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扩展栅光电电极上的光激活界面电荷交替相互作用:基于 EG-FET 的光电化学传感器的新型传感策略。

Light-Activated Interface Charge-Alternating Interaction on an Extended Gate Photoelectrode: A New Sensing Strategy for EGFET-Based Photoelectrochemical Sensors.

机构信息

State Key Laboratory of Marine Resource Utilization in the South China Sea, School of Materials Science and Engineering, Hainan University, Haikou, Hainan 570228, China.

School of Ecology and Environment, Hainan University, Haikou, Hainan 570228, China.

出版信息

ACS Appl Mater Interfaces. 2023 Mar 8;15(9):11866-11874. doi: 10.1021/acsami.2c22970. Epub 2023 Feb 24.

DOI:10.1021/acsami.2c22970
PMID:36826809
Abstract

Integration of extended gate field-effect transistors (EGFET) and photoelectrochemical (PEC) measurement to construct highly sensitive sensors is an innovative research field that was proven feasible by our previous work. However, it remains a challenge on how to adjust the interaction between the extended gate and the analyte and study its influence on EGFET-based PEC sensors. Herein, a new sensing strategy was proposed by a mutual electrostatic interaction. Three-dimensional TiO and g-CN core-shell heterojunction on flexible carbon cloth (TCN) was designed as the extended sensing gate. Tetracycline (TC) was also used as a model analyte, and it contains electron-donating groups (-NH and -OH) with negative charge. The designed TCN-extended sensing gate was negatively charged in the dark by introducing carbon vacancies with oxygen doping in the g-CN shell, while it was positively charged under illustration due to the aggregation of photogenerated holes on the surface. Therefore, a light-activated PEC sensing platform for the sensitive and selective determination of tetracycline (TC) was demonstrated. Such a PEC sensor exhibited wide linear ranges within 100 pM to 1 μM and 1-100 μM with a low detection limit of 0.42 pM. Furthermore, the sensing platform possessed excellent selectivity, good reproducibility, and stability. The proposed sensing strategy in this work can expand the paradigm for developing a light-regulated FET-based PEC sensor by mutual electrostatic interaction, and we believe that this work will offer a new perspective for the design of interface interaction in PEC devices.

摘要

将扩展栅场效应晶体管 (EGFET) 和光电化学 (PEC) 测量集成到构建高灵敏度传感器是一个创新的研究领域,我们之前的工作已经证明了这是可行的。然而,如何调整扩展栅与分析物的相互作用并研究其对基于 EGFET 的 PEC 传感器的影响仍然是一个挑战。在此,我们提出了一种通过互静电相互作用的新传感策略。柔性碳纤维布 (TCN) 上的三维 TiO 和 g-CN 核壳异质结被设计为扩展传感栅。四环素 (TC) 也被用作模型分析物,它含有带负电荷的供电子基团 (-NH 和 -OH)。在黑暗中,通过在 g-CN 壳中引入含有氧掺杂的碳空位,设计的 TCN 扩展传感栅带负电,而在光照下由于表面光生空穴的聚集,它带正电。因此,展示了一种用于灵敏和选择性测定四环素 (TC) 的光激活 PEC 传感平台。该 PEC 传感器在 100 pM 至 1 μM 和 1-100 μM 范围内具有较宽的线性范围,检测限低至 0.42 pM。此外,该传感平台具有出色的选择性、良好的重现性和稳定性。本工作中提出的传感策略通过互静电相互作用扩展了基于 FET 的光调节 PEC 传感器的发展范例,我们相信这项工作将为 PEC 器件中界面相互作用的设计提供新的视角。

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