Liu Jie, Sheng Xia, Guan Fengying, Li Ke, Wang Dandan, Chen Liping, Feng Xinjian
College of Chemistry , Chemical Engineering and Materials Science , Soochow University , Suzhou 215123 , China . Email:
Chem Sci. 2018 Aug 6;9(37):7400-7404. doi: 10.1039/c8sc02335b. eCollection 2018 Oct 7.
Long, well-separated single crystal TiO nanowire (NW) arrays with rapid charge transport properties hold great promise in photoelectrochemical and energy storage devices. Synthesis variations to increase the NWs length generally result in the widening of the NWs and fusion at their roots which, in turn, increases the structural disorder and slows charge transport. As such, well-separated single-crystal TiO NW arrays with rapid charge transport properties have been limited to lengths of about 3-4 μm. In this work, by adjusting the HCl/DI-water ratio and adding specific organic ligands to the reaction solution that slow the lateral growth rate we achieve well-separated single-crystal rutile TiO NW arrays with a length of ∼10 μm and an aspect ratio of approximately 100. The charge transport is 100 times faster than that of nanoparticle films and remarkably exhibits length-independence, a behavior that can be attributed to the well-separated architecture. The synthesis strategy can be extended to the fabrication of other well-separated metal oxide NW arrays and represents an important tool in achieving high performance photoelectrochemical and electrical energy storage devices.
具有快速电荷传输特性的长且间隔良好的单晶TiO纳米线(NW)阵列在光电化学和能量存储器件中具有巨大潜力。增加纳米线长度的合成方法变化通常会导致纳米线变宽并在其根部融合,进而增加结构无序性并减缓电荷传输。因此,具有快速电荷传输特性的间隔良好的单晶TiO NW阵列长度一直限制在约3 - 4μm。在这项工作中,通过调整HCl/去离子水比例并向反应溶液中添加特定有机配体来减缓横向生长速率,我们制备出了间隔良好的单晶金红石TiO NW阵列,其长度约为10μm,纵横比约为100。电荷传输速度比纳米颗粒薄膜快100倍,并且显著表现出与长度无关的特性,这种行为可归因于间隔良好的结构。该合成策略可扩展到其他间隔良好的金属氧化物NW阵列的制备,是实现高性能光电化学和电能存储器件的重要工具。