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Ultrathin atomic Mn-decorated formamide-converted N-doped carbon for efficient oxygen reduction reaction

机译:超薄原子Mn-decorated formamide-convertedn型碳高效氧减少反应

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摘要

It is of great importance to control the thickness of catalytic components to enable maximum catalyst utilization and strong catalyst-substrate interaction since electrocatalytic reactions occurring at the interface of catalysts involve a one or two-atom thick active layer. Herein, we achieved an ultrathin deposition of a 2.5 +/- 0.2 nm active layer containing atomically dispersed Mn-nitrogen-carbon (Mn-NC) materials on conductive carbon nanotubes (CNTs) via a solvothermal treatment of formamide and Mn salt, and applied the as-made Mn-NC/CNT composite without pyrolysis directly as a catalyst for the oxygen reduction reaction (ORR). The atomic dispersion of Mn species in multiple nitrogen surroundings has been confirmed by combining high-angle annular dark-field scanning transmission electron microscopy, X-ray absorption spectroscopy, and X-ray photon spectroscopy. The as-prepared formamide-converted Mn-NC/CNT composite, used for catalyzing the ORR, exhibited a highly comparable performance in alkaline media relative to that of 20 wt% Pt/C by achieving a high onset potential and a half-wave potential (E-1/2) of 0.91 V and 0.83 V (vs. RHE), respectively. Density functional theory (DFT) calculations further suggested that Mn-N moieties were capable of efficiently accelerating the release of *OH intermediates under a high reduction potential, thus exhibiting advanced ORR performance.
机译:具有十分重要的控制厚度催化组件,使最大催化剂利用率和强大catalyst-substrate交互自electrocatalytic反应发生催化剂的接口包括一个或两个atom层厚活跃。2.5 + / - 0.2的超薄沉积纳米活跃层包含自动分散Mn-nitrogen-carbon (Mn-NC)材料通过一个导电碳纳米管(碳纳米管)solvothermal治疗甲酰胺和锰盐,并应用了Mn-NC CNT /复合没有直接裂解的催化剂氧还原反应(ORR)。Mn物种的分散在多个氮环境已经被结合证实高纬度环形暗场扫描透射电子显微镜,x射线吸收光谱和x射线光子光谱学。Mn-NC / CNT组合,用于催化奥尔,表现出一种高度类似的表现碱性介质相对于20 wt % Pt / C实现一个高发病的潜力和半波潜在(E-1/2) 0.91 V和0.83 V(和流值),分别。进一步的计算表明Mn-N根能够有效地加快释放*哦中间体在高还原电位,从而展示先进的奥尔的性能。

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