纳米技术
制作
材料科学
背景(考古学)
微流控
润湿
大规模运输
聚合物
纳米结构
化学反应
输运现象
化学
工程物理
有机化学
物理
医学
古生物学
替代医学
病理
机械
复合材料
生物
作者
Yuchen Wu,Jiangang Feng,Hanfei Gao,Xinjian Feng,Lei Jiang
标识
DOI:10.1002/adma.201800718
摘要
Abstract Superwetting interfaces arising from the cooperation of surface energy and multiscale micro/nanostructures are extensively studied in biological systems. Fundamental understandings gained from biological interfaces boost the control of wettability under different dimensionalities, such as 2D surfaces, 1D fibers and channels, and 3D architectures, thus permitting manipulation of the transport physics of liquids, gases, and ions, which profoundly impacts chemical reactions and material fabrication. In this context, the progress of new chemistry based on superwetting interfaces is highlighted, beginning with mass transport dynamics, including liquid, gas, and ion transport. In the following sections, the impacts of the superwettability‐mediated transport dynamics on chemical reactions and material fabrication is discussed. Superwettability science has greatly enhanced the efficiency of chemical reactions, including photocatalytic, bioelectronic, electrochemical, and organic catalytic reactions, by realizing efficient mass transport. For material fabrication, superwetting interfaces are pivotal in the manipulation of the transport and microfluidic dynamics of liquids on solid surfaces, leading to the spatially regulated growth of low‐dimensional single‐crystalline arrays and high‐quality polymer films. Finally, a perspective on future directions is presented.
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