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碳纳米管内的杂质控制着取代腙的电化学氧化。

Impurities within carbon nanotubes govern the electrochemical oxidation of substituted hydrazines.

机构信息

Division of Chemistry & Biological Chemistry, School of Physical and Mathematical Sciences, Nanyang Technological University, Singapore 637371.

出版信息

Phys Chem Chem Phys. 2011 Jun 14;13(22):10818-22. doi: 10.1039/c1cp20176j. Epub 2011 May 10.

Abstract

Electrochemistry and electrocatalysis on carbon nanomaterials is at the forefront of research. The presence of carbonaceous and metallic impurities within carbon nanotubes (CNTs) is a persistent problem. Here we show that the electrochemistry of the entire group of hydrazine compounds is governed by impurities within single-walled, double-walled and few-walled CNTs. The oxidation of organic substituted hydrazines at CNTs is driven by nanographitic impurities, in contrast to unsubstituted hydrazine, for which the electrochemistry is driven by metallic impurities within CNTs. This finding is unexpected, as one would assume that a whole group of compounds would be susceptible to "electrocatalysis" by only one type of impurity. This discovery should be taken into account when predicting the susceptibility of whole groups of compounds to electrocatalysis by metallic or nanographitic impurities. Our findings have strong implications on the electrochemical sensing of hydrazines and on the use of hydrazines as fuels for nanomotors.

摘要

碳纳米材料的电化学和电催化处于研究前沿。碳纳米管(CNTs)中存在碳质和金属杂质是一个长期存在的问题。在这里,我们表明,整个联氨化合物组的电化学受单壁、双壁和少壁 CNT 内杂质的控制。与未取代的联氨不同,有机取代联氨在 CNT 上的氧化是由纳米石墨杂质驱动的,对于未取代的联氨,其电化学是由 CNT 内的金属杂质驱动的。这一发现出乎意料,因为人们会认为,整组化合物都会容易受到“电催化”作用,而这种作用只由一种杂质引起。在预测整组化合物对金属或纳米石墨杂质的电催化敏感性时,应该考虑到这一发现。我们的发现对肼的电化学传感以及肼作为纳米马达燃料的使用有重要影响。

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