金属间PtTe金属烯甲酸氧化辅助电催化硝酸还原

Energy Lab Pub Date : 1900-01-01 DOI:10.54227/elab.20220022
Fumin Li, Yu Chen
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引用次数: 9

摘要

开发高效的硝酸选择性电还原电催化剂具有重要意义。本文采用简单液相化学还原法制备了具有原子厚度的超薄金属间铂碲金属烯(PtTe-ML)。Te原子的引入会大大削弱Pt对析氢反应的催化活性。PtTe-ML对硝酸还原反应(NO3−-ERR)的催化活性优于Pt黑。在0.5 M H2SO4溶液中,在- 0.04 V电位下,PtTe-ML对NO3 -ERR的有效氨(NH3)产率为2.32 mg h−1 mgcat−1,Faradic效率为95.5%。同时,Te原子的进入分离了连续Pt活性位点,增加了甲酸氧化反应(FAOR)直接脱氢途径的比例。因此,由于优化了FAOR通路,PtTe-ML也表现出优异的FAOR活性。然后,利用低阳极氧化电位的阳极FAOR取代动力学缓慢的析氧反应,从而有效降低常规电化学制NH3的总电解电压。因此,双功能PtTe-ML电催化剂只需要0.4 V的总电压就可以用于FAOR辅助NH3的电生产。这项工作证明了一种反应耦合策略,可以显着提高电化学合成中电能的利用率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Intermetallic PtTe metallene for formic acid oxidation assisted electrocatalytic nitrate reduction
Development of highly efficient electrocatalysts for selective electroreduction of nitrate is of great significance. In this work, the ultrathin intermetallic platinum-tellurium metallene (PtTe-ML) with atomic thickness is synthesized by simple liquid-phase chemical reduction. The introduction of Te atoms can sharply weaken the catalytic activity of Pt for the hydrogen evolution reaction. And, PtTe-ML exhibits superior catalytic activity for the nitrate reduction reaction (NO3−-ERR) than Pt black. In 0.5 M H2SO4 solution, PtTe-ML achieves an effective ammonia (NH3) production rate of 2.32 mg h−1 mgcat−1 and a Faradic efficiency of 95.5% at −0.04 V potential for NO3−-ERR. Meanwhile, the entry of Te atom isolates the continuous Pt active site and increases the proportion of the direct dehydrogenation pathway of the formic acid oxidation reaction (FAOR). Therefore, PtTe-ML also exhibits excellent FAOR activity due to the optimization of FAOR pathway. Then, anodic FAOR with low anodic oxidation potential is used to replace the oxygen evolution reaction with slow kinetic, so that the total electrolytic voltage of conventional electrochemical NH3 production can be effectively reduced. Consequently, the bifunctional PtTe-ML electrocatalyst requires only 0.4 V total voltage for FAOR assisted NH3 electroproduction. This work demonstrates a reaction coupling strategy to significantly improve the utilization rate of electric energy in electrochemical synthesis.
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