The crystal plane effect on the peroxidase-like catalytic properties of Co3O4 nanomaterials

纳米材料 纳米棒 催化作用 过氧化物酶 Crystal(编程语言) 材料科学 纳米颗粒 纳米技术 高分辨率透射电子显微镜 化学工程 化学 透射电子显微镜 有机化学 工程类 计算机科学 程序设计语言
作者
Jianshuai Mu,Li Zhang,Guangyu Zhao,Yan Wang
出处
期刊:Physical Chemistry Chemical Physics [Royal Society of Chemistry]
卷期号:16 (29): 15709-15709 被引量:73
标识
DOI:10.1039/c4cp01326c
摘要

Nanomaterials as enzyme mimics have received considerable attention as they can overcome some serious disadvantages associated with the natural enzymes. In recently developed Co3O4 nanoparticles as peroxidase mimics, the influence of the crystal plane on the catalytic performance has not been demonstrated. In order to better understand their crystal plane-dependent catalysis, the present study was initiated using three different Co3O4 nanomaterials, nanoplates, nanorods and nanocubes, as model systems. According to HRTEM, the predominantly exposed planes of nanoplates, nanorods and nanocubes are {112}, {110} and {100} planes, respectively. The catalytic activities were explored by using H2O2 and different organic substrates as the substrates of peroxidase mimics, and were investigated in-depth by steady-state kinetics and electrochemistry methods in depth. The results show that the peroxidase-like activity increases from nanocubes to nanoplates, via nanorods. The effect of external conditions such as pH and temperature on the three nanomaterials is the same, which indicates that the difference in their catalytic activities originates from their different shapes. The peroxidase-like catalytic activities of Co3O4 nanomaterials are crystal plane-dependent and follow the order: {112} ≫ {110} > {100}. The three crystal planes have different arrangements of surface atoms, thus exhibiting different abilities of electron transfer, which induce their different peroxidase-like catalytic activities. This investigation clarifies that the peroxidase-like activity of Co3O4 nanomaterials can be enhanced by shape control. These findings show that Co3O4 nanomaterials can serve as catalyst models for designing other catalysts.
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