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首页> 外文期刊>Nanoscale >Ruthenium nanoparticles integrated bimetallic metal–organic framework electrocatalysts for multifunctional electrode materials and practical water electrolysis in seawater
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Ruthenium nanoparticles integrated bimetallic metal–organic framework electrocatalysts for multifunctional electrode materials and practical water electrolysis in seawater

机译:集成双金属钌纳米粒子有机框架electrocatalysts多功能电极材料、实用电解水在海水中

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There is still a significant technical hurdle in the integration of better electrocatalysts with coordinated functional units and morphological integrity that improves reversible electrochemical activity, electrical conductivity, and mass transport capabilities. In this work, ruthenium-integrating porous bimetallic transition metal nanoarrays are efficiently generated from metal–organic framework-covered three-dimensional platforms such as carbon cloth using a simple solution-based deposition technique followed by calcination. Heterostructure ruthenium–cobalt–iron hollow nanoarrays are built to permit exceptionally effective multifunctional activities in reactions including the oxygen evolution reaction, hydrogen evolution reaction, and oxygen reduction reaction. As presumed, the as-synthesized porous nanostructured arrays show remarkable electrochemical performance due to the benefits of copious active reaction sites, and efficient electron and ion transport channels. The oxygen reduction reaction of the porous nanostructured array electrocatalyst has a half-wave potential of 0.875 V vs. reversible hydrogen electrode and can achieve a current density of 10 mA cm−2 at low overpotentials of 220 and 50 mV for the oxygen and hydrogen evolution reactions, respectively, and the needed cell voltage for total water splitting is just 1.49 V at a current density of 10 mA cm−2. The fabricated electrolyzer coupling splits seawater at relatively low cell voltages of 1.54 V at ambient temperature.
机译:还有一个重要的技术障碍更好的electrocatalysts的集成协调功能单元和形态完整性,提高可逆电化学活性,电导电率和质量输运功能。这项工作,ruthenium-integrating多孔双金属过渡金属纳米阵列有效地生成的有机配合框架将三维平台如碳布使用一个简单的为基础的解决方案沉积技术紧随其后煅烧。ruthenium-cobalt-iron空心纳米阵列允许特别有效的多功能活动包括氧气的反应进化的反应,氢进化的反应,和氧气还原反应。as-synthesized多孔纳米阵列卓越的电化学性能丰富的活性反应网站的好处高效的电子和离子传输通道。多孔的氧还原反应纳米阵列electrocatalyst有半波0.875 V和可逆的潜力氢电极和目前所能达到的水平马10厘米−2在低密度的过电压220年和50 mV的氧和氢进化的反应,分别和需要电池电压总水分裂是公正的马1.49 V,电流密度为10厘米−2。装配式电解槽耦合分裂海水以相对较低的电池电压为1.54 V环境温度。

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