Maria-Hormigos Roberto, Mayorga-Martinez Carmen C, Kim Jeonghyo, Pumera Martin
Future Energy and Innovation Laboratory, Central European Institute of Technology, Brno University of Technology (CEITEC-BUT), Purkyňova 123, Brno, 61200, Czech Republic.
Advanced Nanorobots and Multiscale Robotics Lab, Faculty of Electrical Engineering and Computer Science, VSB-Technical University of Ostrava, 17. listopadu 2172/15, Ostrava, 70800, Czech Republic.
Small Methods. 2025 Jul;9(7):e2401952. doi: 10.1002/smtd.202401952. Epub 2025 Mar 11.
Ensuring food quality and safety according to stringent global standards requires analytical procedures that are accurate, cost-effective, and efficient. This present innovative high-throughput microrobots designed for the detection of antioxidants in food samples. These microrobots consist of photocatalytic bismuth subcarbonate anchored on silica-coated magnetite nanoparticles. Upon exposure to UV light, they generate reactive oxygen species via photocatalysis, which oxidize the colorless dye into a green-colored radical cation. The presence of antioxidants inhibits this reaction, allowing for the quantification of antioxidant activity. The magnetic Fe₃O₄/SiO₂ core enables steering of the microrobots using a transverse rotating magnetic field, facilitating automated assays on a custom-designed 3D-printed sensing platform. This results demonstrate that these magneto-photocatalytic microrobots can perform automated, high-throughput assessments of food quality, representing a significant advancement in food analysis technology.
根据严格的全球标准确保食品质量和安全需要准确、经济高效且有效的分析程序。本文介绍了一种创新的高通量微型机器人,用于检测食品样品中的抗氧化剂。这些微型机器人由锚定在二氧化硅包覆的磁铁矿纳米颗粒上的光催化碱式碳酸铋组成。在紫外光照射下,它们通过光催化产生活性氧,将无色染料氧化成绿色自由基阳离子。抗氧化剂的存在会抑制这种反应,从而可以对抗氧化活性进行定量。磁性Fe₃O₄/SiO₂核心使得能够使用横向旋转磁场操纵微型机器人,便于在定制设计的3D打印传感平台上进行自动化检测。这些结果表明,这些磁光催化微型机器人能够对食品质量进行自动化的高通量评估,代表了食品分析技术的重大进步。