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二维过渡金属二硫属化物合金的机械调制

Mechanical modulation of 2D transition metal dichalcogenide alloys.

作者信息

Alboteanu Guy, Mordehai Dan, Ya'akobovitz Assaf

机构信息

Department of Mechanical Engineering, Faculty of Engineering Sciences, Ben-Gurion University of the Negev, Beer-Sheva, Israel.

Faculty of Mechanical Engineering, Technion - Israel Institute of Technology, Haifa, Israel.

出版信息

Nanoscale. 2025 Mar 13;17(11):6512-6521. doi: 10.1039/d4nr04160g.

Abstract

Controlling the mechanical properties of two-dimensional transition metal dichalcogenides (TMDs) is essential for their integration into advanced flexible electronic and optoelectronic devices. Alloying these materials allows modulation of their optical characteristics and energy structure, greatly improving their design flexibility and functionality. However, the impact of alloying on their mechanical behavior has remained uncovered. We developed a novel means for alloying suspended TMD devices. Specifically, we synthesized MoWS nano-drumheads using a diffusion-based alloying process, in which we first mechanically exfoliated WS nano-drumheads followed by the diffusion of Mo atoms into them, thereby yielding a wide range of possible atomic compositions (0 ≤ ≤ 1). Then, we studied their mechanical properties atomic force microscopy force-spectroscopy and Raman analyses, from which we correlated the mechanical resistance of the alloys with their atomic composition and showed that a high concentration of W atoms is associated with a high Young's modulus. Atomistic simulations demonstrate how the estimated Young's modulus follows the same trend. Therefore, this work presents a process for alloying nano-drumheads and sheds light on the fundamental mechanics of MoWS. By doing so we demonstrate their tunability in terms of atomic composition and open the path for their integration into advanced applications, such as tunable sensors and flexible electronics.

摘要

控制二维过渡金属二硫属化物(TMDs)的机械性能对于将其集成到先进的柔性电子和光电器件中至关重要。对这些材料进行合金化可以调节其光学特性和能量结构,极大地提高其设计灵活性和功能。然而,合金化对其机械行为的影响尚未被揭示。我们开发了一种用于对悬浮TMD器件进行合金化的新方法。具体而言,我们使用基于扩散的合金化工艺合成了MoWS纳米鼓头,其中我们首先通过机械剥离得到WS纳米鼓头,然后使Mo原子扩散到其中,从而产生了广泛的可能原子组成(0≤≤1)。然后,我们通过原子力显微镜力谱和拉曼分析研究了它们的机械性能,从中我们将合金的机械抗性与其原子组成相关联,并表明高浓度的W原子与高杨氏模量相关。原子模拟证明了估计的杨氏模量如何遵循相同的趋势。因此,这项工作提出了一种纳米鼓头合金化的工艺,并揭示了MoWS的基本力学原理。通过这样做,我们展示了它们在原子组成方面的可调性,并为将其集成到先进应用(如可调传感器和柔性电子器件)中开辟了道路。

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