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Liquid Exfoliated Co(OH)_2 Nanosheets as Low-Cost, Yet High-Performance, Catalysts for the Oxygen Evolution Reaction

机译:液态剥落的Co(OH)_2纳米片作为低成本但高性能的氧释放反应催化剂

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摘要

Identifying cheap, yet effective, oxygen evolution catalysts is critical to the advancement of water splitting. Using liquid exfoliated Co(OH)(2) nanosheets as a model system, a simple procedure is developed to maximize the activity of any oxygen evolution reaction nanocatalyst. First the nanosheet edges are confirmed as the active areas by analyzing the catalytic activity as a function of nanosheet size. This allows the authors to select the smallest nanosheets (length approximate to 50 nm) as the best performing catalysts. While the number of active sites per unit electrode area can be increased via the electrode thickness, this is found to be impossible beyond approximate to 10 mu m due to mechanical instabilities. However, adding carbon nanotubes increases both toughness and conductivity significantly. These enhancements mean that composite electrodes consisting of small Co(OH)(2) nanosheets and 10 wt% nanotubes can be made into freestanding films with thickness of up to 120 mu m with no apparent electrical limitations. The presence of diffusion limitations results in an optimum electrode thickness of 70 mu m, yielding a current density of 50 mA cm(-2) at an overpotential of 235 mV, close to the state of the art in the field. Applying this procedure to a high-performance catalyst such as NiFeOx should significantly surpass the state of the art.
机译:确定廉价但有效的制氧催化剂对于水分解的发展至关重要。使用液体剥落的Co(OH)(2)纳米片作为模型系统,开发了一种简单的程序来最大化任何析氧反应纳米催化剂的活性。首先,通过分析作为纳米片尺寸的函数的催化活性,将纳米片边缘确认为活性区域。这使作者可以选择最小的纳米片(长度约50 nm)作为性能最佳的催化剂。虽然可以通过电极厚度增加每单位电极面积的活性部位的数量,但是由于机械不稳定,发现不可能超过约10μm。然而,添加碳纳米管显着增加了韧性和导电性。这些增强意味着可以将由小的Co(OH)(2)纳米片和10 wt%的纳米管组成的复合电极制成厚度高达120μm的独立式膜,而没有明显的电气限制。扩散限制的存在导致最佳电极厚度为70μm,在235 mV的超电势下产生50 mA cm(-2)的电流密度,接近本领域的现有技术水平。将该程序应用于高性能催化剂(如NiFeOx)应大大超越现有技术。

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