Photoelectrochemical Solution Gated Graphene Field‐Effect Transistor Functionalized by Enzymatic Cascade Reaction for Organophosphate Detection

Author:

Wang Hai‐Rui1ORCID,Hou En‐Hui1,Xu Na1ORCID,Zhang Yu‐Feng1,Wu Jian‐Feng2ORCID,Yuan Wei‐Jian3ORCID,Kong Zhi‐Guo1,Nie Ping1ORCID,Chang Li‐Min1ORCID,Zhang Xue‐Lin3ORCID,Xie Jian‐Wei2

Affiliation:

1. Key Laboratory of Preparation and Applications of Environmental Friendly Materials Ministry of Education Jilin Normal University Changchun 130103 China

2. State Key Laboratory of Toxicology and Medical Countermeasures and Laboratory of Toxicant Analysis Institute of Pharmacology and Toxicology Academy of Military Medical Sciences Beijing 100850 China

3. MEMS Center School of Astronautics Harbin Institute of Technology Harbin 150001 China

Abstract

AbstractSolution Gated Graphene Field‐Effect Transistors (SGGT) are eagerly anticipated as an amplification platform for fabricating advanced ultra‐sensitive sensors, allowing significant modulation of the drain current with minimal gate voltage. However, few studies have focused on light‐matter interplay gating control for SGGT. Herein, this challenge is addressed by creating an innovative photoelectrochemical solution‐gated graphene field‐effect transistor (PEC‐SGGT) functionalized with enzyme cascade reactions (ECR) for Organophosphorus (OPs) detection. The ECR system, consisting of acetylcholinesterase (AChE) and CuBTC nanomimetic enzymes, selectively recognizes OPs and forms o‐phenylenediamine (oPD) oligomers sediment on the PEC electrode, with layer thickness related to the OPs concentration, demonstrating time‐integrated amplification. Under light stimulation, the additional photovoltage generated on the PEC gate electrode is influenced by the oPD oligomers sediment layer, creating a differentiated voltage distribution along the gate path. PEC‐SGGT, inherently equipped with built‐in amplification circuits, sensitively captures gate voltage changes and delivers output with an impressive thousandfold current gain. The seamless integration of these three amplification modes in this advanced sensor allows a good linear range and highly sensitive detection of OPs, with a detection limit as low as 0.05 pm. This work provides a proof‐of‐concept for the feasibility of light‐assisted functionalized gate‐controlled PEC‐SGGT for small molecule detection.

Funder

Jilin Provincial Scientific and Technological Development Program

National Natural Science Foundation of China

Publisher

Wiley

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