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基于 3D 手性碳纳米螺旋镍泡沫分级支架上锚定的 Cu@Ni 核壳纳米粒子构建的无酶葡萄糖传感器。

Construction of a binder-free non-enzymatic glucose sensor based on Cu@Ni core-shell nanoparticles anchored on 3D chiral carbon nanocoils-nickel foam hierarchical scaffold.

机构信息

School of Physics, Dalian University of Technology, Dalian 116024, PR China; Department of Physics, Government College University Faisalabad, Faisalabad 38000, Pakistan.

School of Physics, Dalian University of Technology, Dalian 116024, PR China.

出版信息

J Colloid Interface Sci. 2022 Oct 15;624:320-337. doi: 10.1016/j.jcis.2022.05.137. Epub 2022 May 26.

DOI:10.1016/j.jcis.2022.05.137
PMID:35660901
Abstract

Bimetallic nanostructures composited with carbonaceous materials are the potential contenders for quantitative glucose measurement owing to their unique nanostructures, high biomimetic activity, synergistic effects, good conductivity and chemical stability. In the present work, chemical vapors deposition technique has been employed to grow 3D carbon nanocoils (CNCs) with a chiral morphology on hierarchical macroporous nickel foam (NF) to get a CNCs/NF scaffold. Following, bimetallic Cu@Ni core-shell nanoparticles (CSNPs) are effectively coupled with this scaffold through a facile solvothermal route in order to fabricate a binder-free novel Cu@Ni CSNPs/CNCs/NF hybrid nanostructure. The constructed free-standing 3D hierarchical composite electrode guarantees highly efficient glucose redox activity due to core-shell synergistic effects, enhanced electrochemical active surface area, excellent electrochemical stability, improved conductivity with better ion diffusivity and accelerated reaction kinetics. Being a non-enzymatic glucose sensor, this electrode achieves highly swift response time of 0.1 s, ultra-high sensitivity of 6905 μA mM cm, low limit of detection of 0.03 μM along with potential selectivity and good storage stability. Moreover, the proposed sensor is also tested successfully for the determination of glucose concentration in human serum samples under good recovery ranging from 96.6 to 102.1 %. The 3D Cu@Ni CSNPs/CNCs/NF composite electrode with unprecedented catalytic performance can be utilized as an ideal biomimetic catalyst in the field of non-enzymatic glucose sensing.

摘要

双金属纳米结构与碳质材料复合由于其独特的纳米结构、高仿生活性、协同效应、良好的导电性和化学稳定性,是定量葡萄糖测量的潜在竞争者。在本工作中,采用化学气相沉积技术在分级大孔镍泡沫(NF)上生长具有手性形态的 3D 碳纳米线圈(CNC),得到 CNC/NF 支架。随后,通过简便的溶剂热路线将双金属 Cu@Ni 核壳纳米粒子(CSNPs)有效地与该支架结合,以制造无粘合剂的新型 Cu@Ni CSNPs/CNCs/NF 杂化纳米结构。构建的独立式 3D 分级复合电极由于核壳协同效应、增强的电化学活性表面积、优异的电化学稳定性、改善的导电性和更好的离子扩散性以及加速的反应动力学,保证了高效的葡萄糖氧化还原活性。作为一种非酶葡萄糖传感器,该电极实现了极快的响应时间 0.1 s、超高灵敏度 6905 μA mM cm、低检测限 0.03 μM 以及潜在的选择性和良好的存储稳定性。此外,该传感器还成功地用于在良好回收率为 96.6%至 102.1%的范围内测定人血清样品中的葡萄糖浓度。具有前所未有的催化性能的 3D Cu@Ni CSNPs/CNCs/NF 复合电极可作为非酶葡萄糖传感领域的理想仿生催化剂。

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