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基于植物提取物的高效光催化和电化学生物传感用纳米生物技术构建的 AlO 核壳纳米粒子的制备。

Nanobioengineered AlO Core-Shell Nanoparticle Preparation Using Plant Extract for Efficient Photocatalysis and Electrochemical Sensing.

机构信息

Graduate School of Life Science and Systems Engineering, Kyushu Institute of Technology, 2-4 Hibikino, Wakamatsu, Kitakyushu 808-0196, Japan.

Department of Biotechnology, Indira Gandhi National Tribal University, Amarkantak, Madhya Pradesh 484886, India.

出版信息

ACS Appl Bio Mater. 2024 Nov 18;7(11):7646-7658. doi: 10.1021/acsabm.4c01213. Epub 2024 Oct 28.

Abstract

Core-shell-based nanomaterials have garnered considerable attention in the recent past not only in catalytic applications but also in their potentiality in selective and efficient sensing. Present research reports the first and successful biosynthesis of the core (c-AlO)-shell nanoparticles (NPs) using blossom extract as reducing and capping agents. The synthesized c-AlO NPs were characterized and utilized to fabricate nanobioengineered electrodes on indium tin oxide (ITO) substrates via electrophoretic deposition. Electrochemical analysis, including cyclic voltammetry and differential pulse voltammetry, revealed quasi-reversible processes with high electron-transfer rates ( = 0.66 s) and a diffusion coefficient ( = 5.84 × 10 cm s). The electrode exhibited a very high sensitivity (23.44 μA μM cm) and a low detection limit (0.463 μM) for sodium azide (NaN) over two linear ranges of 1-6 and 8-20 μM. Additionally, c-AlO NPs demonstrated the effective photocatalytic degradation of crystal violet dye under visible light, following pseudo-first-order kinetics. The fabricated electrode showed excellent selectivity, stability, and reproducibility, highlighting its potential for environmental monitoring and clinical diagnostics.

摘要

基于核壳的纳米材料在最近的催化应用中受到了广泛关注,同时在选择性和高效传感方面也具有很大的潜力。本研究首次成功地使用花朵提取物作为还原剂和稳定剂,合成了核(c-AlO)-壳纳米粒子(NPs)。合成的 c-AlO NPs 经过表征,并通过电泳沉积在铟锡氧化物(ITO)基底上制备纳米生物工程电极。电化学分析,包括循环伏安法和差分脉冲伏安法,揭示了具有高电子转移速率(=0.66 s)和扩散系数(=5.84×10 cm s)的准可逆过程。该电极对叠氮化钠(NaN)表现出非常高的灵敏度(23.44 μA μM cm)和低检测限(0.463 μM),在 1-6 和 8-20 μM 的两个线性范围内。此外,c-AlO NPs 在可见光下表现出对结晶紫染料的有效光催化降解作用,遵循准一级动力学。所制备的电极表现出优异的选择性、稳定性和重现性,突出了其在环境监测和临床诊断方面的应用潜力。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6f37/11577312/0506fe69796f/mt4c01213_0001.jpg

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