...
首页> 外文期刊>Nanoscale >Hydrothermal synthesis and controlled growth of group-VIB W metal compound nanostructures from tungsten oxide to tungsten disulphide
【24h】

Hydrothermal synthesis and controlled growth of group-VIB W metal compound nanostructures from tungsten oxide to tungsten disulphide

机译:从氧化钨到二硫化钨的VIB W族金属化合物纳米结构的水热合成及受控生长

获取原文
获取原文并翻译 | 示例

摘要

Two-dimensional lateral group-VIB transition metal dichalcogenides (TMDs) have attracted much attention in the fast evolving field of advanced photoelectric functional materials, but their controllable fabrication is challenging. Herein, an emerging synthetic route for sulfurization of tungsten oxide was developed. During the hydrothermal reaction, the optimization of the precursor selection and synthesis parameters led to the tunable properties of WO3–WSxOy–WS2 nanostructures. The vulcanization was thermodynamically favorably at low temperatures and in an environment with a sufficient S source, wherein WO3 was reduced by H atoms to WO3−x, and S atoms were preferentially adsorbed on O vacancies. The WSxOy nanostructures have a narrow band-gap attributed to the effect of S on the valence band top and electronic density of states by density functional theory. The photocurrent response and charge transfer properties of WSxOy were improved due to the charge transport between WS2 and WO3. Understanding the formation and transformation of WS2 nanostructures in solution contributes to the discovery of the important structure-efficiency relationship, which may be extended to other TMDs systems. Hence, extensive research efforts are still needed to develop safer and more efficient synthesis and modification methods to fully utilize the distinctive advantageous properties of TMDs in the photoelectric field.
机译:二维横向group-VIB过渡金属dichalcogenides (tmd)吸引了在先进的快速发展的领域光电功能材料,但他们的可控制备是具有挑战性的。一个新兴的合成路线的硫化氧化钨。热液反应的优化先驱领导的选择和合成参数WO3-WSxOy-WS2可调的特性纳米结构。在较低温度下热力学有利和在一个环境足够的来源,在WO3降低了H原子WO3−x和S原子优先吸附在O职位空缺。带隙归因于年代上的影响价带顶和电子态密度密度泛函理论。WSxOy响应和电荷转移的特性改善之间由于电荷传输吗二硫化钨和WO3。转换WS2纳米结构的解决方案导致重要的发现结构效关系,这可能是扩展到其他tmd系统。研究工作仍需要时间来培养更安全、更高效的合成和修改方法充分利用tmd的独特优势属性光电领域。

著录项

相似文献

  • 外文文献
  • 中文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号