Ease of Electrochemical Arsenate Dissolution from FeAsO4 Microparticles during Alkaline Oxygen Evolution Reaction

IF 3.3 Q2 CHEMISTRY, MULTIDISCIPLINARY ACS Organic & Inorganic Au Pub Date : 2023-05-27 DOI:10.1021/acsorginorgau.3c00007
Mrinal Kanti Adak, Hirak Kumar Basak and Biswarup Chakraborty*, 
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引用次数: 2

Abstract

Transition metal-based ABO4-type materials have now been paid significant attention due to their excellent electrochemical activity. However, a detailed study to understand the active species and its electro-evolution pathway is not traditionally performed. Herein, FeAsO4, a bimetallic ABO4-type oxide, has been prepared solvothermally. In-depth microscopic and spectroscopic studies showed that the as-synthesized cocoon-like FeAsO4 microparticles consist of several small individual nanocrystals with a mixture of monoclinic and triclinic phases. While depositing FeAsO4 on three-dimensional nickel foam (NF), it can show oxygen evolution reaction (OER) in a moderate operating potential. During the electrochemical activation of the FeAsO4/NF anode through cyclic voltammetric (CV) cycles prior to the OER study, an exponential increment in the current density (j) was observed. An ex situ Raman study with the electrode along with field emission scanning electron microscopy imaging showed that the pronounced OER activity with increasing number of CV cycles is associated with a rigorous morphological and chemical change, which is followed by [AsO4]3– leaching from FeAsO4. A chronoamperometric study and subsequent spectro- and microscopic analyses of the isolated sample from the electrode show an amorphous γ-FeO(OH) formation at the constant potential condition. The in situ formation of FeO(OH)ED (ED indicates electrochemically derived) shows better activity compared to pristine FeAsO4 and independently prepared FeO(OH). Tafel, impedance spectroscopic study, and determination of electrochemical surface area have inferred that the in situ formed FeO(OH)ED shows better electro-kinetics and possesses higher surface active sites compared to its parent FeAsO4. In this study, the electrochemical activity of FeAsO4 has been correlated with its structural integrity and unravels its electro-activation pathway by characterizing the active species for OER.

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碱性析氧反应中feoso4微颗粒中砷酸盐的电化学溶解
过渡金属基ABO4型材料由于其优异的电化学活性而受到广泛关注。然而,传统上并没有进行详细的研究来了解活性物种及其电进化途径。本文采用溶剂热法制备了ABO4型双金属氧化物FeAsO4。深入的显微镜和光谱研究表明,合成的茧状FeAsO4微粒由几个具有单斜相和三斜相混合物的小的单个纳米晶体组成。在三维泡沫镍(NF)上沉积FeAsO4时,它可以在中等的操作电位下表现出析氧反应(OER)。在OER研究之前,通过循环伏安(CV)循环对FeAsO4/NF阳极进行电化学活化的过程中,观察到电流密度(j)呈指数增加。电极的非原位拉曼研究以及场发射扫描电子显微镜成像表明,随着CV循环次数的增加,显著的OER活性与严格的形态和化学变化有关,随后是从FeAsO4中浸出[AsO4]3。计时电流法研究和随后对电极分离样品的光谱和显微镜分析显示,在恒定电位条件下形成了无定形γ-FeO(OH)。与原始FeAsO4和独立制备的FeO(OH)相比,FeO(OH-ED的原位形成(ED表示电化学衍生的)显示出更好的活性。Tafel、阻抗谱研究和电化学表面积的测定表明,与母体FeAsO4相比,原位形成的FeO(OH)ED表现出更好的电化学性能,并具有更高的表面活性位点。在本研究中,FeAsO4的电化学活性与其结构完整性相关,并通过表征OER的活性物种来揭示其电活化途径。
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ACS Organic & Inorganic Au
ACS Organic & Inorganic Au 有机化学、无机化学-
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期刊介绍: ACS Organic & Inorganic Au is an open access journal that publishes original experimental and theoretical/computational studies on organic organometallic inorganic crystal growth and engineering and organic process chemistry. Short letters comprehensive articles reviews and perspectives are welcome on topics that include:Organic chemistry Organometallic chemistry Inorganic Chemistry and Organic Process Chemistry.
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