Mo–Ag nanocomposite catalysts for the oxygen evolution reaction
Nanocomposite powders are interesting electrocatalysts for efficient water splitting in alkaline medium. In this work, Mo–Ag nanocomposites were prepared by high energy ball milling of (NH4)6Mo7O24.4H2O and AgNO3 precursors, with subsequent reduction in hydrogen atmosphere. High energy ball milling...
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Published in | The Journal of physics and chemistry of solids Vol. 172; p. 111041 |
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Main Authors | , , , , , , , , , |
Format | Journal Article |
Language | English |
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Elsevier Ltd
01.01.2023
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Abstract | Nanocomposite powders are interesting electrocatalysts for efficient water splitting in alkaline medium. In this work, Mo–Ag nanocomposites were prepared by high energy ball milling of (NH4)6Mo7O24.4H2O and AgNO3 precursors, with subsequent reduction in hydrogen atmosphere. High energy ball milling formed spheres composed of needle-like structures of different sizes. The particle size decreases with increasing the milling time from 20 h to 40 h, with the same trend observed for crystallite sizes. The electrochemical performance for the oxygen evolution reaction (OER) is assessed using linear sweep (LSV) and cyclic (CV) voltammetry, electrochemical impedance spectroscopy (EIS), and chronopotentiometry (CP). The values of overpotential, Tafel slope, double layer capacitance (CDL) and turnover frequency (TOF) of samples milled for 20 h and 40 h are determined to be 350 and 330 mV vs. RHE, 84 and 75 mV dec−1, 5.4 and 6.2 mF cm−2, 3.84 × 10−3 and 6.98 × 10−3 mol O2 s−1, respectively, which suggests an improved electrocatalytic activity for the sample milled for 40 h. The increased surface area dramatically boosts the electrochemical processes with adsorbed species. Chronopotentiometry measurements for 15 h reveal that electrodes exhibit acceptable short-term electrochemical stability. The overall results suggest that Mo–Ag nanocomposites are promising materials for the oxygen evolution reaction, being among the best Mo-based electrocatalysts reported in the literature.
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•Mo–Ag nanocomposite prepared by High Energy Ball Milling followed by H2 reduction.•The nanocomposites exhibited overpotential below 360 mV and excellent short term electrochemical stability for the OER.•The excellent electrochemical properties of Mo–Ag are due to their needle-like structures.•Mo_Ag_40 h shows low overpotential of 330 mV vs RHE at J = 10 mA cm−2. |
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AbstractList | Nanocomposite powders are interesting electrocatalysts for efficient water splitting in alkaline medium. In this work, Mo–Ag nanocomposites were prepared by high energy ball milling of (NH4)6Mo7O24.4H2O and AgNO3 precursors, with subsequent reduction in hydrogen atmosphere. High energy ball milling formed spheres composed of needle-like structures of different sizes. The particle size decreases with increasing the milling time from 20 h to 40 h, with the same trend observed for crystallite sizes. The electrochemical performance for the oxygen evolution reaction (OER) is assessed using linear sweep (LSV) and cyclic (CV) voltammetry, electrochemical impedance spectroscopy (EIS), and chronopotentiometry (CP). The values of overpotential, Tafel slope, double layer capacitance (CDL) and turnover frequency (TOF) of samples milled for 20 h and 40 h are determined to be 350 and 330 mV vs. RHE, 84 and 75 mV dec−1, 5.4 and 6.2 mF cm−2, 3.84 × 10−3 and 6.98 × 10−3 mol O2 s−1, respectively, which suggests an improved electrocatalytic activity for the sample milled for 40 h. The increased surface area dramatically boosts the electrochemical processes with adsorbed species. Chronopotentiometry measurements for 15 h reveal that electrodes exhibit acceptable short-term electrochemical stability. The overall results suggest that Mo–Ag nanocomposites are promising materials for the oxygen evolution reaction, being among the best Mo-based electrocatalysts reported in the literature.
[Display omitted]
•Mo–Ag nanocomposite prepared by High Energy Ball Milling followed by H2 reduction.•The nanocomposites exhibited overpotential below 360 mV and excellent short term electrochemical stability for the OER.•The excellent electrochemical properties of Mo–Ag are due to their needle-like structures.•Mo_Ag_40 h shows low overpotential of 330 mV vs RHE at J = 10 mA cm−2. |
ArticleNumber | 111041 |
Author | Morales, Marco A. Araújo, Allan J.M. Câmara, Nailton T. Raimundo, Rafael A. Lourenço, Cleber S. Gomes, Uílame U. Medeiros, Freud A. Silva, Thayse R. Macedo, Daniel A. Costa, Franciné A. |
Author_xml | – sequence: 1 givenname: Freud A. orcidid: 0000-0002-5832-7300 surname: Medeiros fullname: Medeiros, Freud A. email: freud.medeiros@academico.ifrn.edu.br organization: Mechanical Engineering Postgraduate Program, UFRN, 59078-970, Natal, Brazil – sequence: 2 givenname: Rafael A. orcidid: 0000-0002-9943-9464 surname: Raimundo fullname: Raimundo, Rafael A. email: rar@academico.ufpb.br organization: Department of Physics, UFPB, 58051-900, João Pessoa, Brazil – sequence: 3 givenname: Cleber S. orcidid: 0000-0003-0668-3925 surname: Lourenço fullname: Lourenço, Cleber S. organization: Materials Science and Engineering Postgraduate Program, UFRN, 59078-970, Natal, Brazil – sequence: 4 givenname: Thayse R. surname: Silva fullname: Silva, Thayse R. organization: Materials Science and Engineering Postgraduate Program, UFPB, 58051-900, João Pessoa, Brazil – sequence: 5 givenname: Nailton T. surname: Câmara fullname: Câmara, Nailton T. organization: Federal Institute of Education, Science and Technology of Rio Grande do Norte, IFRN, 59300-000, Caicó, Brazil – sequence: 6 givenname: Allan J.M. surname: Araújo fullname: Araújo, Allan J.M. organization: Centre for Mechanical Technology and Automation – TEMA, Mechanical Engineering Department, University of Aveiro, Aveiro, 3810-193, Portugal – sequence: 7 givenname: Marco A. surname: Morales fullname: Morales, Marco A. organization: Department of Theoretical and Experimental Physics, UFRN, 59078-970, Natal, Brazil – sequence: 8 givenname: Daniel A. orcidid: 0000-0003-0466-1458 surname: Macedo fullname: Macedo, Daniel A. organization: Materials Science and Engineering Postgraduate Program, UFPB, 58051-900, João Pessoa, Brazil – sequence: 9 givenname: Uílame U. surname: Gomes fullname: Gomes, Uílame U. organization: Materials Science and Engineering Postgraduate Program, UFRN, 59078-970, Natal, Brazil – sequence: 10 givenname: Franciné A. orcidid: 0000-0002-7487-8022 surname: Costa fullname: Costa, Franciné A. email: francine.costa@ufrn.br organization: Mechanical Engineering Postgraduate Program, UFRN, 59078-970, Natal, Brazil |
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Keywords | Electrochemical properties Water splitting High energy ball milling Mo-Ag nanocomposite Powders Oxygen evolution reaction (OER) |
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Snippet | Nanocomposite powders are interesting electrocatalysts for efficient water splitting in alkaline medium. In this work, Mo–Ag nanocomposites were prepared by... |
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SubjectTerms | Electrochemical properties High energy ball milling Mo-Ag nanocomposite Powders Oxygen evolution reaction (OER) Water splitting |
Title | Mo–Ag nanocomposite catalysts for the oxygen evolution reaction |
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