论文标题

单层WS2和WS2纳米复合材料中的应变工程

Strain Engineering in Monolayer WS2 and WS2 Nanocomposites

论文作者

Wang, Fang, Li, Suhao, Bissett, Mark A., Kinloch, Ian A., Li, Zheling, Young, Robert J.

论文摘要

在过去的十年中,基于它们有趣且不寻常的电子,光学和机械性能,例如可调和应变依赖性的带盖,在过去十年中的过渡金属二钙化(TMD)研究中已经大量增长。作为TMD的典型例子,二硫化钨(WS2)在应变工程设备和下一代多功能聚合物纳米复合材料等应用中具有巨大的潜力。但是,控制WS2中的应变和相关的微力学中的应变并未得到很好的研究。事实证明,光致发光光谱(PL)和拉曼光谱均具有有效性,但不能使用PL来表征多层TMD,而拉曼光谱很难揭示带状结构。在本研究中,已经合并了光致发光和拉曼光谱,以监测单层WS2在柔性聚合物底物和聚合物纳米复合材料上的应变分布和应力转移。已经证明,WS2仍然遵循微观上的连续力学,即使在单个WS2薄片中,应变也会通过简单的应变工程产生不均匀的带隙分布。结果表明,这些薄片可以在光电孔应用中有用,因为它们成为微米大小的PL发射器,具有带隙,可以通过将外部应变应用于底物来调节。使用拉曼光谱法对应变分布进行分析进一步扩展到薄膜几层WS2聚合物纳米复合材料,在这些材料中可以有效地将应力转移到WS2薄片上。研究了单一单层WS2薄片的机械行为与散装复合材料中的几层薄片的机械行为之间的关系。

There has been a massive growth in the study of transition metal dichalcogenides (TMDs) over the past decade, based upon their interesting and unusual electronic, optical and mechanical properties, such as tuneable and strain-dependent bandgaps. Tungsten disulfide (WS2), as a typical example of TMDs, has considerable potential in applications such as strain engineered devices and the next generation multifunctional polymer nanocomposites. However, controlling the strain, or more practically, monitoring the strain in WS2 and the associated micromechanics have not been so well studied. Both photoluminescence spectroscopy (PL) and Raman spectroscopy have been proved to be effective but PL cannot be employed to characterise multilayer TMDs while it is difficult for Raman spectroscopy to reveal the band structure. In this present study, photoluminescence and Raman spectroscopy have been combined to monitor the strain distribution and stress transfer of monolayer WS2 on a flexible polymer substrate and in polymer nanocomposites. It is demonstrated that WS2 still follows continuum mechanics on the microscale and that strain generates a non-uniform bandgap distribution even in a single WS2 flake through a simple strain engineering. It is shown that these flakes could be useful in optoelectonic applications as they become micron-sized PL emitters with a band gap that can be tuned by the application of external strain to the substrate. The analysis of strain distributions using Raman spectroscopy is further extended to thin-film few-layer WS2 polymer nanocomposites where it is demonstrated that the stress can be transferred effectively to WS2 flakes. The relationship between the mechanical behaviour of single monolayer WS2 flakes and that of few-layer flakes in bulk composites is investigated.

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