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Electrocatalytic Hydrogenation of N2 to NH3 by MnO: Experimental and Theoretical Investigations

机译:MnO将N2电催化加氢成NH3:实验和理论研究

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摘要

NH3 is a valuable chemical with a wide range of applications, but the conventional Haber–Bosch process for industrial‐scale NH3 production is highly energy‐intensive with serious greenhouse gas emission. Electrochemical reduction offers an environmentally benign and sustainable route to convert N2 to NH3 at ambient conditions, but its efficiency depends greatly on identifying earth‐abundant catalysts with high activity for the N2 reduction reaction. Here, it is reported that MnO particles act as a highly active catalyst for electrocatalytic hydrogenation of N2 to NH3 with excellent selectivity. In 0.1 m Na2SO4, this catalyst achieves a high Faradaic efficiency up to 8.02% and a NH3 yield of 1.11 × 10−10 mol s−1 cm−2 at −0.39 V versus reversible hydrogen electrode, with great electrochemical and structural stability. On the basis of density functional theory calculations, MnO (200) surface has a smaller adsorption energy toward N than that of H with the *N2 → *N2H transformation being the potential‐determining step in the nitrogen reduction reaction.
机译:NH3是一种有价值的化学品,具有广泛的应用范围,但是用于工业规模NH3生产的常规Haber–Bosch工艺是高能耗的能源,且温室气体排放严重。电化学还原提供了一种在环境条件下将N2转化为NH3的环境友好和可持续的途径,但是其效率在很大程度上取决于确定对N2还原反应具有高活性的富含地球的催化剂。在此,据报道,MnO颗粒以极高的选择性用作将N 2电催化氢化为NH 3的高活性催化剂。在0.1 m Na2SO4中,该催化剂的法拉第效率高达8.02%,NH3收率为1.11×10 −10 mol s -1 cm −2 在-0.39 V下相对于可逆氢电极,具有出色的电化学和结构稳定性。根据密度泛函理论计算,MnO(200)对N的吸附能比H小,其中* N2→* N2H转化是氮还原反应中的电势决定步骤。

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