MXene@MnIn2S4‐Gated Organic Photoelectrochemical Transistors with Nanozyme‐Mediated Multiple Quenching Effects for Ultrasensitive Detection of Okadaic Acid

Author:

Chi Jingtian12,Ju Peng134ORCID,Bi Fan3,Wang Shiliang4,Jiang Tiantong1,Wen Siyu1,Cai Yueyuan2,Yin Xiaofei1,Qiu Meng2

Affiliation:

1. Key Laboratory of Marine Eco‐Environmental Science and Technology Marine Bioresource and Environment Research Center First Institute of Oceanography Ministry of Natural Resources No. 6 Xianxialing Road Qingdao 266061 P. R. China

2. College of Chemistry and Chemical Engineering Key Laboratory of Marine Chemistry Theory and Technology Ministry of Education Ocean University of China No. 238 Songling Road Qingdao 266100 P. R. China

3. Shandong Key Laboratory of Marine Ecological Environment and Disaster Prevention and Mitigation North China Sea Marine Forecasting Center of State Oceanic Administration Qingdao 266061 P. R. China

4. College of Safety and Environmental Engineering Shandong University of Science and Technology Qingdao 266590 P. R. China

Abstract

AbstractOrganic optoelectronics have attracted widespread interdisciplinary research interest but lags far behind in the application in marine environmental detection. The organic photoelectrochemical transistor (OPECT) shows promise as a powerful tool for comprehensive monitoring and early warning of marine conditions, which can be further enhanced by the valuable signal amplification strategy of nanozyme‐mediated catalytic precipitation. Herein, OPECT technology is integrated with nanozyme‐mediated catalytic precipitation for the first time, establishing an ultrasensitive detection platform for okadaic acid (OA). Specifically, MXene@MnIn2S4 (MXMnIS) hybrid composed of Schottky‐junction is synthesized via a hydrothermal method, which can efficiently modulate the device with high current gain. Linking with a sandwich immunoassay, the Ru‐C3N4 nanozyme with peroxidase‐mimicking activity can catalyze the oxidation of 4‐chloro‐1‐naphthol (4‐CN) to form an insoluble precipitate on the electrode surface, resulting in a decrease in the photocurrent and altering the transistor response. Importantly, the proposed OPECT biosensor presented an excellent sensitivity and a low detection limit (32.5 pM), fully satisfying the fundamental requirements for the quantitative detection of intracellular and extracellular OA in the practical culture media of Prorocentrum lima at different growth stages. This OPECT platform based on the nanozyme‐mediated quenching effect is significant for effectively monitoring the safety of the marine ecological environment and food safety.

Funder

National Natural Science Foundation of China

Taishan Scholar Project of Shandong Province

Natural Science Foundation of Shandong Province

Basic Scientific Fund for National Public Research Institutes of China

Publisher

Wiley

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