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简便合成具有特定骨架结构的嵌入碳基质的超细Co3O4纳米晶体作为高效非酶葡萄糖传感器。

Facile synthesis of ultrafine Co3O4 nanocrystals embedded carbon matrices with specific skeletal structures as efficient non-enzymatic glucose sensors.

作者信息

Li Mian, Han Ce, Zhang Yufan, Bo Xiangjie, Guo Liping

机构信息

Faculty of Chemistry, Northeast Normal University, Changchun 130024, PR China.

Faculty of Chemistry, Northeast Normal University, Changchun 130024, PR China.

出版信息

Anal Chim Acta. 2015 Feb 25;861:25-35. doi: 10.1016/j.aca.2014.12.030. Epub 2014 Dec 17.

Abstract

A facile, effective, and environmentally friendly method has been adopted for the first time to prepare tiny Co3O4 nanocrystals embedded carbon matrices without using surfactants, harmful organic reagents or extreme conditions. Structural characterizations reveal that the size-controlled Co3O4 nanocrystals are uniformly dispersed on carbon matrices. Electrochemical measurements reveal that Co3O4-ordered mesoporous carbon (OMC) can more efficiently catalyze glucose oxidation and acquire better detection parameters compared with those for the Co3O4-macroporous carbon, Co3O4-reduced graphene oxide, and free Co3O4 nanoparticles (NPs) (such as: the large sensitivity (2597.5 μA cm(-2) mM(-1) between 0 and 0.8 mM and 955.9 μA cm(-2) mM(-1) between 0.9 and 7.0 mM), fast response time, wide linear range, good stability, and surpassingly selective capability to electroactive molecules or Cl(-)). Such excellent performances are attributed to the synergistic effect of the following three factors: (1) the high catalytic sites provided by the uniformly dispersed and size-controlled Co3O4 nanocrystals embedded on OMC; (2) the excellent reactant transport efficiency caused by the abundant mesoporous structures of OMC matrix: (3) the improved electron transport in high electron transfer rate (confinement of the Co3O4 NPs in nanoscale spaces ensured intimate contact between Co3O4 nanocrystals and the conducting OMC matrix). The superior catalytic activity and selectivity make Co3O4-OMC very promising for application in direct detection of glucose.

摘要

首次采用了一种简便、有效且环境友好的方法来制备嵌入碳基质的微小Co3O4纳米晶体,无需使用表面活性剂、有害有机试剂或极端条件。结构表征表明,尺寸可控的Co3O4纳米晶体均匀分散在碳基质上。电化学测量表明,与Co3O4-大孔碳、Co3O4-还原氧化石墨烯和游离Co3O4纳米颗粒(NPs)相比,Co3O4有序介孔碳(OMC)能够更有效地催化葡萄糖氧化并获得更好的检测参数(例如:在0至0.8 mM之间具有高灵敏度(2597.5 μA cm(-2) mM(-1)),在0.9至7.0 mM之间具有955.9 μA cm(-2) mM(-1)),响应时间快,线性范围宽,稳定性好,对电活性分子或Cl(-)具有卓越的选择性)。这些优异的性能归因于以下三个因素的协同作用:(1)嵌入在OMC上的均匀分散且尺寸可控的Co3O4纳米晶体提供的高催化位点;(2)OMC基质丰富的介孔结构导致的优异反应物传输效率;(3)在高电子转移速率下改善的电子传输(将Co3O4 NPs限制在纳米级空间中确保了Co3O4纳米晶体与导电OMC基质之间的紧密接触)。优异的催化活性和选择性使得Co3O4-OMC在葡萄糖直接检测应用中非常有前景。

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