4.5 Article

3D Prussian blue/Pt decorated carbon nanofibers based screen-printed microchips for the ultrasensitive hydroquinone biosensing

Journal

CHINESE JOURNAL OF CHEMICAL ENGINEERING
Volume 37, Issue -, Pages 105-113

Publisher

CHEMICAL INDUSTRY PRESS CO LTD
DOI: 10.1016/j.cjche.2021.02.017

Keywords

Prussian blue; Carbon nanofiber; Pt nanoparticle; 3D architecture; High sensitivity

Funding

  1. National Natural Science Foundation of China [22078148, 21727818]
  2. Innovative Research Team Program by the Ministry of Education of China [IRT_17R54]
  3. Top-notch Academic Programs Project of Jiangsu Higher Education Institutions (TAPP)
  4. Priority Academic Program Development of Jiangsu Higher Education Institutions (PAPD)
  5. Medical Science and Technology Development Foundation of Nanjing Department of Health [ZKX17014]
  6. Postgraduate Research & Practice Innovation Program of Jiangsu Province [KYCX20_1021]

Ask authors/readers for more resources

Water pollution is increasingly serious, affecting human health. Electrochemical biosensors play an important role in pollution detection, but stability and sensitivity are challenging. A novel composite film structure was successfully developed to enhance sensitivity in biosensors.
Nowadays, water pollution has become more serious, greatly affecting human life and healthy. Electrochemical biosensor, a novel and rapid detection technique, plays an important role in the real-time and trace detection of water pollutants. However, the stability and sensitivity of electrochemical biosensors remain a great challenge for practical detections in real samples to the strong interferences derived from complex components and coagulation effects. In this work, we reported a novel three-dimensional architecture of Prussian blue nanoparticles (PBNPs)/Pt nanoparticles (PtNPs) composite film, using 3D interweaved carbon nanofibers as a supporting matrix, for the construction of screen-printed microchips-based biosensor. PtNPs with diameters of similar to 2.5 nm was highly dispersed on the carbon nanofibers (CNFs) to build a 3D skeleton nanostructure through a solvothermal reduction. Subsequently, uniform PBNPs were in-situ self-assembled on this skeleton to construct a 3D architecture of PB/Pt-CNF composite film. Due to the synergistic effects derived from this special feature, the as-prepared hydroquinone (HQ) biosensor chips can synchronously promote both surface area and conductivity to greatly enhance the electrocatalysis from enzymatic reaction. This biosensor has exhibited a high sensitivity of 220.28 lA.L.mmol(-1).cm(-2) with an ultrawide linear range from 2.5 lmol.L-1 to 1.45 mmol.L-1 at a low potential of 0.15 V, as well as the satisfactory reproducibility and usage stability. Besides, its accuracy was also verified in the assays of real water samples. It is highly expected that the 3D PB/Pt-CNF based screen-printed microchips will have wide applications in dynamic monitoring and early warning of analytes in the various practical fields. (C) 2021 The Chemical Industry and Engineering Society of China, and Chemical Industry Press Co., Ltd. All rights reserved.

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