Department of Chemistry, Chung-Ang University, 84 Heukseok-ro, Dongjak-gu, Seoul 06974, Republic of Korea.
School of Chemical Engineering and Materials Science, Chung-Ang University, 84 Heukseok-ro, Dongjak-gu, Seoul 06974, Republic of Korea.
Sci Rep. 2017 Jan 27;7:40928. doi: 10.1038/srep40928.
Tungsten oxide (WO) has been widely studied for versatile applications based on its photocatalytic, intrinsic catalytic, and electrocatalytic properties. Among the several nanostructures, we focused on the flower-like structures to increase the catalytic efficiency on the interface with both increased substrate interaction capacities due to their large surface area and efficient electron transportation. Therefore, improved WO nanoflowers (WONFs) with large surface areas were developed through a simple hydrothermal method using sodium tungstate and hydrogen chloride solution at low temperature, without any additional surfactant, capping agent, or reducing agent. Structural determination and electrochemical analyses revealed that the WONFs have hexagonal NaWO·0.17HO structure and exhibit peroxidase-like activity, turning from colorless to blue by catalyzing the oxidation of a peroxidase substrate, such as 3,3',5,5'-tetramethylbenzidine, in the presence of HO. Additionally, a WONF-modified glassy carbon electrode was adopted to monitor the electrocatalytic reduction of HO. To verify the catalytic efficiency enhancement by the unique shape and structure of the WONFs, they were compared with calcinated WONFs, cesium WO nanoparticles, and other peroxidase-like nanomaterials. The results indicated that the WONFs showed a low Michaelis-Menten constant (k), high maximal reaction velocity (v), and large surface area.
氧化钨 (WO) 因其光催化、本征催化和电催化性能而被广泛研究用于各种应用。在几种纳米结构中,我们专注于花状结构,以通过增加表面积和有效电子传输来提高与基底的界面上的催化效率。因此,通过使用钨酸钠和盐酸溶液在低温下的简单水热方法,无需任何额外的表面活性剂、封端剂或还原剂,开发了具有大表面积的改进型 WO 纳米花 (WONF)。结构确定和电化学分析表明,WONF 具有六方 NaWO·0.17HO 结构,并表现出过氧化物酶样活性,在 HO 的存在下,通过催化过氧化物酶底物(如 3,3',5,5'-四甲基联苯胺)的氧化,从无色变为蓝色。此外,采用 WONF 修饰的玻碳电极来监测 HO 的电催化还原。为了验证 WONF 的独特形状和结构对催化效率的增强,将其与煅烧后的 WONF、铯 WO 纳米粒子和其他过氧化物酶样纳米材料进行了比较。结果表明,WONF 表现出低米氏常数 (k)、高最大反应速度 (v) 和大表面积。