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分子工程金属-有机骨架基有机光电化学晶体管传感器用于超灵敏胆红素检测。

Molecule Engineering Metal-Organic Framework-Based Organic Photoelectrochemical Transistor Sensor for Ultrasensitive Bilirubin Detection.

机构信息

Department of Pharmaceutical and Chemical Engineering, Taizhou University, Taizhou, Zhejiang 318000, China.

College of Chemistry and Materials Science, Zhejiang Normal University, Jinhua, Zhejiang 321004, China.

出版信息

Anal Chem. 2024 Aug 6;96(31):12739-12747. doi: 10.1021/acs.analchem.4c01789. Epub 2024 Jul 26.

Abstract

The functionalization of metal-organic frameworks (MOFs) with organic small molecules by in situ postsynthetic modification has garnered considerable attention. However, the precise engineering of recognition sites using this method remains rarely explored in optically controlled bioelectronics. Herein, employing the Schiff base reaction to embed the small molecule (THBA) into a Zr-MOF, we fabricated a hydroxyl-rich MOF on the surface of titanium dioxide nanorod arrays (U6H@TiO NRs) to develop light-sensitive gate electrodes with tailored recognition capabilities. The U6H@TiO NR gate electrodes were integrated into organic photoelectrochemical transistor (OPECT) sensing systems to tailor a sensitive device for bilirubin (I-Bil) detection. In the presence of I-Bil, coordination effects, hydrogen bonding, and π-π interactions facilitated strong binding between U6H@TiO NRs and the target I-Bil. The electron-donating property of I-Bil influenced the gate voltage, enabling precise control of the channel status and modulation of the channel current. The OPECT device exhibited exceptional analytical performance toward I-Bil with wide linearity ranging from 1 × 10 to 1 × 10 M and a low limit detection of 0.022 fM. Leveraging the versatility of small molecules for boosting the functionalization of materials, this work demonstrates the great potential of the small molecule family for OPECT bioanalysis and holds promise for the advancement of OPECT sensors.

摘要

通过原位后合成修饰将有机小分子功能化到金属有机骨架(MOFs)上已经引起了相当大的关注。然而,这种方法在光控生物电子学中很少被用于精确设计识别位点。在这里,我们利用席夫碱反应将小分子(THBA)嵌入到 Zr-MOF 中,在二氧化钛纳米棒阵列(U6H@TiO NRs)的表面制造了富含羟基的 MOF,以开发具有定制识别能力的光敏感栅电极。U6H@TiO NR 栅电极被集成到有机光电化学晶体管(OPECT)传感系统中,以定制用于胆红素(I-Bil)检测的灵敏器件。在存在 I-Bil 的情况下,配位效应、氢键和π-π相互作用促进了 U6H@TiO NRs 与目标 I-Bil 之间的强结合。I-Bil 的供电子性质影响栅极电压,从而能够精确控制沟道状态并调制沟道电流。OPECT 器件对 I-Bil 表现出出色的分析性能,线性范围从 1 × 10 到 1 × 10 M,检测下限为 0.022 fM。利用小分子的多功能性来增强材料的功能化,这项工作展示了小分子家族在 OPECT 生物分析中的巨大潜力,并为 OPECT 传感器的发展带来了希望。

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