论文标题

Ultra Narrow TAS2纳米管

Ultra-Narrow TaS2 Nanoribbons

论文作者

Cain, Jeffrey D., Oh, Sehoon, Azizi, Amin, Stonemeyer, Scott, Dogan, Mehmet, Thiel, Markus, Ercius, Peter, Cohen, Marvin L., Zettl, Alex

论文摘要

在二维(2D)材料中施加额外的限制可以进一步控制相关的电子,光学和拓扑特性。然而,超纳罗纳米骨(NRS)的合成仍然是一个挑战,尤其是对于过渡金属二甲植物(TMDS),而合成的TMD NRS窄范围比50 nm较窄仍然难以捉摸。在这里,我们报告了超纳罗TAS2 NRS的蒸气阶段合成。 NR在碳纳米管的空心腔内生长,从而限制其横向尺寸和层数,同时将它们稳定在环境上。 NRS达到单层(ML)极限,并显示低至2.5 nm的宽度。原子分辨率扫描透射电子显微镜(STEM)揭示了超纳罗NRS的详细原子结构,我们观察到了NRS内有序缺陷阵列的迄今未见的原子结构超模拟现象。基于密度功能理论(DFT)的第一原理计算显示了平坦带的存在,以及边缘和边界 - 定位状态,并有助于识别超模块的原子构型。纳米管构成的合成代表了通向超纳罗TMD NR增长的独特,可转移且可部署的途径。

Imposing additional confinement in two-dimensional (2D) materials can yield further control over the associated electronic, optical, and topological properties. However, synthesis of ultra-narrow nanoribbons (NRs) remains a challenge, particularly for the transition metal dichalcogenides (TMDs), and synthesizing TMD NRs narrower than 50 nm has remained elusive. Here, we report the vapor-phase synthesis of ultra-narrow TaS2 NRs. The NRs are grown within the hollow cavity of carbon nanotubes, thereby limiting their lateral dimensions and layer number, while simultaneously stabilizing them against the environment. The NRs reach the monolayer (ML) limit and exhibit widths as low as 2.5 nm. Atomic-resolution scanning transmission electron microscopy (STEM) reveals the detailed atomic structure of the ultra-narrow NRs and we observe a hitherto unseen atomic structure supermodulation phenomenon of ordered defect arrays within the NRs. First-principles calculations based on density functional theory (DFT) show the presence of flat bands, as well as edge- and boundary-localized states, and help identify the atomic configuration of the supermodulation. Nanotube-templated synthesis represents a unique, transferable, and broadly deployable route toward ultra-narrow TMD NR growth.

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