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各向异性过渡金属三卤化物纳米片的角分辨振动特性。

Angle resolved vibrational properties of anisotropic transition metal trichalcogenide nanosheets.

机构信息

School for Engineering of Matter, Transport and Energy, Arizona State University, Tempe, Arizona 85287, USA.

Department of Physics, Izmir Institute of Technology, 35430 Izmir, Turkey.

出版信息

Nanoscale. 2017 Mar 23;9(12):4175-4182. doi: 10.1039/c7nr00711f.

Abstract

Layered transition metal trichalcogenides (TMTCs) are a new class of anisotropic two-dimensional materials that exhibit quasi-1D behavior. This property stems from their unique highly anisotropic crystal structure where vastly different material properties can be attained from different crystal directions. Here, we employ density functional theory predictions, atomic force microscopy, and angle-resolved Raman spectroscopy to investigate their fundamental vibrational properties which differ significantly from other 2D systems and to establish a method in identifying anisotropy direction of different types of TMTCs. We find that the intensity of certain Raman peaks of TiS, ZrS, and HfS have strong polarization dependence in such a way that intensity is at its maximum when the polarization direction is parallel to the anisotropic b-axis. This allows us to readily identify the Raman peaks that are representative of the vibrations along the b-axis direction. Interestingly, similar angle resolved studies on the novel TiNbS TMTC alloy reveal that determination of anisotropy/crystalline direction is rather difficult possibly due to loss of anisotropy by randomization distribution of quasi-1D MX chains by the presence of defects which are commonly found in 2D alloys and also due to the complex Raman tensor of TMTC alloys. Overall, the experimental and theoretical results establish non-destructive methods used to identify the direction of anisotropy in TMTCs and reveal their vibrational characteristics which are necessary to gain insight into potential applications that utilize direction dependent thermal response, optical polarization, and linear dichroism.

摘要

层状过渡金属三卤化物(TMTCs)是一类新型各向异性二维材料,具有准一维行为。这种性质源于其独特的高度各向异性晶体结构,不同的晶体方向可以获得截然不同的材料性能。在这里,我们采用密度泛函理论预测、原子力显微镜和角度分辨拉曼光谱来研究它们的基本振动特性,这些特性与其他二维系统有很大的不同,并建立了一种识别不同类型 TMTCs 各向异性方向的方法。我们发现 TiS、ZrS 和 HfS 的某些拉曼峰的强度具有很强的偏振依赖性,即当偏振方向与各向异性 b 轴平行时,强度达到最大值。这使我们能够很容易地识别代表 b 轴方向振动的拉曼峰。有趣的是,对新型 TiNbS TMTC 合金进行类似的角度分辨研究表明,各向异性/晶体方向的确定相当困难,这可能是由于缺陷的存在导致准一维 MX 链的各向异性随机分布,从而导致各向异性的丧失,这些缺陷在二维合金中很常见,也可能是由于 TMTC 合金的复杂拉曼张量。总的来说,实验和理论结果建立了非破坏性方法,用于识别 TMTCs 各向异性的方向,并揭示它们的振动特性,这对于深入了解利用方向依赖性热响应、光学偏振和线性二色性的潜在应用是必要的。

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