New Ceramics and Fine Processing, School of Materials Science and Engineering, Tsinghua University, Beijing, 100084, China.
Centre for Advanced Mechanics and Materials, Applied Mechanics Laboratory, Department of Engineering Mechanics, Tsinghua University, Beijing, 100084, China.
Nat Commun. 2023 Jul 19;14(1):4324. doi: 10.1038/s41467-023-40020-7.
Solitary waves are unique in nonlinear systems, but their formation and propagation in the nonlinear fluid-structure interactions have yet to be further explored. As a typical nonlinear system, the buckling of solid thin films is fundamentally related to the film-substrate interface that is further vulnerable to environments, especially when fluids exist. In this work, we report an anomalous, solitary-wave-like blister (SWLB) mode of MoS thin films in a humid environment. Unlike the most common telephone-cord and web buckling deformation, the SWLB propagates forward like solitary waves that usually appear in fluids and exhibits three-dimensional expansions of the profiles during propagation. In situ mechanical, optical, and topology measurements verify the existence of an interfacial water nanolayer, which facilitates a delamination of films at the front side of the SWLB and a readhesion at the tail side owing to the water nanolayer-induced fluid-structure interaction. Furthermore, the expansion morphologies and process of the SWLB are predicted by our theoretical model based on the energy change of buckle propagation. Our work not only demonstrates the emerging SWLB mode in a solid material but also sheds light on the significance of interfacial water nanolayers to structural deformation and functional applications of thin films.
孤立波在非线性系统中是独特的,但它们在非线性流固相互作用中的形成和传播仍有待进一步探索。作为一个典型的非线性系统,固体薄膜的屈曲与薄膜-衬底界面密切相关,而该界面更容易受到环境影响,尤其是在有流体存在的情况下。在这项工作中,我们报道了在潮湿环境中MoS薄膜出现的一种异常的、类似孤立波的泡状隆起(SWLB)模式。与最常见的电话线状和网状屈曲变形不同,SWLB像通常出现在流体中的孤立波一样向前传播,并且在传播过程中呈现出三维的轮廓扩展。原位力学、光学和拓扑测量证实了界面水纳米层的存在,由于水纳米层引起的流固相互作用,这有利于在SWLB前端的薄膜分层以及在后端的重新附着。此外,我们基于屈曲传播能量变化的理论模型预测了SWLB的扩展形态和过程。我们的工作不仅展示了固体材料中出现的SWLB模式,还揭示了界面水纳米层对薄膜结构变形和功能应用的重要性。