Chapagain Ashish, Cho In Ho
Department of Civil, Construction, and Environmental Engineering, Iowa State University, Ames, IA 50011, USA.
Micromachines (Basel). 2023 Oct 26;14(11):1984. doi: 10.3390/mi14111984.
The scientific community has been looking for novel approaches to develop nanostructures inspired by nature. However, due to the complicated processes involved, controlling the height of these nanostructures is challenging. Nanoscale capillary force lithography (CFL) is one way to use a photopolymer and alter its properties by exposing it to ultraviolet radiation. Nonetheless, the working mechanism of CFL is not fully understood due to a lack of enough information and first principles. One of these obscure behaviors is the sudden jump phenomenon-the sudden change in the height of the photopolymer depending on the UV exposure time and height of nano-grating (based on experimental data). This paper uses known physical principles alongside artificial intelligence to uncover the unknown physical principles responsible for the sudden jump phenomenon. The results showed promising results in identifying air diffusivity, dynamic viscosity, surface tension, and electric potential as the previously unknown physical principles that collectively explain the sudden jump phenomenon.
科学界一直在寻找受自然启发开发纳米结构的新方法。然而,由于所涉及的过程复杂,控制这些纳米结构的高度具有挑战性。纳米级毛细管力光刻(CFL)是一种使用光聚合物并通过将其暴露于紫外线辐射来改变其性质的方法。尽管如此,由于缺乏足够的信息和第一原理,CFL的工作机制尚未完全理解。这些模糊行为之一是突然跳跃现象——根据紫外线照射时间和纳米光栅高度(基于实验数据),光聚合物高度的突然变化。本文运用已知物理原理并结合人工智能来揭示导致突然跳跃现象的未知物理原理。结果表明,在确定空气扩散率、动态粘度、表面张力和电势为共同解释突然跳跃现象的先前未知物理原理方面取得了有希望的成果。