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Photoelectrocatalytic study and scaling up of titanium dioxide electrodes for wastewater treatment

机译:光电二氧化钛电极的光电催化研究及放大

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Different TiO_2 photoelectrodes have been characterized and tested for the photoelectrocatalytic oxidation of methanol. Particulate electrodes (TiO_2/Ti and TiO_2/ITO) have been shown to notably favour charge-carrier transfer at the electrolyte interface while a thermal electrode (Ti) has been shown to favour charge-carrier separation when applying an electric potential bias according to cyclic voltammetry technique, as a consequence of differences in TiO_2 surface between particulate and thermal electrodes. Particulate electrodes lead to a higher photoelectrocatalytic activity for methanol oxidation compared to that of the thermal electrode, probably due to the pure-rutile TiO_2 phase composition of the latter and its lower surface area. TiO_2/Ti electrode has been shown to be the most effective photoelectrode tested for methanol oxidation since its activity was improved by the combination of the particulate TiO_2 layer and the high electrical conductivity of the support. Generally, photocurrent density measured in the photoelectrochemical cell seems to correlate with activity, whereas this correlation is not observed when using a larger photoelectrocatalytic reactor. In contrast, the activity obtained for the scaled-up electrode is found to be similar in terms of surface kinetic constant to that obtained at laboratory scale.
机译:已经表征并测试了不同的TiO_2光电极对甲醇的光电催化氧化。颗粒电极(TiO_2 / Ti和TiO_2 / ITO)已显示出显着促进电解质界面上的电荷-载流子转移,而热电极(Ti)已显示出在根据循环施加电势偏压时有利于电荷-载流子分离伏安技术,这是颗粒电极和热电极之间TiO_2表面不同的结果。与热电极相比,颗粒电极对甲醇的氧化具有更高的光电催化活性,这可能是由于后者的纯金红石型TiO_2相组成及其较低的表面积。 TiO_2 / Ti电极已被证明是测试甲醇氧化最有效的光电极,因为其活性通过结合颗粒TiO_2层和高电导率载体而得以提高。通常,在光电化学电池中测得的光电流密度似乎与活性相关,而当使用较大的光催化催化剂时则未观察到这种相关性。相反,发现按比例放大的电极获得的活性在表面动力学常数方面与实验室规模获得的活性相似。

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