Department of Materials Science & Engineering, Beckman Institute, and Frederick Seitz Materials Research Laboratory, University of Illinois at Urbana-Champaign, Urbana, Illinois 61801, USA.
Nano Lett. 2010 Feb 10;10(2):584-91. doi: 10.1021/nl903495f.
Nearly all research in micro- and nanofabrication focuses on the formation of solid structures of materials that perform some mechanical, electrical, optical, or related function. Fabricating patterns of charges, by contrast, is a much less well explored area that is of separate and growing interesting because the associated electric fields can be exploited to control the behavior of nanoscale electronic and mechanical devices, guide the assembly of nanomaterials, or modulate the properties of biological systems. This paper describes a versatile technique that uses fine, electrified liquid jets formed by electrohydrodynamics at micro- and nanoscale nozzles to print complex patterns of both positive and negative charges, with resolution that can extend into the submicrometer and nanometer regime. The reported results establish the basic aspects of this process and demonstrate the capabilities through printed patterns with diverse geometries and charge configurations in a variety of liquid inks, including suspensions of nanoparticles and nanowires. The use of printed charge to control the properties of silicon nanomembrane transistors provides an application example.
几乎所有的微纳制造研究都集中在形成具有某种机械、电气、光学或相关功能的材料的固体结构上。相比之下,电荷图案的制造是一个探索较少但越来越有趣的领域,因为相关的电场可以被用来控制纳米级电子和机械器件的行为、引导纳米材料的组装,或者调节生物系统的性质。本文描述了一种通用技术,该技术使用在微纳尺度喷嘴中通过电动力学形成的精细带电液体射流来打印正电荷和负电荷的复杂图案,其分辨率可以扩展到亚微米和纳米尺度。所报道的结果确立了该过程的基本方面,并通过各种液体油墨(包括纳米颗粒和纳米线的悬浮液)中的不同几何形状和电荷配置的打印图案展示了其能力。使用打印电荷来控制硅纳米膜晶体管的性质提供了一个应用实例。