Yang Long, Zhao Hui, Fan Shuangmei, Li Bingchan, Li Can-Peng
School of Chemical Science and Technology, Yunnan University, Kunming 650091, PR China.
Laboratory for Conservation and Utilization of Bio-resource, Yunnan University, Kunming 650091, PR China.
Anal Chim Acta. 2014 Dec 10;852:28-36. doi: 10.1016/j.aca.2014.08.037. Epub 2014 Aug 21.
A titanium dioxide-silicon carbide nanohybrid (TiO2-SiC) with enhanced electrochemical performance was successfully prepared through a facile generic in situ growth strategy. Monodispersed ultrafine palladium nanoparticles (Pd NPs) with a uniform size of ∼2.3 nm were successfully obtained on the TiO2-SiC surface via a chemical reduction method. The Pd-loaded TiO2-SiC nanohybrid (Pd@TiO2-SiC) was characterized by transmission electron microscopy and X-ray diffractometry. A method for the simultaneous electrochemical determination of hydroquinone (HQ) and bisphenol A (BPA) using a Pd@TiO2-SiC nanocomposite-modified glassy carbon electrode was established. Utilizing the favorable properties of Pd NPs, the Pd@TiO2-SiC nanohybrid-modified glassy carbon electrode exhibited electrochemical performance superior to those of TiO2-SiC and SiC. Differential pulse voltammetry was successfully used to simultaneously quantify HQ and BPA within the concentration range of 0.01-200 μM under optimal conditions. The detection limits (S/N=3) of the Pd@TiO2-SiC nanohybrid electrode for HQ and BPA were 5.5 and 4.3 nM, respectively. The selectivity of the electrochemical sensor was improved by introducing 10% ethanol to the buffer medium. The practical application of the modified electrode was demonstrated by the simultaneous detection of HQ and BPA in tap water and wastewater samples. The simple and straightforward strategy presented in this paper are important for the facile fabrication of ultrafine metal NPs@metal oxide-SiC hybrids with high electrochemical performance and catalytic activity.
通过一种简便通用的原位生长策略成功制备了一种具有增强电化学性能的二氧化钛-碳化硅纳米杂化物(TiO2-SiC)。通过化学还原法在TiO2-SiC表面成功获得了尺寸均匀约为2.3 nm的单分散超细钯纳米颗粒(Pd NPs)。采用透射电子显微镜和X射线衍射对负载钯的TiO2-SiC纳米杂化物(Pd@TiO2-SiC)进行了表征。建立了一种使用Pd@TiO2-SiC纳米复合修饰玻碳电极同时电化学测定对苯二酚(HQ)和双酚A(BPA)的方法。利用Pd NPs的良好性能,Pd@TiO2-SiC纳米杂化物修饰的玻碳电极表现出优于TiO2-SiC和SiC的电化学性能。在最佳条件下,差分脉冲伏安法成功用于同时定量浓度范围为0.01-200 μM的HQ和BPA。Pd@TiO2-SiC纳米杂化电极对HQ和BPA的检测限(S/N=3)分别为5.5和4.3 nM。通过向缓冲介质中引入10%乙醇提高了电化学传感器的选择性。通过同时检测自来水和废水样品中的HQ和BPA证明了修饰电极的实际应用。本文提出的简单直接的策略对于简便制备具有高电化学性能和催化活性的超细金属NPs@金属氧化物-SiC杂化物具有重要意义。