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Green and sustainable use of macadamia nuts as support material in Pt-based direct methanol fuel cells

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dc.contributor.author Mojapelo, NA
dc.contributor.author Seroka, Ntalane S
dc.contributor.author Khotseng, L
dc.date.accessioned 2024-07-15T06:02:40Z
dc.date.available 2024-07-15T06:02:40Z
dc.date.issued 2024-05
dc.identifier.citation Mojapelo, N., Seroka, N.S. & Khotseng, L. 2024. Green and sustainable use of macadamia nuts as support material in Pt-based direct methanol fuel cells. <i>Heliyon, 10(9).</i> http://hdl.handle.net/10204/13720 en_ZA
dc.identifier.issn 2405-8440
dc.identifier.uri https://doi.org/10.1016/j.heliyon.2024.e29907
dc.identifier.uri http://hdl.handle.net/10204/13720
dc.description.abstract The successful commercialization of direct methanol fuel cells (DMFCs) is hindered by inadequate methanol oxidation activity and anode catalyst longevity. Efficient and cost-effective electrode materials are imperative in the widespread use of DMFCs. While Platinum (Pt) remains the primary component of anodic methanol oxidation reaction (MOR) electrocatalysts, its utilization alone in DMFC systems is limited due to carbon monoxide (CO) poisoning, instability, methanol crossover, and high cost. These limitations impede the economic feasibility of Pt as an electrocatalyst. Herein, we present the use of powdered activated carbon (PAC) and granular activated carbon (GAC), both sourced from macadamia nut shells (MNS), a type of biomass. These bio-based carbon materials are integrated into hybrid supports with reduced graphene oxide (rGO), aiming to enhance the performance and reduce the production cost of the Pt electrocatalyst. Electrochemical and physicochemical characterizations of the synthesized catalysts, including Pt-rGO/PAC-1:1, Pt-rGO/PAC-1:2, Pt-rGO/GAC-1:1, and Pt-rGO/GAC-1:2, were conducted. X-ray diffraction analysis revealed crystallite sizes ranging from 1.18 nm to 1.68 nm. High-resolution transmission electron microscopy (HRTEM) images with average particle sizes ranging from 1.91 nm to 2.72 nm demonstrated spherical dispersion of Pt nanoparticles with some agglomeration across all catalysts. The electrochemical active surface area (ECSA) was determined, with Pt-rGO/GAC-1:1 exhibiting the highest ECSA of 73.53 m2 g-1. Despite its high ECSA, Pt-rGO/GAC-1:1 displayed the lowest methanol oxidation reaction (MOR) current density, indicating active sites with poor catalytic efficiency. Pt-rGO/PAC-1:1 and Pt-rGO/PAC-1:2 exhibited the highest MOR current densities of 0.77 mA*cm-2 and 0.74 mA*cm-2, respectively. Moreover, Pt-rGO/PAC-1:2 and Pt-rGO/PAC-1:1 demonstrated superior electrocatalytic mass (specific) activities of 7.55 mA/mg (0.025 mA*cm-2) and 7.25 mA/mg (0.021 mA*cm-2), respectively. Chronoamperometry tests revealed Pt-rGO/PAC-1:2 and Pt-rGO/PAC-1:1 as the most stable catalysts. Additionally, they exhibited the lowest charge transfer resistances and highest MOR current densities after durability tests, highlighting their potential for DMFC applications. The synthesized Pt supported on PACs hybrids demonstrated remarkable catalytic performance, stability, and CO tolerance, highlighting their potential for enhancing DMFC efficiency. en_US
dc.format Fulltext en_US
dc.language.iso en en_US
dc.relation.uri https://www.sciencedirect.com/science/article/pii/S2405844024059383?via%3Dihub en_US
dc.source Heliyon, 10(9) en_US
dc.subject Green chemistry en_US
dc.subject Macadamia nuts en_US
dc.subject Biowaste en_US
dc.subject Pt electrocatalysts en_US
dc.subject Direct methanol fuel cells en_US
dc.subject DMFCs en_US
dc.title Green and sustainable use of macadamia nuts as support material in Pt-based direct methanol fuel cells en_US
dc.type Article en_US
dc.description.pages 29 en_US
dc.description.note © 2024 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY-NC license (http://creativecommons.org/licenses/by-nc/4.0/). en_US
