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基于导电聚合物的杂化组装用于电化学传感:材料科学视角。

Conducting polymer-based hybrid assemblies for electrochemical sensing: a materials science perspective.

机构信息

Department of Physical Chemistry and Materials Science, University of Szeged, Aradi V. Sq. 1, 6720 Szeged, Hungary.

出版信息

Anal Bioanal Chem. 2013 Apr;405(11):3489-511. doi: 10.1007/s00216-013-6702-y. Epub 2013 Jan 23.

Abstract

In this topical review, progress achieved in amperometric sensing of different analytes over conducting polymer-based hybrid electrocatalysts is summarized. We report a variety of synthetic methods and the resulting hybrid assemblies, with the effectiveness of such strategies, for designing conjugated polymer-based hybrids as robust sensors for amperometric detection. Beyond incorporation of metal nanoparticles, metal-oxide and non-oxide semiconductors, carbon-based nanomaterials (nanotubes, graphene, and graphene oxide), and special dopant ions are also discussed. Moreover, some particularly interesting miscellaneous approaches, for example photo-amperometric sensing or use of overoxidized polymers, are also emphasized. Determination of dissolved gases (for example O2, NO, and NO2), ions (sulfite, nitrite, nitrate, chlorate, bromate, and iodate) and smaller and larger molecules (for example H2O2, ascorbic acid (AA), dopamine (DA), urea (UA), amino acids, hydrazine, NADH, serotonin, and epinephrine) is discussed. These achievements are reviewed from the materials perspective, addressing both synthetic and electrocatalytic aspects of the polymer-based modified electrodes. Beyond simple or more sophisticated mixing, a wide range of methods of preparation is presented, including chemical (one-pot polymerization, impregnation), electrochemical (co-deposition, doping type inclusion, etc.) and combined strategies. Classification of such synthetic routes is also included. However, it is important to note that we omit studies in which conducting polymers alone were used for determination of different species. Furthermore, because excellent reviews--cited in this work also--are available on immobilization of biomolecules (for example enzymes) for biosensing purposes, this topic, also, is excluded.

摘要

在这篇专题评论中,总结了基于导电聚合物的杂化电催化剂对不同分析物的电流感应研究进展。我们报告了各种合成方法和由此产生的杂化组装体,以及这些策略在设计基于共轭聚合物的混合体作为用于安培检测的坚固传感器方面的有效性。除了掺入金属纳米粒子、金属氧化物和非氧化物半导体、碳基纳米材料(纳米管、石墨烯和氧化石墨烯)以及特殊掺杂离子外,还讨论了一些特别有趣的杂项方法,例如光电流感应或使用过氧化物聚合物。还讨论了溶解气体(例如 O2、NO 和 NO2)、离子(亚硫酸盐、亚硝酸盐、硝酸盐、氯酸盐、溴酸盐和碘酸盐)以及较小和较大分子(例如 H2O2、抗坏血酸 (AA)、多巴胺 (DA)、尿素 (UA)、氨基酸、肼、NADH、血清素和肾上腺素)的测定。从材料角度讨论了这些成就,涉及基于聚合物的修饰电极的合成和电催化方面。除了简单或更复杂的混合之外,还提出了广泛的制备方法,包括化学方法(一锅聚合、浸渍)、电化学方法(共沉积、掺杂型包含等)和组合策略。还包括此类合成路线的分类。但是,需要注意的是,我们忽略了仅使用导电聚合物来测定不同物种的研究。此外,由于关于用于生物传感目的的生物分子(例如酶)的固定化的优秀综述——在这项工作中也引用了——也排除了这个主题。

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