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利用原位拉曼光谱和X射线吸收光谱解析高熵电催化剂中间接亚硝酸盐还原为氨的过程

Deciphering Indirect Nitrite Reduction to Ammonia in High-Entropy Electrocatalysts Using In Situ Raman and X-ray Absorption Spectroscopies.

作者信息

Begildayeva Talshyn, Theerthagiri Jayaraman, Limphirat Wanwisa, Min Ahreum, Kheawhom Soorathep, Choi Myong Yong

机构信息

Department of Chemistry (BK21 FOUR), Research Institute of Natural Sciences, Gyeongsang National University, Jinju, 52828, Republic of Korea.

Beamline Operation Division, Synchrotron Light Research Institute (SLRI), Nakhon Ratchasima, 30000, Thailand.

出版信息

Small. 2024 Jul;20(29):e2400538. doi: 10.1002/smll.202400538. Epub 2024 Apr 11.

Abstract

This research adopts a new method combining calcination and pulsed laser irradiation in liquids to induce a controlled phase transformation of Fe, Co, Ni, Cu, and Mn transition-metal-based high-entropy Prussian blue analogs into single-phase spinel high-entropy oxide and face-centered cubic high-entropy alloy (HEA). The synthesized HEA, characterized by its highly conductive nature and reactive surface, demonstrates exceptional performance in capturing low-level nitrite (NO ) in an electrolyte, which leads to its efficient conversion into ammonium (NH ) with a Faradaic efficiency of 79.77% and N selectivity of 61.49% at -0.8 V versus Ag/AgCl. In addition, the HEA exhibits remarkable durability in the continuous nitrite reduction reaction (NO RR), converting 79.35% of the initial NO into NH with an impressive yield of 1101.48 µm h cm. By employing advanced X-ray absorption and in situ electrochemical Raman techniques, this study provides insights into the indirect NO RR, highlighting the versatility and efficacy of HEA in sustainable electrochemical applications.

摘要

本研究采用一种新方法,即将煅烧与液体中的脉冲激光辐照相结合,以诱导铁、钴、镍、铜和锰过渡金属基高熵普鲁士蓝类似物可控相转变为单相尖晶石高熵氧化物和面心立方高熵合金(HEA)。合成的HEA具有高导电性和活性表面的特点,在捕获电解液中的低浓度亚硝酸盐(NO )方面表现出卓越性能,这使其在相对于Ag/AgCl为 -0.8 V时能以79.77%的法拉第效率和61.49%的N选择性高效转化为铵(NH )。此外,HEA在连续亚硝酸盐还原反应(NO RR)中表现出显著的耐久性,将79.35%的初始NO 转化为NH ,产率高达1101.48 µm h cm 。通过采用先进的X射线吸收和原位电化学拉曼技术,本研究深入了解了间接NO RR,突出了HEA在可持续电化学应用中的多功能性和有效性。

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