Li Qiang, Ji Myung Gi, Kim Jaeyoun
Department of Electrical and Computer Engineering, Iowa State University, Ames, Iowa 50011, United States.
Microelectronics Research Center, Iowa State University, Ames, Iowa 50011, United States.
ACS Nano. 2020 May 26;14(5):6058-6066. doi: 10.1021/acsnano.0c01791. Epub 2020 Apr 26.
Nanotextures play increasingly important roles in nanotechnology. Recent studies revealed that their functionalities can be further enhanced by spatially modulating the height of their nanoscale pixels. Realizing the concept, however, is very challenging as it requires "grayscale" printing of the nanopixels in which their height is controlled within a few nanometers as a micrometric function of position. This work demonstrates such a high vertical and lateral resolution grayscale printing of polymeric nanopixels. We realize the height modulation by exploiting the discovery that the capillary rise of certain photopolymers can be optically controlled to stop at a predetermined height with sub-10-nm accuracy. Microscale spatial patterning of the control light directly extends the height modulation into a two-dimensionally patterned, grayscale nanopixel printing. Its utility is verified through readily reconfigurable, maskless printing of grayscale nanopixel arrays in dielectric and metallo-dielectric forms. This work also reveals the highly nonlinear and unstable nature of the polymeric nanocapillary effect, expanding its understanding and application scope.
纳米纹理在纳米技术中发挥着越来越重要的作用。最近的研究表明,通过在空间上调制其纳米级像素的高度,可以进一步增强其功能。然而,实现这一概念极具挑战性,因为它需要对纳米像素进行“灰度”打印,其中纳米像素的高度要作为位置的微米级函数控制在几纳米以内。这项工作展示了聚合物纳米像素的这种高垂直和横向分辨率的灰度打印。我们通过利用这一发现来实现高度调制,即某些光聚合物的毛细上升可以通过光学控制,以亚10纳米的精度在预定高度停止。控制光的微尺度空间图案化直接将高度调制扩展为二维图案化的灰度纳米像素打印。通过以介电和金属 - 介电形式轻松地对灰度纳米像素阵列进行可重新配置的无掩模打印,验证了其效用。这项工作还揭示了聚合物纳米毛细效应的高度非线性和不稳定性质,扩展了对其的理解和应用范围。