School of Materials Science and Engineering, Suzhou University of Science and Technology, Suzhou, 215009, China; Institute of Advanced Cross-field Science, College of Life Science, Qingdao University, Qingdao, 266071, PR China.
School of Materials Science and Engineering, Suzhou University of Science and Technology, Suzhou, 215009, China.
Anal Chim Acta. 2023 Mar 8;1245:340829. doi: 10.1016/j.aca.2023.340829. Epub 2023 Jan 12.
Screen printed electrode (SPE) on carbon-based inks exhibits promising applications in biosensing, environment protection and food safety. We report here a unique carbon-based material comprising Pt-CuO nanocrystal interfacially anchored on functionalized carbon nanofiber (Pt-CuO@FCNF) and its functional ink to build SPE for ultrasensitive detection of cell released HO. Pt-CuO@FCNF is fabricated using a one-pot and mass production method through direct pyrolysis of Pt and CuO precursors together with FCNF. FCNF with 1-D structure and high electrical conductivity can interfically anchor Pt-CuO nanocrystal, which synergically promotes rich active site and catalytic activity towards HO. Pt-CuO@FCNF exhibits a wide linear response of 0.4 μM-11 mM, a low detection limit of 17 nM, a fast response time of 1.0 s, and good selectivity. Eventually, Pt-CuO@FCNF SPE realizes real-time and ultrasensitive qualification of HO released from both normal and cancer cells.
丝网印刷电极 (SPE) 基于碳基油墨在生物传感、环境保护和食品安全等领域具有广阔的应用前景。我们在此报道了一种独特的碳基材料,它由界面锚定在功能化碳纳米纤维上的 Pt-CuO 纳米晶体组成(Pt-CuO@FCNF),并将其制成功能油墨,用于构建 SPE 以超灵敏地检测细胞释放的 HO。Pt-CuO@FCNF 是通过 Pt 和 CuO 前体与 FCNF 的一锅法和大规模生产方法直接热解制备的。具有 1-D 结构和高导电性的 FCNF 可以界面锚定 Pt-CuO 纳米晶体,协同促进 HO 的丰富活性位点和催化活性。Pt-CuO@FCNF 表现出宽的线性响应范围为 0.4 μM-11 mM,低检测限为 17 nM,响应时间快为 1.0 s,选择性好。最终,Pt-CuO@FCNF SPE 实现了正常和癌细胞释放的 HO 的实时和超灵敏定性。