Ultrasensitive Detection of SARS‐CoV‑2 by Flexible Metal Oxide Field‐Effect Transistors

Author:

Hou Sihui12,Wu Mengge12,Li Hu2,Gong Hua‐Rui3,Gao Zhan2,Shi Rui2,Huang Xingcan2,Li Dengfeng2,Huang Jian‐Dong3456,Yu Junsheng1ORCID,Yu Xinge2ORCID

Affiliation:

1. School of Optoelectronic Science and Engineering University of Electronic Science and Technology of China Chengdu 610054 China

2. Department of Biomedical Engineering City University of Hong Kong  Hong Kong China

3. School of Biomedical Sciences, Li Ka Shing Faculty of Medicine The University of Hong Kong Pokfulam Hong Kong SAR China

4. Chinese Academy of Sciences (CAS) Key Laboratory of Quantitative Engineering Biology Shenzhen Institute of Synthetic Biology Shenzhen Institutes of Advanced Technology Chinese Academy of Sciences 1068 Xueyuan Avenue, Shenzhen University Town Shenzhen 518055 China

5. Clinical Oncology Center Shenzhen Key Laboratory for Cancer Metastasis and Personalized Therapy The University of Hong Kong‐Shenzhen Hospital Shenzhen 518053 China

6. Guangdong‐Hong Kong Joint Laboratory for RNA Medicine Sun Yat‐Sen University Guangzhou 510120 China

Abstract

AbstractThe pandemic of coronavirus disease 2019 (COVID‐19) reflects the great significance of rapid and accurate detection of pathogens by new sensing technologies. Antibody based biosensors with high sensitivity comparable to golden standard polymerase chain reaction (PCR) and miniaturized device features allow the detection of pathogens in portable and flexible formats. Herein, flexible metal oxide electrolyte‐gated field‐effect transistors (EGFETs) are reported to serve as the biosensors for rapid and ultrasensitive severe acute respiratory syndrome coronavirus 2 (SARS‐CoV‐2) detection. The semiconducting layer of the EGFETs associates with hybrid material of PEI doped metal oxides that not only improves the transistor performance, but also regulates microstructure forming higher surface‐to‐volume ratio, which brings more antibodies immobilization, resulting in higher sensitive, and faster response for detecting SARS‐CoV‐2. Comprehensive studies of materials and interfacing engineering of the EGFETs not only build the strong foundation for the EGFET sensors to show excellent sensitivity with a limit of detection from 0.14 fg ml−1 for SARS‐CoV‐2 S1 proteins, and 0.09 copies µl−1 for SARS‐CoV‐2 viruses, but also offer good mechanical properties to enable thin, soft flexible sensing platforms. This work provides a new strategy from materials to devices as innovative schemes for virus/pathogens detection.

Funder

National Natural Science Foundation of China

City University of Hong Kong

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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