Xing Guanjie, Liu Xiaoli, Hao Simeng, Li Xiaohong, Fan Louzhen, Li Yunchao
College of Chemistry, Beijing Normal University, Beijing 100875, China.
Nanomaterials (Basel). 2019 Feb 7;9(2):220. doi: 10.3390/nano9020220.
Benefiting from their ultra-small diameters and highly structural anisotropies, ultrathin semiconductor nanowires (USNWs) are well-known for their fascinating physical/chemical properties, as well as their promising applications in various fields. However, until now, it remains a challenge to synthesize high-quality USNWs with well-controlled diameters and lengths, let alone the exploration of their size-dependent properties and applications. To solve such a challenge, we report herein a ligand-induced low-temperature precursor thermolysis route for the controlled preparation of ultrathin ZnS nanowires, which is based on the oriented assembly of the in-situ formed ZnS clusters/tiny particles. Optimized synthetic conditions allowed the synthesis of ZnS nanowires with a diameter down to 1.0 nm and a length approaching 330 nm. The as-prepared ultrathin ZnS nanowires were then intensively examined by morphological, spectroscopic and electrochemical analytical means to explore their size-dependent optical absorption properties, photocatalytic activities and band-edge energy levels, as well as their underlying growth mechanism. Notably, these USNWs, especially for the thinnest nanowires, were identified to possess an excellent performance in both the selective absorption of ultraviolet (UV) light and photocatalytic degradation of dyes, thus enabling them to serve as longpass ultraviolet filters and high-efficiency photocatalysts, respectively. For the ultrathin ZnS nanowires with a diameter of 1.0 nm, it was also interesting to observe that their exciton absorption peak positions were kept almost unchanged during the continuous extension of their lengths, which has not been reported previously.
得益于其超小的直径和高度的结构各向异性,超薄半导体纳米线(USNWs)以其迷人的物理/化学性质以及在各个领域的广阔应用前景而闻名。然而,到目前为止,合成具有精确可控直径和长度的高质量USNWs仍然是一项挑战,更不用说探索其尺寸依赖性性质和应用了。为了解决这一挑战,我们在此报告一种基于原位形成的ZnS团簇/微小颗粒的定向组装的配体诱导低温前驱体热解路线,用于可控制备超薄ZnS纳米线。优化的合成条件使得能够合成直径低至1.0 nm且长度接近330 nm的ZnS纳米线。然后,通过形态学、光谱学和电化学分析手段对所制备的超薄ZnS纳米线进行了深入研究,以探索其尺寸依赖性光吸收性质、光催化活性和带边能级,以及其潜在的生长机制。值得注意的是,这些USNWs,特别是最细的纳米线,被确定在紫外(UV)光的选择性吸收和染料的光催化降解方面均具有优异性能,从而使它们分别能够用作长波紫外滤光片和高效光催化剂。对于直径为1.0 nm的超薄ZnS纳米线,还有趣地观察到,在其长度不断延长的过程中,它们的激子吸收峰位置几乎保持不变,这在以前尚未见报道。