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金属有机框架多晶型对CeO析氧电催化性能的影响

Impact of the Metal-Organic Frameworks Polymorphism on the Electrocatalytic Properties of CeO toward Oxygen Evolution.

作者信息

Mendes Nicolle Pauline de Araújo, Souto Neto Antonio Lopes de, Hortêncio Johnnys da Silva, Menezes de Oliveira André L, Raimundo Rafael A, Macedo Daniel Araújo, da Silva Fausthon Fred

机构信息

Departamento de Química, Universidade Federal da Paraíba (UFPB), 58.051-900 João Pessoa, Paraíba, Brazil.

Núcleo de Pesquisa e Extensão LACOM, Departamento de Química, Universidade Federal da Paraíba, 52051-85 João Pessoa, Paraíba, Brazil.

出版信息

ACS Omega. 2024 Nov 29;9(50):49913-49924. doi: 10.1021/acsomega.4c08837. eCollection 2024 Dec 17.

Abstract

Hydrogen (H) is a viable alternative as a sustainable energy source, however, new highly efficient electrocatalysts for water splitting are still a research challenge. In this context, metal-organic frameworks (MOFs)-derived nanomaterials are prominent high-performance electrocatalysts for hydrogen production, especially in the oxygen evolution reaction (OER). Here, a new synthesis of two cerium oxide (CeO) electrocatalysts using Ce-succinates MOFs as templates is proposed. The cerium succinates polymorphs ([Ce(Succ)(HO)], Succ = succinate ligand) were obtained via hydrothermal reaction and room temperature crystallization, adopting monoclinic (/2) and triclinic (1̅) crystalline structures, respectively, confirmed by X-ray diffraction (XRD). MOFs-Ce were also characterized by infrared spectroscopy (FT-IR) and scanning electron microscopy (SEM). CeO electrocatalysts were obtained via MOFs-Ce calcination at 350 °C in air, and characterized by XRD with Rietveld refinement, HRTEM, SEM, FT-IR, and Raman spectroscopy, UV-vis spectroscopy, X-ray photoelectron spectroscopy. Electrocatalytic performances were investigated in KOH 1.0 M solution, and overpotentials were η = 326 mV (for CeO (H) from monoclinic MOF-Ce) and η = 319 mV (for CeO (RT) from the triclinic MOF-Ce) for a current density of 10 mAcm. The Tafel slope values show the adsorption of intermediate oxygenated species as the rate-determining step. The high values of double-layer capacitance, the presence of oxygen vacancies, and low charge transfer resistance agree with the high performance in OER. Additionally, the materials were stable for up to 24 h, according to chronopotentiometry results.

摘要

氢(H)作为一种可持续能源是一种可行的替代方案,然而,用于水分解的新型高效电催化剂仍然是一个研究挑战。在这种背景下,金属有机框架(MOFs)衍生的纳米材料是用于制氢的突出高性能电催化剂,特别是在析氧反应(OER)中。在此,提出了一种以铈琥珀酸盐MOFs为模板合成两种氧化铈(CeO)电催化剂的新方法。通过水热反应和室温结晶分别获得了铈琥珀酸盐多晶型物([Ce(Succ)(H₂O)],Succ = 琥珀酸配体),采用单斜晶系(P2/ n)和三斜晶系(P1̅)晶体结构,经X射线衍射(XRD)确认。MOFs-Ce还通过红外光谱(FT-IR)和扫描电子显微镜(SEM)进行了表征。通过在空气中350℃煅烧MOFs-Ce获得CeO电催化剂,并通过带有Rietveld精修的XRD、高分辨率透射电子显微镜(HRTEM)、SEM、FT-IR和拉曼光谱、紫外可见光谱、X射线光电子能谱进行了表征。在1.0 M KOH溶液中研究了电催化性能,对于10 mAcm⁻²的电流密度,过电位分别为η = 326 mV(对于来自单斜晶系MOF-Ce的CeO(H))和η = 319 mV(对于来自三斜晶系MOF-Ce的CeO(RT))。塔菲尔斜率值表明中间氧化态物种的吸附是速率决定步骤。双层电容的高值、氧空位的存在和低电荷转移电阻与OER中的高性能一致。此外,根据计时电位法结果,材料在长达24小时内保持稳定。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cdb2/11656357/5f44873f1139/ao4c08837_0001.jpg

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