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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Cu metal-organic framework-derived Cu Nanospheres@Porous carbon/macroporous carbon for electrochemical sensing glucose
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Cu metal-organic framework-derived Cu Nanospheres@Porous carbon/macroporous carbon for electrochemical sensing glucose

机译:用于电化学传感葡萄糖的Cu金属 - 有机框架衍生的Cu纳米族纳米族纳米球/大孔碳

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摘要

Novel Cu nanospheres@porous carbon firmly arrayed on three-dimensional kenaf stem-derived macroporous carbon (3D-KSCs) integrated electrodes were prepared by simple thermolysis of Cu metalorganic framework (HKUST-1) formed on 3D-KSCs for nonenzymatic glucose sensor. The morphology and catalytic activities of as-obtained Cu nanospheres@porous carbon/3D-KSCs were investigated in detail by various techniques. The results confirmed that some octahedral HKUST-1 were intactly transformed into Cu nanospheres@porous carbon nanocomposites and some HKUST-1 were broken into many uniform small Cu nanospheres@porous carbons on the wall of 3D-KSCs upon thermolysis. The spherical nanostructures were consisted of many Cu nanoparticles embedded into 3D porous carbon frameworks. Since the Cu nanospheres@porous carbon/3D-KSCs integrated electrode has hierarchical pores originated from 3D-KSCs and the porous carbon for mass transfer, excellent electrocatalytic activity resulted from hierarchical and uniformly dispersed Cu nanospheres@porous carbon, the nonenzymatic glucose sensor based on Cu nanospheres@ porous carbon/3D-KSC integrated electrode showed an acceptable linear range of 0.15 mu M-5.62 mM, a low detection limit of 0.48 mu M and with a sensitivity of as high as 28.67 mu A mM(-1) cm(-2). The easy and low-cost preparation, hierarchical nanostructures and good electrocatalytic activity of Cu nanospheres@porous carbon/3D-KSCs rendered it promising candidate for sensors and other applications. (C) 2018 Elsevier B.V. All rights reserved.
机译:通过在非酶葡萄糖传感器上形成的3D-KSCS形成的Cu Metalorganic框架(HKUST-1),制备新型Cu纳米族常规串联串联的大孔碳(3D-KSC)集成电极。通过各种技术详细研究了如此获得的Cu纳米球体的形态和催化活性@多孔碳/ 3D-KSC。结果证实,将一些八面体HKUST-1完全转化为Cu纳米球,若干碳纳米复合材料,一些HKust-1在热解后,将一些HKust-1分成许多均匀的小Cu纳米球@多孔碳碳。球形纳米结构由嵌入到3D多孔碳框架中的许多Cu纳米颗粒组成。由于Cu纳米球@多孔碳/ 3D-KSCs集成电极具有源自3D-KSC的分层孔和用于传质碳的多孔碳,因此具有均匀分散的Cu纳米球的优异的电催化活性@多孔碳,基于以下的非酶葡萄糖传感器CU纳米球@多孔碳/ 3D-KSC集成电极显示可接受的线性范围为0.15 mu m-5.62mm,低检测限为0.48 mu m,灵敏度高达28.67μmmm(-1)cm( -2)。 Cu纳米球的容易和低成本的制备,分层纳米结构和良好的电催化活性@多孔碳/ 3D-KSC使传感器和其他应用的候选者有前途。 (c)2018年elestvier b.v.保留所有权利。

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