Mo-Doped δ-MnO2 Nanoflowers Enable Efficient Nitrogen Oxidation to Nitrate under Mild Conditions

IF 6.4 1区 化学 Q1 CHEMISTRY, INORGANIC & NUCLEAR
Mingrui Wu, Quan Li, Dongcai Shen, Zhengting Xiao, Minghui Hao, Wentai Wang
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引用次数: 0

Abstract

The development of efficient electrocatalysts for nitrogen oxidation reaction (NOR) under mild conditions is crucial for sustainable nitrate synthesis. Mo-doped δ-MnO2 electrocatalysts with varying Mo concentrations were successfully prepared for NOR. Structural and electrochemical analysis revealed that Mo doping simultaneously enhanced the conductivity and electrochemically active surface area (ECSA) while promoting N2 adsorption and activation through electronic structure modulation. The optimized 2.5% Mo-doped δ-MnO2 (denoted as MM2.5) exhibited superior NOR performance in 0.1 M KOH, delivering a NO3 production rate of 116.75 μg h−1 mgcat−1 with a Faradaic efficiency (FE) of 7.04% and excellent long-term stability. In addition, a Zn-N2 device was formed with MM2.5 as the anode and Zn plate as the cathode, and the NO3 yield obtained in this device was even higher than 144.5 μg h−1 mgcat−1. However, structural characterization revealed that excessive Mo doping disrupted the δ-MnO2 crystal structure, reducing specific surface area and active sites density. Density functional theory (DFT) calculations demonstrated that Mo doping lowered the Gibbs free energy of the rate−determining step (*N2→*NNOH) from 2.41 eV to 1.94 eV by facilitating electron transfer, thereby optimizing the reaction pathway. This study provides a new strategy for the design of transition metal oxide-based electrocatalysts, as well as the application in artificial nitrogen fixation.
mo掺杂δ-MnO2纳米花能在温和条件下高效氧化成硝酸盐
在温和条件下开发高效的氮氧化反应电催化剂是实现硝酸盐可持续合成的关键。成功制备了不同Mo浓度的Mo掺杂δ-MnO2电催化剂。结构和电化学分析表明,Mo掺杂在通过电子结构调制促进N2吸附和活化的同时,提高了电导率和电化学活性表面积(ECSA)。优化后的2.5% mo掺杂δ-MnO2(记为MM2.5)在0.1 M KOH条件下表现出优异的NOR性能,NO3−产率为116.75 μg h−1 mgcat−1,法拉第效率(FE)为7.04%,长期稳定性良好。此外,还以MM2.5为阳极,Zn板为阴极形成了Zn- n2器件,该器件的NO3−产率甚至高于144.5 μg h−1 mgcat−1。然而,结构表征表明,过量的Mo掺杂破坏了δ-MnO2晶体结构,降低了比表面积和活性位点密度。密度泛函理论(DFT)计算表明,Mo掺杂通过促进电子转移,使速率决定步骤(*N2→*NNOH)的吉布斯自由能从2.41 eV降低到1.94 eV,从而优化了反应途径。本研究为过渡金属氧化物基电催化剂的设计及在人工固氮中的应用提供了新的思路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Inorganic Chemistry Frontiers
Inorganic Chemistry Frontiers CHEMISTRY, INORGANIC & NUCLEAR-
CiteScore
10.40
自引率
7.10%
发文量
587
审稿时长
1.2 months
期刊介绍: The international, high quality journal for interdisciplinary research between inorganic chemistry and related subjects
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