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Microwave-induced defective PdFe/C nano-electrocatalyst for highly efficient alkaline glycerol oxidation reactions

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dc.contributor.author Mphahlele, Nonhlanhla E
dc.contributor.author Ipadeola, AK
dc.contributor.author Haruna, AB
dc.contributor.author Mwonga, PV
dc.contributor.author Modibedi, Remegia M
dc.contributor.author Palaniyandy, Nithyadharseni
dc.contributor.author Billing, C
dc.contributor.author Ozoemena, KI
dc.date.accessioned 2022-07-04T10:23:08Z
dc.date.available 2022-07-04T10:23:08Z
dc.date.issued 2022-03
dc.identifier.citation Mphahlele, N.E., Ipadeola, A., Haruna, A., Mwonga, P., Modibedi, R.M., Palaniyandy, N., Billing, C. & Ozoemena, K. et al. 2022. Microwave-induced defective PdFe/C nano-electrocatalyst for highly efficient alkaline glycerol oxidation reactions. <i>Electrochimica Acta, 409.</i> http://hdl.handle.net/10204/12449 en_ZA
dc.identifier.issn 0013-4686
dc.identifier.issn 1873-3859
dc.identifier.uri https://doi.org/10.1016/j.electacta.2022.139977
dc.identifier.uri http://hdl.handle.net/10204/12449
dc.description.abstract Pd-based mono- and bi-metallic nano-electrocatalysts (Pd/C and PdFe/C) have been synthesized using two different methods for comparison: conventional sodium borohydride (NaBH4) route and microwave-assisted reduction process. The performance of the nano-electrocatalysts is tested for glycerol oxidation reaction (GlyOR) in an alkaline medium. DFT simulation proves that incorporation of Fe to Pd(111) leads to an increased partial density of states (PDOS) compared to Pd alone, confirming the importance for bimetallic nano-electrocatalyst. The adsorption energy of glycerol onto PdFe is slightly weaker (A.E. = -48.89 eV) than the Pd alone (A.E. = -48.60 eV), indicating the ease with which glycerol can be generated at the PdFe surface than at the Pd alone. XRD show that microwave-irradiated samples (Pd(MW) and PdFe(MW)) are more crystalline than the conventional Pd and PdFe. TEM images show that the Pd(MW) and PdFe(MW) have slightly larger particle sizes (5.30 – 7.40 nm) than those from the conventional route (2.48 – 3.02 nm). Nitrogen adsorption-desorption analysis shows that the microwave samples exhibit slightly larger surface area compared to samples from NaBH4 route. Raman and XPS show that Pd(MW) and PdFe(MW) are more prone to defects (i.e., oxygen vacancies) compared to the NaBH4 route. The microwave samples gave the highest electrocatalytic properties toward glycerol than the NaBH4 route (including high electrochemical active surface area, high current density response, high resistance to poisoning due to carbonaceous intermediates arising from the GlyOR, and high conductivity or low interfacial resistance) compared to samples from the conventional NaBH4 method. The findings in this work go a long way to understanding the physico-chemical and electrochemical effects of microwave irradiation on bimetallic electrocatalyst for glycerol oxidation reaction, which open new opportunities for developing high-performance direct alkaline glycerol fuel cells. en_US
dc.format Abstract en_US
dc.language.iso en en_US
dc.relation.uri https://www.sciencedirect.com/science/article/pii/S0013468622001499 en_US
dc.source Electrochimica Acta, 409 en_US
dc.subject Bimetallic nano-electrocatalysts en_US
dc.subject DFT calculation en_US
dc.subject Glycerol oxidation reaction en_US
dc.subject Microwave-assisted synthesis en_US
dc.subject Sodium borohydride method en_US
dc.subject Pd/C and PdFe/C en_US
dc.title Microwave-induced defective PdFe/C nano-electrocatalyst for highly efficient alkaline glycerol oxidation reactions en_US
dc.type Article en_US
dc.description.pages 9pp en_US
dc.description.note © 2022 Elsevier Ltd. All rights reserved. Due to copyright restrictions, the attached PDF file only contains the abstract of the full text item. For access to the full text item, please consult the publisher's website: https://www.sciencedirect.com/science/article/pii/S0013468622001499 en_US