dc.description.cluster Smart Places en_US
dc.description.impactarea Electrochemical Energy en_US
dc.identifier.apacitation Mojapelo, N., Seroka, N. S., & Khotseng, L. (2024). Green and sustainable use of macadamia nuts as support material in Pt-based direct methanol fuel cells. <i>Heliyon, 10(9)</i>, http://hdl.handle.net/10204/13720 en_ZA
dc.identifier.chicagocitation Mojapelo, NA, Ntalane S Seroka, and L Khotseng "Green and sustainable use of macadamia nuts as support material in Pt-based direct methanol fuel cells." <i>Heliyon, 10(9)</i> (2024) http://hdl.handle.net/10204/13720 en_ZA
dc.identifier.vancouvercitation Mojapelo N, Seroka NS, Khotseng L. Green and sustainable use of macadamia nuts as support material in Pt-based direct methanol fuel cells. Heliyon, 10(9). 2024; http://hdl.handle.net/10204/13720. en_ZA
dc.identifier.ris TY - Article AU - Mojapelo, NA AU - Seroka, Ntalane S AU - Khotseng, L AB - The successful commercialization of direct methanol fuel cells (DMFCs) is hindered by inadequate methanol oxidation activity and anode catalyst longevity. Efficient and cost-effective electrode materials are imperative in the widespread use of DMFCs. While Platinum (Pt) remains the primary component of anodic methanol oxidation reaction (MOR) electrocatalysts, its utilization alone in DMFC systems is limited due to carbon monoxide (CO) poisoning, instability, methanol crossover, and high cost. These limitations impede the economic feasibility of Pt as an electrocatalyst. Herein, we present the use of powdered activated carbon (PAC) and granular activated carbon (GAC), both sourced from macadamia nut shells (MNS), a type of biomass. These bio-based carbon materials are integrated into hybrid supports with reduced graphene oxide (rGO), aiming to enhance the performance and reduce the production cost of the Pt electrocatalyst. Electrochemical and physicochemical characterizations of the synthesized catalysts, including Pt-rGO/PAC-1:1, Pt-rGO/PAC-1:2, Pt-rGO/GAC-1:1, and Pt-rGO/GAC-1:2, were conducted. X-ray diffraction analysis revealed crystallite sizes ranging from 1.18 nm to 1.68 nm. High-resolution transmission electron microscopy (HRTEM) images with average particle sizes ranging from 1.91 nm to 2.72 nm demonstrated spherical dispersion of Pt nanoparticles with some agglomeration across all catalysts. The electrochemical active surface area (ECSA) was determined, with Pt-rGO/GAC-1:1 exhibiting the highest ECSA of 73.53 m2 g-1. Despite its high ECSA, Pt-rGO/GAC-1:1 displayed the lowest methanol oxidation reaction (MOR) current density, indicating active sites with poor catalytic efficiency. Pt-rGO/PAC-1:1 and Pt-rGO/PAC-1:2 exhibited the highest MOR current densities of 0.77 mA*cm-2 and 0.74 mA*cm-2, respectively. Moreover, Pt-rGO/PAC-1:2 and Pt-rGO/PAC-1:1 demonstrated superior electrocatalytic mass (specific) activities of 7.55 mA/mg (0.025 mA*cm-2) and 7.25 mA/mg (0.021 mA*cm-2), respectively. Chronoamperometry tests revealed Pt-rGO/PAC-1:2 and Pt-rGO/PAC-1:1 as the most stable catalysts. Additionally, they exhibited the lowest charge transfer resistances and highest MOR current densities after durability tests, highlighting their potential for DMFC applications. The synthesized Pt supported on PACs hybrids demonstrated remarkable catalytic performance, stability, and CO tolerance, highlighting their potential for enhancing DMFC efficiency. DA - 2024-05 DB - ResearchSpace DP - CSIR J1 - Heliyon, 10(9) KW - Green chemistry KW - Macadamia nuts KW - Biowaste KW - Pt electrocatalysts KW - Direct methanol fuel cells KW - DMFCs LK - https://researchspace.csir.co.za PY - 2024 SM - 2405-8440 T1 - Green and sustainable use of macadamia nuts as support material in Pt-based direct methanol fuel cells TI - Green and sustainable use of macadamia nuts as support material in Pt-based direct methanol fuel cells UR - http://hdl.handle.net/10204/13720 ER - en_ZA
dc.identifier.worklist 27983 en_US


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