Department of Chemical Engineering, Laboratory of Electrochemical Research and Nonconventional Materials, Faculty of Chemistry and Chemical Engineering, "Babes-Bolyai" University, Arany Janos 11, RO-400028 Cluj-Napoca, Romania.
Institute of Research-Development-Innovation in Applied Natural Sciences, "Babes-Bolyai" University, Fântânele 30, RO-400294, Cluj-Napoca, Romania.
J Nanosci Nanotechnol. 2021 Apr 1;21(4):2323-2333. doi: 10.1166/jnn.2021.18963.
In order to obtain a multifunctional nanocomposite material-for electrochemical sensors and photocatalytic applications, structures based on Bi, Fe and TiO₂ were grown inside carbon xerogel supports (BiFeCX and BiFeCX-TiO₂). First, a wet polymer containing Bi and Fe salts was obtained by following a modified resorcinol-formaldehyde based sol-gel route, followed by drying in ambient conditions, and pyrolysis under inert atmosphere. Then, through TiCl₄ hydrolysis, TiO₂ nanoparticles were deposited on the BiFeCX xerogel leading to BiFeCX-TiO₂. The morphological and structural characterization of the investigated nanocomposites consisted in X-ray diffraction (XRD), scanning electron microscopy (SEM), transmission electron microscopy (TEM), Raman spectroscopy and N₂ adsorption measurements, revealing porous carbon structures with embedded nanoparticles and the particularities driven by the pyrolysis and TiCl₄ treatment. The new modified electrodes based on BiFeCX or BiFeCX-TiO₂ nanocomposite materials, kept in a chitosan matrix (Chi) and deposited on a glassy carbon (GC) electrode surface (GC/Chi-BiFeCX or GC/Chi-BiFeCX-TiO₂), were obtained and investigated for Pb(II) voltammetric detection and H₂O₂ amperometric detection. Moreover, the BiFeCX-TiO₂ nanocomposite was tested for the photocatalytic degradation of methyl orange. The great potential of BiFeCX nanocomposite material for developing electrochemical sensors, or BiFeCX-TiO₂ for sensors application and photocatalytic application was demonstrated.
为了获得用于电化学传感器和光催化应用的多功能纳米复合材料,在碳气凝胶载体(BiFeCX 和 BiFeCX-TiO₂)内生长了基于 Bi、Fe 和 TiO₂ 的结构。首先,通过改进的基于间苯二酚-甲醛的溶胶-凝胶路线获得了含有 Bi 和 Fe 盐的湿聚合物,然后在环境条件下干燥,并在惰性气氛下进行热解。然后,通过 TiCl₄水解,将 TiO₂纳米颗粒沉积在 BiFeCX 气凝胶上,得到 BiFeCX-TiO₂。所研究的纳米复合材料的形态和结构特征包括 X 射线衍射(XRD)、扫描电子显微镜(SEM)、透射电子显微镜(TEM)、拉曼光谱和 N₂吸附测量,揭示了具有嵌入纳米颗粒的多孔碳结构以及由热解和 TiCl₄ 处理驱动的特殊性。基于 BiFeCX 或 BiFeCX-TiO₂纳米复合材料的新型改性电极,保留在壳聚糖基质(Chi)中,并沉积在玻璃碳(GC)电极表面(GC/Chi-BiFeCX 或 GC/Chi-BiFeCX-TiO₂)上,用于 Pb(II)伏安检测和 H₂O₂安培检测。此外,还测试了 BiFeCX-TiO₂ 纳米复合材料对甲基橙的光催化降解性能。证明了 BiFeCX 纳米复合材料在开发电化学传感器方面,或 BiFeCX-TiO₂ 在传感器应用和光催化应用方面具有巨大的潜力。