A continuous glucose monitoring device by graphene modified electrochemical sensor in microfluidic system.

Zhihua Pu, Chongwei Zou, Ridong Wang, Xiaochen Lai, Haixia Yu, Kexin Xu, Dachao Li
Author Information
  1. Zhihua Pu: State Key Laboratory of Precision Measuring Technology and Instruments, Tianjin University , Tianjin 300072, China.
  2. Chongwei Zou: State Key Laboratory of Precision Measuring Technology and Instruments, Tianjin University , Tianjin 300072, China. ORCID
  3. Ridong Wang: State Key Laboratory of Precision Measuring Technology and Instruments, Tianjin University , Tianjin 300072, China. ORCID
  4. Xiaochen Lai: State Key Laboratory of Precision Measuring Technology and Instruments, Tianjin University , Tianjin 300072, China. ORCID
  5. Haixia Yu: Tianjin Key Laboratory of Biomedical Detecting Techniques and Instruments, Tianjin University , Tianjin 300072, China.
  6. Kexin Xu: State Key Laboratory of Precision Measuring Technology and Instruments, Tianjin University , Tianjin 300072, China.
  7. Dachao Li: State Key Laboratory of Precision Measuring Technology and Instruments, Tianjin University , Tianjin 300072, China.

Abstract

This paper presents a continuous glucose monitoring microsystem consisting of a three-electrode electrochemical sensor integrated into a microfluidic chip. The microfluidic chip, which was used to transdermally extract and collect subcutaneous interstitial fluid, was fabricated from five polydimethylsiloxane layers using micromolding techniques. The electrochemical sensor was integrated into the chip for continuous detection of glucose. Specifically, a single-layer graphene and gold nanoparticles (AuNPs) were decorated onto the working electrode (WE) of the sensor to construct a composite nanostructured surface and improve the resolution of the glucose measurements. Graphene was transferred onto the WE surface to improve the electroactive nature of the electrode to enable measurements of low levels of glucose. The AuNPs were directly electrodeposited onto the graphene layer to improve the electron transfer rate from the activity center of the enzyme to the electrode to enhance the sensitivity of the sensor. Glucose oxidase (GOx) was immobilized onto the composite nanostructured surface to specifically detect glucose. The factors required for AuNPs deposition and GOx immobilization were also investigated, and the optimized parameters were obtained. The experimental results displayed that the proposed sensor could precisely measure glucose in the linear range from 0 to 162 mg/dl with a detection limit of 1.44 mg/dl (S/N = 3). The proposed sensor exhibited the potential to detect hypoglycemia which is still a major challenge for continuous glucose monitoring in clinics. Unlike implantable glucose sensors, the wearable device enabled external continuous monitoring of glucose without interference from foreign body reaction and bioelectricity.

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Word Cloud

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