Energy Materials & Surface Science Laboratory, Solar Energy Research Center, School of Chemical Engineering, Chonbuk National University, Jeonju 561-756, Republic of Korea.
Talanta. 2012 Oct 15;100:377-83. doi: 10.1016/j.talanta.2012.08.001. Epub 2012 Aug 20.
A highly sensitive, reliable and reproducible hydrazine chemical sensor was fabricated using vertically aligned ZnO nanorods (NRs) electrode. The low temperature hydrothermal process was adopted to synthesize the vertically aligned ZnO NRs on fluorine doped tin oxide (FTO) glass. The morphological characterizations revealed the vertical arrangement of highly dense ZnO NRs on FTO substrates. The ultraviolet diffused reflectance spectroscopy (UV-DRS) of aligned ZnO NRs electrode obtained the band gap of ~3.29eV which was close to that of bulk ZnO nanomaterials. The synthesized aligned ZnO NRs electrode was directly used to elucidate the chemical sensing performance towards the detection of hydrazine by simple current-voltage (I-V) characteristics. The aligned ZnO NRs electrode based hydrazine chemical sensor presented a significantly high sensitivity of ~4.42446×10(-5) A mM(-1) cm(-2) and the detection limit of ~515.7 μM with a correlation coefficient (R) of ~0.73297 and a short response time (10s). The electrochemical analysis of vertically aligned ZnO NRs electrode in the presence of hydrazine showed the increased current with high height of anodic peak which confirmed the involvement of high electron transfer process via high electrocatalytic activity of the electrode.
采用垂直排列的氧化锌纳米棒(NRs)电极,制备了一种高灵敏度、高可靠性和可重现性的肼化学传感器。采用低温水热法在掺氟氧化锡(FTO)玻璃上合成垂直排列的氧化锌 NRs。形貌特征揭示了 FTO 基底上高度密集的 ZnO NRs 的垂直排列。通过紫外漫反射光谱(UV-DRS),得到了排列 ZnO NRs 电极的带隙约为 3.29eV,接近体相 ZnO 纳米材料的带隙。合成的排列 ZnO NRs 电极直接用于通过简单的电流-电压(I-V)特性来阐明对肼检测的化学传感性能。基于排列 ZnO NRs 电极的肼化学传感器表现出显著的高灵敏度约为 4.42446×10(-5) A mM(-1) cm(-2)和检测限约为 515.7 μM,相关系数(R)约为 0.73297,响应时间短(10s)。在肼存在下,垂直排列的 ZnO NRs 电极的电化学分析显示出电流增加,阳极峰高度升高,这证实了通过电极的高电催化活性,涉及到高电子转移过程。