Zhou Chunyang, Xu Lin, Song Jian, Xing Ruiqing, Xu Sai, Liu Dali, Song Hongwei
State Key Laboratory on Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, 2699 Qianjin Street, Changchun, 130012, People's Republic of China.
Sci Rep. 2014 Dec 9;4:7382. doi: 10.1038/srep07382.
Three-dimensional (3D) porous ZnO-CuO hierarchical nanocomposites (HNCs) nonenzymatic glucose electrodes with different thicknesses were fabricated by coelectrospinning and compared with 3D mixed ZnO/CuO nanowires (NWs) and pure CuO NWs electrodes. The structural characterization revealed that the ZnO-CuO HNCs were composed of the ZnO and CuO mixed NWs trunk (~200 nm), whose outer surface was attached with small CuO nanoparticles (NPs). Moreover, a good synergetic effect between CuO and ZnO was confirmed. The nonenzymatic biosensing properties of as prepared 3D porous electrodes based on fluorine doped tin oxide (FTO) were studied and the results indicated that the sensing properties of 3D porous ZnO-CuO HNCs electrodes were significantly improved and depended strongly on the thickness of the HNCs. At an applied potential of + 0.7 V, the optimum ZnO-CuO HNCs electrode presented a high sensitivity of 3066.4 μAmM(-1)cm(-2), the linear range up to 1.6 mM, and low practical detection limit of 0.21 μM. It also showed outstanding long term stability, good reproducibility, excellent selectivity and accurate measurement in real serum sample. The formation of special hierarchical heterojunction and the well-constructed 3D structure were the main reasons for the enhanced nonenzymatic biosensing behavior.
通过共电纺丝制备了具有不同厚度的三维(3D)多孔ZnO-CuO分级纳米复合材料(HNCs)非酶葡萄糖电极,并与3D混合ZnO/CuO纳米线(NWs)和纯CuO NWs电极进行了比较。结构表征表明,ZnO-CuO HNCs由ZnO和CuO混合NWs主干(约200 nm)组成,其外表面附着有小的CuO纳米颗粒(NPs)。此外,证实了CuO和ZnO之间具有良好的协同效应。研究了基于氟掺杂氧化锡(FTO)制备的3D多孔电极的非酶生物传感性能,结果表明,3D多孔ZnO-CuO HNCs电极的传感性能得到显著改善,并且强烈依赖于HNCs的厚度。在+0.7 V的施加电位下,最佳的ZnO-CuO HNCs电极呈现出3066.4 μAmM(-1)cm(-2)的高灵敏度、高达1.6 mM的线性范围以及0.21 μM的低实际检测限。它还在实际血清样品中表现出出色的长期稳定性、良好的重现性、优异的选择性和准确的测量结果。特殊分级异质结的形成和良好构建的3D结构是增强非酶生物传感行为的主要原因。