Bae Juyeol, Lee Jongwan, Zhou Qitao, Kim Taesung
Department of Mechanical Engineering, Ulsan National Institute of Science and Technology (UNIST), 50 UNIST-gil, Ulsan, 44919, Republic of Korea.
Adv Mater. 2019 May;31(20):e1804953. doi: 10.1002/adma.201804953. Epub 2019 Jan 2.
Various materials are fabricated to form specific structures/patterns at the micro-/nanoscale, which exhibit additional functions and performance. Recent liquid-mediated fabrication methods utilizing bottom-up approaches benefit from micro-/nanofluidic technologies that provide a high controllability for manipulating fluids containing various solutes, suspensions, and building blocks at the microscale and/or nanoscale. Here, the state-of-the-art micro-/nanofluidic approaches are discussed, which facilitate the liquid-mediated patterning of various hybrid-scale material structures, thereby showing many additional advantages in cost, labor, resolution, and throughput. Such systems are categorized here according to three representative forms defined by the degree of the free-fluid-fluid interface: free, semiconfined, and fully confined forms. The micro-/nanofluidic methods for each form are discussed, followed by recent examples of their applications. To close, the remaining issues and potential applications are summarized.
人们制造了各种材料,以在微纳尺度上形成特定的结构/图案,这些结构/图案具有额外的功能和性能。最近利用自下而上方法的液体介导制造方法受益于微纳流体技术,该技术为在微尺度和/或纳尺度上操纵含有各种溶质、悬浮液和构建块的流体提供了高度的可控性。在此,将讨论最先进的微纳流体方法,这些方法有助于各种混合尺度材料结构的液体介导图案化,从而在成本、劳动力、分辨率和产量方面展现出许多额外的优势。此类系统在此根据由自由流体-流体界面程度定义的三种代表性形式进行分类:自由形式、半受限形式和完全受限形式。将讨论每种形式的微纳流体方法,随后给出其近期应用示例。最后,总结了剩余问题和潜在应用。