Wang Lingnan, Han Dongxue, Ni Shuang, Ma Weiguang, Wang Wei, Niu Li
State Key Laboratory of Electroanalytical Chemistry , c/o Engineering Laboratory for Modern Analytical Techniques , Changchun Institute of Applied Chemistry , Changchun , Jilin 130022 , P. R. China . Email:
University of Chinese Academy of Sciences , Beijing 100039 , P. R. China.
Chem Sci. 2015 Nov 1;6(11):6632-6638. doi: 10.1039/c5sc02277k. Epub 2015 Aug 17.
For a healthy diet, which is an extension of a high quality lifestyle, tremendous attention has been focused on using antioxidant capacity indicators for food inspections and health guides. Although photoelectrochemical transducers have broadened our horizons for global antioxidant activity analysis, a growing body of foods and beverages needs to be quantified in the visible region and the necessary photoelectrochemical instrumentalization is still in its infancy. Generally, BiVO is considered as an ideal starting material for antioxidant surveillance under visible light irradiation. However, it is subjected to unsatisfied charge collection and utilization in practical applications. Herein, we studied the effects of successive molybdenum substitution of vanadium on the photocatalytic behavior of BiMo VO under visible light illumination. A superior photocurrent density was obtained for BiMoVO due to the flower-like architecture and favorable crystalline form. At the same time, this superhybrid BiMoVO composite successfully acted as a sensing unit in a photoelectrochemical platform for antioxidant capacity evaluation in foodstuffs. The related mechanism was further unearthed and discussed in-depth. Such a straightforward yet cogent principle was also applied to our integrated device for the "smart" analysis of the global antioxidant capacity, whereby collected data can be treated as a nutritive value index for routine quality control in the food industry. On the basis of this achievement, it is anticipated that mobile app-based quantitative antioxidant capacity detection will soon be realized.
对于作为高品质生活方式延伸的健康饮食而言,人们已将大量注意力集中在使用抗氧化能力指标进行食品检测和健康指导上。尽管光电化学传感器拓宽了我们对全球抗氧化活性分析的视野,但仍有越来越多的食品和饮料需要在可见光区域进行量化,且必要的光电化学仪器仍处于起步阶段。一般来说,BiVO被认为是可见光照射下抗氧化监测的理想起始材料。然而,在实际应用中,它存在电荷收集和利用不理想的问题。在此,我们研究了钒的连续钼取代对BiMoVO在可见光照射下光催化行为的影响。由于花状结构和良好的晶体形态,BiMoVO获得了优异的光电流密度。同时,这种超级杂化BiMoVO复合材料成功地在光电化学平台中作为传感单元,用于评估食品中的抗氧化能力。相关机制得到了进一步挖掘和深入讨论。这样一个简单而有说服力的原理也应用于我们用于全球抗氧化能力“智能”分析的集成设备,由此收集的数据可作为食品工业常规质量控制的营养价值指标。基于这一成果,预计不久将实现基于移动应用程序的定量抗氧化能力检测。