4.6 Article

Signal On-Off Electrochemical Sensor for Glutathione Based on a AuCu-Decorated Zr-Containing Metal-Organic Framework via Solid-State Electrochemistry of Cuprous Chloride

Journal

ACS SENSORS
Volume 7, Issue 8, Pages 2465-2474

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acssensors.2c01221

Keywords

Zr-containing metal-organic framework; AuCu bimetals; solid-state electrochemistry; crowding-out effect; glutathione

Funding

  1. National Natural Science Foundation of China [21974042, 21645008]
  2. Scientific Research Fund of Hunan Provincial Education Department [18A010]
  3. Science and Technology Depart- ment of Hunan Province [2021JJ30012]
  4. Postgraduate Scientific Research Innovation Project of Hunan Province [CX20210475]

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A novel signal on-off glutathione (GSH) electrochemical sensor based on a AuCu bimetal-decorated Zr-containing metal-organic framework (Zr-MOF) was developed, using a solid-state electrochemistry signal amplification strategy of cuprous chloride (CuCl). The sensor shows ultrasensitive and selective detection of GSH, making it promising for various applications in biological and food analysis.
A novel signal on-off glutathione (GSH) electrochemical sensor was developed based on a AuCu bimetal-decorated Zr-containing metal-organic framework (Zr-MOF), in which a signal amplification strategy promoted by solid-state electrochemistry of cuprous chloride (CuCl) was used. The Zr-MOF with a large surface area can be effectively used as the substrate for the in situ growth of AuCu bimetals to obtain the Zr-MOF@AuCu nanocomposite. The interaction between Cu in Zr-MOF@AuCu and Cl- in the solution accompanied with the formation of CuCl displays an enlarged stable oxidation current, which greatly declines with the addition of GSH owing to the specific Cu-GSH interaction. The conversion of CuCl into Cu-GSH triggered the crowding-out effect and resulted in a sharp drop in the peak current of CuCl, which can realize the ultrasensitive and selective detection of GSH. The detection mechanism was investigated, and the detection range was 10 pM-1 mM with the detection limit as low as 2.67 pM. The special response mechanism for the detection of GSH allows the highly selective detection of GSH in various real samples with reliable results, endowing the proposed electroanalysis sensor with broad application prospects in biological and food analysis.

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