dc.description.cluster Smart Places en_US
dc.description.impactarea Electrochemical Energy en_US
dc.identifier.apacitation Mphahlele, N. E., Ipadeola, A., Haruna, A., Mwonga, P., Modibedi, R. M., Palaniyandy, N., ... Ozoemena, K. (2022). Microwave-induced defective PdFe/C nano-electrocatalyst for highly efficient alkaline glycerol oxidation reactions. <i>Electrochimica Acta, 409</i>, http://hdl.handle.net/10204/12449 en_ZA
dc.identifier.chicagocitation Mphahlele, Nonhlanhla E, AK Ipadeola, AB Haruna, PV Mwonga, Remegia M Modibedi, Nithyadharseni Palaniyandy, C Billing, and KI Ozoemena "Microwave-induced defective PdFe/C nano-electrocatalyst for highly efficient alkaline glycerol oxidation reactions." <i>Electrochimica Acta, 409</i> (2022) http://hdl.handle.net/10204/12449 en_ZA
dc.identifier.vancouvercitation Mphahlele NE, Ipadeola A, Haruna A, Mwonga P, Modibedi RM, Palaniyandy N, et al. Microwave-induced defective PdFe/C nano-electrocatalyst for highly efficient alkaline glycerol oxidation reactions. Electrochimica Acta, 409. 2022; http://hdl.handle.net/10204/12449. en_ZA
dc.identifier.ris TY - Article AU - Mphahlele, Nonhlanhla E AU - Ipadeola, AK AU - Haruna, AB AU - Mwonga, PV AU - Modibedi, Remegia M AU - Palaniyandy, Nithyadharseni AU - Billing, C AU - Ozoemena, KI AB - Pd-based mono- and bi-metallic nano-electrocatalysts (Pd/C and PdFe/C) have been synthesized using two different methods for comparison: conventional sodium borohydride (NaBH4) route and microwave-assisted reduction process. The performance of the nano-electrocatalysts is tested for glycerol oxidation reaction (GlyOR) in an alkaline medium. DFT simulation proves that incorporation of Fe to Pd(111) leads to an increased partial density of states (PDOS) compared to Pd alone, confirming the importance for bimetallic nano-electrocatalyst. The adsorption energy of glycerol onto PdFe is slightly weaker (A.E. = -48.89 eV) than the Pd alone (A.E. = -48.60 eV), indicating the ease with which glycerol can be generated at the PdFe surface than at the Pd alone. XRD show that microwave-irradiated samples (Pd(MW) and PdFe(MW)) are more crystalline than the conventional Pd and PdFe. TEM images show that the Pd(MW) and PdFe(MW) have slightly larger particle sizes (5.30 – 7.40 nm) than those from the conventional route (2.48 – 3.02 nm). Nitrogen adsorption-desorption analysis shows that the microwave samples exhibit slightly larger surface area compared to samples from NaBH4 route. Raman and XPS show that Pd(MW) and PdFe(MW) are more prone to defects (i.e., oxygen vacancies) compared to the NaBH4 route. The microwave samples gave the highest electrocatalytic properties toward glycerol than the NaBH4 route (including high electrochemical active surface area, high current density response, high resistance to poisoning due to carbonaceous intermediates arising from the GlyOR, and high conductivity or low interfacial resistance) compared to samples from the conventional NaBH4 method. The findings in this work go a long way to understanding the physico-chemical and electrochemical effects of microwave irradiation on bimetallic electrocatalyst for glycerol oxidation reaction, which open new opportunities for developing high-performance direct alkaline glycerol fuel cells. DA - 2022-03 DB - ResearchSpace DP - CSIR J1 - Electrochimica Acta, 409 KW - Bimetallic nano-electrocatalysts KW - DFT calculation KW - Glycerol oxidation reaction KW - Microwave-assisted synthesis KW - Sodium borohydride method KW - Pd/C and PdFe/C LK - https://researchspace.csir.co.za PY - 2022 SM - 0013-4686 SM - 1873-3859 T1 - Microwave-induced defective PdFe/C nano-electrocatalyst for highly efficient alkaline glycerol oxidation reactions TI - Microwave-induced defective PdFe/C nano-electrocatalyst for highly efficient alkaline glycerol oxidation reactions UR - http://hdl.handle.net/10204/12449 ER - en_ZA
dc.identifier.worklist 25819 en_US


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