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首页> 外文期刊>International journal of hydrogen energy >Dysprosium doped copper oxide (Gu_(1-x)Dy_xO) nanoparticles enabled bifunctional electrode for overall water splitting
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Dysprosium doped copper oxide (Gu_(1-x)Dy_xO) nanoparticles enabled bifunctional electrode for overall water splitting

机译:镝掺杂铜氧化铜(GU_(1-X)DY_XO)纳米颗粒使Bifunction电极用于整体水分裂

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The production of hydrogen, a favourable alternative to an unsustainable fossil fuel remains as a significant hurdle with the pertaining challenge in the design of proficient, highly productive and sustainable electrocatalyst for both oxygen evolution reaction (OER) and hydrogen evolution reaction (HER). Herein, the dysprosium (Dy) doped copper oxide (Cu1-xDyxO) nanoparticles were synthesized via solution combustion technique and utilized as a non-noble metal based bi-functional electrocatalyst for overall water splitting. Due to the improved surface to volume ratio and conductivity, the optimized Cu1-xDyxO (x = 0.01, 0.02) electrocatalysts exhibited impressive HER and OER performance respectively in 1 M KOH delivering a current density of 10 mAcm(-2) at a potential of -0.18 V vs RHE for HER and 1.53 V vs RHE for OER. Moreover, the Dy doped CuO electrocatalyst used as a bifunctional catalyst for overall water splitting achieved a potential of 1.56 V at a current density 10 mA cm(-2) and relatively high current density of 66 mAcm(-2) at a peak potential of 2 V. A long term stability of 24 h was achieved for a cell voltage of 2.2 V at a constant current density of 30 mAcm(-2) with only 10% of the initial current loss. This showcases the accumulative opportunity of dysprosium as a dopant in CuO nanoparticles for fabricating a highly effective and low-cost bi-functional electrocatalyst for overall water splitting. (C) 2021 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:氢的生产,一个不可持续的化石燃料的良好替代品仍然是在氧气进化反应(oer)和氢进化反应(她)的氧气进化反应(oer)设计中具有挑战的重要障碍。这里,通过溶液燃烧技术合成镝(Dy)掺杂掺杂的氧化铜(Cu1-XDyxO)纳米颗粒,并用作用于整体水分裂的非贵金属基的双功能电催化剂。由于对体积比和电导率的改善,优化的Cu1-XdyxO(x = 0.01,0.02)电催化剂分别在1 m KOH中分别表现出令人印象深刻的她的和oer性能,在潜在的情况下输送10mcm(-2)的电流密度-0.18 VS RHE为她,1.53 V VS RHE为OER。此外,用作总水分分离的双官能催化剂的Dy掺杂CuO电催化剂在电流密度10mAcm(-2)中达到1.56V的电位,并且在峰值电位下相对高的66mmm(-2)的电流密度2 V.在恒定电流密度为30mcm(-2)的电池电压下,实现了24小时的长期稳定性,只有10%的初始电流损失。这展示了镝作为CuO纳米颗粒中掺杂剂的累积机会,用于制造用于整体水分裂的高效和低成本的双功能电催化剂。 (c)2021氢能出版物LLC。 elsevier有限公司出版。保留所有权利。

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