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可调谐纳米间隙下的沟槽形成:其深度取决于最大应变和周期性。

Trench Formation under the Tunable Nanogap: Its Depth Depends on Maximum Strain and Periodicity.

作者信息

Park Daehwan, Lee Dukhyung, Moghaddam Mahsa Haddadi, Kim Dai-Sik

机构信息

Department of Physics, Ulsan National Institute of Science and Technology (UNIST), Ulsan 44919, Republic of Korea.

出版信息

Micromachines (Basel). 2023 Oct 27;14(11):1991. doi: 10.3390/mi14111991.

Abstract

Metallic nanogaps have been studied for many years in the context of a significant amount of field enhancements. Nanogaps of macroscopic lengths for long-wave applications have attracted much interest, and recently one dimensional tunable nanogaps have been demonstrated using flexible PET substrates. For nanogaps on flexible substrates with applied tensile strain, large stress is expected in the vicinity of the gap, and it has been confirmed that several hundred nanometer-deep trenches form beneath the position of the nanogap because of this stress singularity. Here, we studied trench formation under nanogap structures using COMSOL Multiphysics 6.1. We constructed a 2D nanogap unit cell, consisting of gold film with a crack on a PDMS substrate containing a trench beneath the crack. Then, we calculated the von Mises stress at the bottom of the trench for various depths and spatial periods. Based on it, we derived the dependence of the trench depth on the strain and periodicity for various yield strengths. It was revealed that as the maximum tensile strain increases, the trench deepens and then diverges. Moreover, longer periods lead to larger depths for the given maximum strain and larger gap widths. These results could be applied to roughly estimate achievable gap widths and trench depths for stretchable zerogap devices.

摘要

在大量场增强的背景下,金属纳米间隙已经被研究了很多年。用于长波应用的宏观长度的纳米间隙引起了广泛关注,最近已经证明了使用柔性PET基板可以实现一维可调纳米间隙。对于施加拉伸应变的柔性基板上的纳米间隙,预计在间隙附近会产生较大的应力,并且已经证实,由于这种应力奇异性,在纳米间隙位置下方会形成数百纳米深的沟槽。在这里,我们使用COMSOL Multiphysics 6.1研究了纳米间隙结构下的沟槽形成。我们构建了一个二维纳米间隙单元,由在PDMS基板上带有裂纹的金膜组成,裂纹下方的基板中包含一个沟槽。然后,我们计算了不同深度和空间周期下沟槽底部的冯·米塞斯应力。在此基础上,我们推导了不同屈服强度下沟槽深度对应变和周期性的依赖性。结果表明,随着最大拉伸应变的增加,沟槽加深然后发散。此外,对于给定的最大应变和更大的间隙宽度,更长的周期会导致更大的深度。这些结果可用于粗略估计可拉伸零间隙器件可实现的间隙宽度和沟槽深度。

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