State Key Laboratory of Urban Water Resource and Environment, School of Environment, Harbin Institute of Technology, Harbin, 150090, China.
School of Materials Science and Engineering, Harbin Institute of Technology (Shenzhen), Shenzhen, 518055, China.
Environ Sci Pollut Res Int. 2020 Nov;27(33):42072-42081. doi: 10.1007/s11356-020-10070-1. Epub 2020 Jul 23.
Titanium-based SnO with Sb dopant (Ti/Sb-SnO) was of interest in the field of electro-catalytic oxidation due to its high organic oxidation rates. However, the relatively poor mass transfer performance and short service time limited its practical application. To overcome this problem, Ti/Sb-SnO electrode was fabricated on mesh substrate and used as the anode for electrochemical oxidization of phenol. Compared to the anode prepared on planar Ti, the mesh anode with compact and uniform catalyst surface lowered electron transfer resistance and higher O content (17.41%), which benefited the generation of hydroxyl radicals (·OH) (increment of 24.5%). In addition, this structure accelerated the fluid perturbation around electrode in microscopic scale as the COMSOL simulation result indicated; the electric potential on mesh anode varied regularly along the undulant terrain of electrode so that the mass transfer coefficient was enhanced by 1.67 times. These structure-dependent characteristics contributed to the superior electro-catalytic performance toward degradation of phenol. Experimental results showed that mesh anode had a higher TOC removal efficiency of 90.6% and mineralization current efficiency of 20.1% at current density of 10 mA cm, which was 9.95% and 21.6% higher than the planar anode, and the service lifetime was 1.89 times longer than planar anode. This highly electro-catalytically active and stable Ti/Sb-SnO mesh electrode showed a potential application prospect toward electro-catalytic degradation process.
掺锑二氧化锡钛基(Ti/Sb-SnO)由于其具有较高的有机物氧化速率而在电催化氧化领域受到关注。然而,相对较差的传质性能和较短的使用寿命限制了其实际应用。为了克服这个问题,将 Ti/Sb-SnO 电极制备在网状基底上,并用作电化学氧化苯酚的阳极。与在平面 Ti 上制备的阳极相比,具有致密且均匀催化剂表面的网状阳极降低了电子转移电阻和更高的 O 含量(17.41%),这有利于羟基自由基(·OH)的生成(增加了 24.5%)。此外,如 COMSOL 模拟结果所示,这种结构加速了电极微观尺度周围流体的扰动;网状阳极上的电势沿着电极的起伏地形有规律地变化,从而使传质系数提高了 1.67 倍。这些结构依赖性特征有助于提高苯酚降解的电催化性能。实验结果表明,在 10 mA cm 的电流密度下,网状阳极对 TOC 的去除效率为 90.6%,矿化电流效率为 20.1%,分别比平面阳极高 9.95%和 21.6%,使用寿命比平面阳极长 1.89 倍。这种具有高电催化活性和稳定的 Ti/Sb-SnO 网状电极在电催化降解过程中显示出潜在的应用前景。