College of Chemistry and Chemical Engineering, Xinjiang Agricultural University, Urumchi 830052, Xinjiang, People's Republic of China; Beijing Key Laboratory of Lignocellulosic Chemistry, Beijing Forestry University, Beijing 100083, People's Republic of China.
College of Chemistry and Chemical Engineering, Xinjiang Agricultural University, Urumchi 830052, Xinjiang, People's Republic of China.
Carbohydr Polym. 2022 Jul 15;288:119400. doi: 10.1016/j.carbpol.2022.119400. Epub 2022 Mar 26.
TiO-based materials have been developing rapidly as eco-friendly photocatalysts, but the inherent defects limited their application, such as rapid recombination of photogenerated electrons and wide bandgap. To obtain high-efficient TiO/carbonaceous photocatalysts (TiO/C), we prepared the nanocomposite by carbonizing titanium alginate coordination compound and studied their photocatalytic performance against methylene blue (MB) under simulated sunlight irradiation. The resultant nanocomposites were characterized by FT-IR, XPS, XRD, SEM-EDS, TG-DTG, UV-DRS, and N adsorption-desorption analysis. The carbon mainly existed in the outer layer of TiO/C composites, contributing to the optical sensibilization. As a result, the degradation efficiency of sample TiO/C-20 to MB could reach 97.47% within 15 min under simulated sunlight. The samples also possessed high stability, proved by the 0.72% reduction in photodegradation ratio after five cyclic tests. The present study proved the feasibility of preparing photocatalyst from titanium-alginate coordination compound and provided an extensible approach for preparing high-efficiency photocatalysts from a polysaccharide-based coordination compound.
基于 TiO2 的材料作为环保型光催化剂发展迅速,但由于光生电子快速复合和宽带隙等固有缺陷限制了其应用。为了获得高效的 TiO2/碳质光催化剂(TiO2/C),我们通过碳化海藻酸钠配位化合物制备了纳米复合材料,并研究了它们在模拟太阳光照射下对亚甲基蓝(MB)的光催化性能。通过 FT-IR、XPS、XRD、SEM-EDS、TG-DTG、UV-DRS 和 N 吸附-脱附分析对所得纳米复合材料进行了表征。碳主要存在于 TiO2/C 复合材料的外层,有助于光学敏化。结果,在模拟太阳光下,样品 TiO2/C-20 对 MB 的降解效率在 15 分钟内可达到 97.47%。这些样品还具有高稳定性,通过五次循环测试后光降解率仅降低了 0.72%得到证明。本研究证明了从海藻酸钠配位化合物制备光催化剂的可行性,并为从多糖基配位化合物制备高效光催化剂提供了一种可扩展的方法。