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Interface engineering of cobalt-sulfide-selenium core-shell nanostructures as bifunctional electrocatalysts toward overall water splitting dagger

机译:接口工程cobalt-sulfide-selenium核壳纳米结构的双功能electrocatalysts向整体水分裂匕首

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摘要

The number of active sites and stability of the structure of electrocatalysts are the key factors in the process of overall water splitting. In this paper, cobalt-sulfide-selenium (Se:CoS2-x) core-shell nanostructures are prepared by a simple two-step method, including hydrothermal reaction and chemical vapor deposition. The resulting product exhibits excellent electrochemical performance, owing to the synergistic effects between CoS2 and CoSe1-x, as well as the plentiful active sites in the electrode structure. The Se:CoS2-x material shows a more improved hydrogen evolution reaction activity compared to CoS2 and Co(OH)Cl precursor catalysts, with a low overpotential of only 240 mV achieved at 10 mA cm(-2). Meanwhile, Se:CoS2-x as a bifunctional water splitting catalyst also shows remarkably improved oxygen evolution reaction activity, with a low overpotential of only 1.32 V at 10 mA cm(-2). The above results show that selenide/sulfide materials provide a new research direction for discovering high-performance and cheap electrode materials.
机译:活动网站的数量和稳定的electrocatalysts结构是关键因素光解水制氢研究的过程中整体。本文cobalt-sulfide-selenium (Se: CoS2-x)核壳纳米结构准备的简单的两步方法,包括热液反应和化学气相沉积。导致产品展览优秀的电化学性能,由于CoS2 CoSe1-x,之间的协同效应丰富活跃的网站电极结构。更提高了氢进化的反应活动相比CoS2和Cl前体(哦)催化剂,过电压低只有240马mV达到10厘米(2)。光解水制氢研究作为双功能催化剂显示显著改善氧进化反应活性,低的过电压只有1.32 V马10厘米(2)。表明,硫化硒化/材料提供为发现新的研究方向高性能和廉价的电极材料。

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