Kanda Naoyuki, Nakanishi Yusuke, Liu Dan, Liu Zheng, Inoue Tsukasa, Miyata Yasumitsu, Tománek David, Shinohara Hisanori
Department of Physics, Tokyo Metropolitan University, Tokyo 192-0397, Japan.
Nanoscale. 2020 Sep 7;12(33):17185-17190. doi: 10.1039/d0nr03129a. Epub 2020 Jun 3.
Atomically thin one-dimensional (1D) van der Waals wires of transition metal monochalocogenides (TMMs) have been anticipated as promising building blocks for integrated nanoelectronics. While reliable production of TMM nanowires has eluded scientists over the past few decades, we finally demonstrated a bottom-up fabrication of MoTe nanowires inside carbon nanotubes (CNTs). Still, the current synthesis method is based on vacuum annealing of reactive MoTe, and limits access to a variety of TMMs. Here we report an expanded framework for high-yield synthesis of the 1D tellurides including WTe, an previously unknown family of TMMs. Experimental and theoretical analyses revealed that the choice of suitable metal oxides as a precursor provides a useful yield for their characterization. These TMM nanowires exhibit a significant optical absorption in the visible-light region. More important, electronic properties of CNTs can be tuned by encapsulating different TMM nanowires.
过渡金属单硫属化物(TMMs)的原子级薄一维(1D)范德华线被认为是集成纳米电子学中有前景的构建模块。在过去几十年里,科学家们一直未能可靠地生产出TMM纳米线,但我们最终展示了一种在碳纳米管(CNTs)内部自下而上制备MoTe纳米线的方法。不过,目前的合成方法基于活性MoTe的真空退火,限制了对多种TMMs的获取。在此,我们报告了一个用于高产率合成包括WTe在内的一维碲化物的扩展框架,WTe是一个此前未知的TMM家族。实验和理论分析表明,选择合适的金属氧化物作为前驱体可为其表征提供可观的产率。这些TMM纳米线在可见光区域表现出显著的光吸收。更重要的是,通过封装不同的TMM纳米线可以调节碳纳米管的电子性质。