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The direct hydrothermal deposition of cobalt-doped MoS2 onto fluorine-doped SnO2 substrates for catalysis of the electrochemical hydrogen evolution reaction

机译:将钴掺杂的mos2直接水热沉积到氟掺杂的snO2基底上,用于催化电化学析氢反应

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摘要

Metal chalcogenides, and doped molybdenum sulfides in particular, have considerable potential as earth-abundant electrocatalysts for the hydrogen evolution reaction. This is especially true in the case of solar-to-hydrogen devices, where an ability to deposit these materials on transparent substrates is therefore desirable. Hydrothermal methods are perhaps the most common route by which metal chalcogenide materials suitable for the hydrogen evolution reaction are produced. Such methods are simple and scalable, but the direct hydrothermal deposition of metal chalcogenides on transparent oxide electrodes has hitherto never been reported. Such an advance would greatly facilitate the expansion of the field by removing the requirement for separate hydrothermal-synthesis and catalyst-deposition steps. In this paper, we show that the ternary chalcogenide Co2Mo9S26 can be synthesised on a fluorine-doped tin oxide substrate by hydrothermal methods directly from solutions of the simple metal salts. These films display good activity for the hydrogen evolution reaction from acid solution, achieving current densities of 10 mA cm−2 at 260 mV overpotential with a Tafel slope of 64 mV per decade. Moreover, the resulting films can be made to be translucent, a very useful property which would allow light to be transmitted through the catalyst to an underlying light-harvesting array in any solar-to-hydrogen device employing this material at the cathode.
机译:金属硫属化物,特别是掺杂的硫化钼,作为用于析氢反应的富含地球的电催化剂,具有巨大的潜力。在太阳能-氢装置的情况下尤其如此,因此需要将这些材料沉积在透明基板上的能力。水热法也许是生产适用于氢释放反应的金属硫属化物材料的最常见途径。这种方法是简单且可扩展的,但是迄今尚未报道过在透明氧化物电极上直接水热沉积金属硫属元素化物。通过消除对单独的水热合成步骤和催化剂沉积步骤的要求,这种进步将极大地促进该领域的扩展。在本文中,我们表明三元硫属元素化物Co2Mo9S26可以通过水热方法直接从简单金属盐的溶液中合成在掺氟氧化锡衬底上。这些薄膜对从酸溶液中析出氢的反应显示出良好的活性,在260 mV超电势下的电流密度为10 mA cm-2,每十年产生Tafel斜率为64 mV。而且,可以将所得的膜制成半透明的,这是非常有用的性质,其将允许光通过催化剂透射到在阴极处采用该材料的任何太阳能-氢装置中的下面的光收集阵列。

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