Suppr超能文献

通过旋节线固态去湿形成的超均匀单晶结构。

Hyperuniform Monocrystalline Structures by Spinodal Solid-State Dewetting.

作者信息

Salvalaglio Marco, Bouabdellaoui Mohammed, Bollani Monica, Benali Abdennacer, Favre Luc, Claude Jean-Benoit, Wenger Jerome, de Anna Pietro, Intonti Francesca, Voigt Axel, Abbarchi Marco

机构信息

Institute of Scientific Computing, TU Dresden, 01062 Dresden, Germany.

Dresden Center for Computational Materials Science (DCMS), TU Dresden, 01062 Dresden, Germany.

出版信息

Phys Rev Lett. 2020 Sep 18;125(12):126101. doi: 10.1103/PhysRevLett.125.126101.

Abstract

Materials featuring anomalous suppression of density fluctuations over large length scales are emerging systems known as disordered hyperuniform. The underlying hidden order renders them appealing for several applications, such as light management and topologically protected electronic states. These applications require scalable fabrication, which is hard to achieve with available top-down approaches. Theoretically, it is known that spinodal decomposition can lead to disordered hyperuniform architectures. Spontaneous formation of stable patterns could thus be a viable path for the bottom-up fabrication of these materials. Here, we show that monocrystalline semiconductor-based structures, in particular Si_{1-x}Ge_{x} layers deposited on silicon-on-insulator substrates, can undergo spinodal solid-state dewetting featuring correlated disorder with an effective hyperuniform character. Nano- to micrometric sized structures targeting specific morphologies and hyperuniform character can be obtained, proving the generality of the approach and paving the way for technological applications of disordered hyperuniform metamaterials. Phase-field simulations explain the underlying nonlinear dynamics and the physical origin of the emerging patterns.

摘要

在大长度尺度上具有反常密度涨落抑制特性的材料是一种新兴系统,称为无序超均匀材料。其潜在的隐藏序使其在诸如光管理和拓扑保护电子态等多种应用中具有吸引力。这些应用需要可扩展的制造工艺,而现有的自上而下方法很难实现这一点。从理论上讲,已知旋节线分解可以导致无序超均匀结构。因此,稳定图案的自发形成可能是这些材料自下而上制造的可行途径。在这里,我们表明基于单晶半导体的结构,特别是沉积在绝缘体上硅衬底上的Si₁₋ₓGeₓ层,可以经历具有相关无序和有效超均匀特性的旋节线固态去湿过程。可以获得针对特定形态和超均匀特性的纳米到微米尺寸的结构,证明了该方法的通用性,并为无序超均匀超材料的技术应用铺平了道路。相场模拟解释了潜在的非线性动力学以及新兴图案的物理起源。

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