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Solution phase growth and analysis of super-thin zigzag tin selenide nanoribbons

机译:超薄锯齿形硒化锡纳米带的液相生长及分析

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Tin selenide (SnSe), a highly promising layered material, has been garnering particular interest in recent times due to its significant promise for future energy devices. Herein we report a simple solution-phase approach for growing highly crystalline layered SnSe nanoribbons. Polyvinylpyrrolidone (PVP) was used as a templating agent to selectively passivates the (100) and (001) facets of the SnSe nanoribbons resulting in the unique growth of nanoribbons along their b-axis with a defined zigzag edge state along the sidewalls. The SnSe nanoribbons are few layers thick (similar to 20 layers), with mean widths of similar to 40 nm, and achievable length of >1 mu m. Nanoribbons could be produced in relatively high quantities (>150 mg) in a single batch experiment. The PVP coating also offers some resistance to oxidation, with the removal of the PVP seen to lead to the formation of a SnSe/SnO (x) core-shell structure. The use of non-toxic PVP to replace toxic amines that are typically employed for other 1D forms of SnSe is a significant advantage for sustainable and environmentally friendly applications. Heat transport properties of the SnSe nanoribbons, derived from power-dependent Raman spectroscopy, demonstrate the potential of SnSe nanoribbons as thermoelectric material.
机译:硒化锡 (SnSe) 是一种非常有前途的层状材料,由于其对未来能源设备的巨大前景,近年来引起了人们的特别关注。在此,我们报告了一种用于生长高结晶层状SnSe纳米带的简单溶液相方法。聚乙烯吡咯烷酮 (PVP) 用作模板剂,选择性地钝化 SnSe 纳米带的 (100) 和 (001) 面,导致纳米带沿其 b 轴的独特生长,沿侧壁具有明确的锯齿形边缘状态。SnSe纳米带的厚度为几层(类似于20层),平均宽度为40 nm,可实现的长度为>1 μ m。在单批实验中可以以相对较高的数量(>150 mg)生产纳米带。PVP 涂层还具有一定的抗氧化性,去除 PVP 可形成 SnSe/SnO (x) 核壳结构。使用无毒PVP来替代通常用于其他一维形式的SnSe的有毒胺,对于可持续和环保应用来说是一个显着的优势。来自功率依赖性拉曼光谱的 SnSe 纳米带的热传递特性证明了 SnSe 纳米带作为热电材料的潜力。

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