Physics of Complex Fluids, University of Twente, Enschede 7500, The Netherlands.
Chem Soc Rev. 2017 Aug 29;46(17):5400-5424. doi: 10.1039/c7cs00369b.
With the advance of chemistry, materials science, and nanotechnology, significant progress has been achieved in the design and application of synthetic nanofluidic devices and materials, mimicking the gating, rectifying, and adaptive functions of biological ion channels. Fundamental physics and chemistry behind these novel transport phenomena on the nanoscale have been explored in depth on single-pore platforms. However, toward real-world applications, one major challenge is to extrapolate these single-pore devices into macroscopic materials. Recently, inspired partially by the layered microstructure of nacre, the material design and large-scale integration of artificial nanofluidic devices have stepped into a completely new stage, termed 2D nanofluidics. Unique advantages of the 2D layered materials have been found, such as facile and scalable fabrication, high flux, efficient chemical modification, tunable channel size, etc. These features enable wide applications in, for example, biomimetic ion transport manipulation, molecular sieving, water treatment, and nanofluidic energy conversion and storage. This review highlights the recent progress, current challenges, and future perspectives in this emerging research field of "2D nanofluidics", with emphasis on the thought of bio-inspiration.
随着化学、材料科学和纳米技术的进步,在设计和应用合成纳米流控器件和材料方面取得了重大进展,这些器件和材料模拟了生物离子通道的门控、整流和自适应功能。在单孔平台上,深入探讨了这些新型纳米尺度传输现象背后的基础物理和化学。然而,对于实际应用,一个主要挑战是将这些单孔器件外推到宏观材料中。最近,受珍珠母层状微观结构的部分启发,人工纳米流控器件的材料设计和大规模集成已经进入了一个全新的阶段,称为二维纳米流控。已经发现二维层状材料具有独特的优势,例如易于制造和可扩展、高通量、高效的化学修饰、可调通道尺寸等。这些特性使得其在仿生离子输运操控、分子筛分、水处理以及纳米流控能量转换和存储等方面得到了广泛应用。本文重点介绍了这一新兴研究领域“二维纳米流控”的最新进展、当前挑战和未来展望,强调了生物启发的思想。