Molecular Self‐Assembly of Au Nanoparticles on a Porous Cellulose Membrane Template for Highly Sensitive Colorimetric Detection of Glucose

Author:

Wang Fen1ORCID,Xia Jian2,Tang Cheng1,Xing Langman1,Luo Xiaogang34

Affiliation:

1. Key Laboratory of Exploitation and Study of Distinctive Plants in Education Department of Sichuan Province Key Laboratory of Low-Cost Rural Environmental Treatment Technology in Education Department of Sichuan Province Sichuan University of Arts and Science, No.406, Section 3 Nanbin Road, Dachuan District Dazhou 635000 Sichuan Province P. R. China

2. School of Materials Science and Engineering Huazhong University of Science and Technology Wuhan 430074 Hubei Province P. R. China

3. School of Chemical Engineering and Pharmacy Key Laboratory of Novel Biomass-based Environmental and Energy Materials in Petroleum and Chemical Industry Wuhan Institute of Technology, LiuFang Campus, No.206 Guanggu 1st road, Donghu New & High Technology Development Zone Wuhan 430205 Hubei Province P. R. China

4. School of Materials Science and Engineering Zhengzhou University No.100 Science Avenue Zhengzhou 450001 Henan Province P.R. China

Abstract

AbstractA sensitive glucose colorimetric detection system (Au@QCM) based on quaternized cellulose membrane (QCM) and enzyme‐mimicking Au nanoparticles (AuNPs) was successfully developed via a simple molecular self‐assembly strategy. The positively charged QCM functioned as a template to guide the negatively charged citric acid‐reduced AuNPs uniformly distributed on the surfaces along the pore walls of its porous structure, and thus gave AuNPs an ordered interconnected three‐dimensional network. This electrostatic interaction could effectively prevent the aggregation of the AuNPs and greatly increase their exposed surface area, thus endow the Au@QCM with highly active catalytic properties towards glucose oxidation with glucose oxidase (GOx). The experimental studies showed that the color change of redox indicator 3,3′,5,5′‐tetramethylbenzidine (TMB) can be clearly observed with naked eyes and the absorbance of the oxidized TMB (at 653 nm) was directly proportional to the concentration of glucose. Au@QCM could achieve a sensitive glucose detection with a limit of detection of 0.55 μM and linear response in the range of 0.01–0.5 mM. Besides, it also had good applicability in real samples detection and excellent selectivity to glucose. This novel detection system significantly improved detection performance compared to previous work based on cellulose‐based strips loaded with GOx and horseradish peroxides.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Chemistry

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