Rational Synthesis of Mixed Metal Oxide Clusters Supported on a Partially Etched MAX Phase for Efficient Electrocatalytic CO2 Conversion
Author | Sliem, Mostafa H. |
Author | Kannan, Karthik |
Author | Maurya, Muni Raj|Jlassi, Khouloud |
Author | Sadasivuni, Kishor Kumar |
Author | Kumar, Bijandra |
Author | Abdullah, Aboubakr M. |
Available date | 2022-03-23T06:35:42Z |
Publication Date | 2022 |
Publication Name | Topics in Catalysis |
Resource | Scopus |
Identifier | http://dx.doi.org/10.1007/s11244-021-01528-8 |
Citation | Sliem, M.H., Kannan, K., Maurya, M.R. et al. Rational Synthesis of Mixed Metal Oxide Clusters Supported on a Partially Etched MAX Phase for Efficient Electrocatalytic CO2 Conversion. Top Catal (2022). https://doi.org/10.1007/s11244-021-01528-8 |
Abstract | The precise fabrication of an efficient catalyst for CO2 conversion into beneficial hydrocarbons is particularly interesting for industrial and environmental applications. Herein, a three-dimensional (3D) hybrid of metal oxide clusters on a partially etched MAX phase (MxOy/MAX hybrid) is presented for efficient electrochemical reduction (eCR) of CO2 into renewable carbonaceous fuels. A scalable hydrothermal method is adopted for the controlled in-situ growth of CuO and NiO nanoparticle on a partially etched MAX phase framework. The structural, elemental and morphological analysis is performed by XRD, XPS, FTIR, SEM and TEM characterization. The CO2 eCR study on MxOy/MAX hybrid was conducted under ambient conditions. The 3D MxOy/MAX hybrid exhibited significantly improved eCR performance compared to the pristine MAX phase. The 3D MxOy/MAX scaffold with an intercalated network of mixed metal oxides affords a high surface area, ion diffusion, increased redox- active sites and improved conductivity that facilitate excellent catalytic activity. Moreover, the MxOy/MAX hybrid shows high structural stability and durability. |
Sponsor | This work was supported by the NPRP11S-1221-170116 from the Qatar National Research Fund (a member of Qatar Foundation). The statements made herein are exclusively the accountability of the authors. |
Language | en |
Publisher | Springer |
Subject | Electrochemical CO2 reduction Hydrothermal method MAX phase Metal oxide |
Type | Article |
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Mechanical & Industrial Engineering [1396 items ]