Department of Chemical Engineering, Graduate School of Engineering, Osaka Prefecture University, 1-2, Gakuen-cho, Naka-ku, Sakai, Osaka, 599-8570, Japan.
Adv Mater. 2018 Jan;30(3). doi: 10.1002/adma.201702419. Epub 2017 Nov 2.
A significant growth of research in nanofluidics is achieved over the past decade, but the field is still facing considerable challenges toward the transition from the current physics-centered stage to the next application-oriented stage. Many of these challenges are associated with materials science, so the field of nanofluidics offers great opportunities for materials scientists to exploit. In addition, the use of unusual effects and ultrasmall confined spaces of well-defined nanofluidic environments would offer new mechanisms and technologies to manipulate nanoscale objects as well as to synthesize novel nanomaterials in the liquid phase. Therefore, nanofluidics will be a new arena for materials science. In the past few years, burgeoning progress has been made toward this trend, as overviewed in this article, including materials and methods for fabricating nanofluidic devices, nanofluidics with functionalized surfaces and functional material components, as well as nanofluidics for manipulating nanoscale materials and fabricating new nanomaterials. Many critical challenges as well as fantastic opportunities in this arena lie ahead. Some of those, which are of particular interest, are also discussed.
在过去的十年中,纳米流体学的研究取得了显著的增长,但该领域仍面临着从当前以物理为中心的阶段向下一应用为导向的阶段过渡的巨大挑战。其中许多挑战都与材料科学有关,因此纳米流体学领域为材料科学家提供了很好的机会。此外,利用不寻常的效应和定义明确的纳米流体环境的超小受限空间,将为操纵纳米尺度物体以及在液相中合成新型纳米材料提供新的机制和技术。因此,纳米流体学将成为材料科学的一个新领域。在过去的几年中,正如本文所综述的那样,这一趋势取得了蓬勃的进展,包括制造纳米流体学器件的材料和方法、功能化表面和功能材料组件的纳米流体学以及用于操纵纳米尺度材料和制造新型纳米材料的纳米流体学。该领域还存在许多重大挑战和极好的机会。本文还讨论了其中一些特别引人关注的挑战和机会。