柑桔皮衍生碳负载PtPd催化剂在碱性介质中电氧化甘油。

IF 2.8 4区 化学 Q2 CHEMISTRY, MULTIDISCIPLINARY
Juan Manuel Sieben, Andrea E. Alvarez, Myriam Torres García, Diana M. Arciniegas Jaimes, Noelia Bajales Luna, Elizabeth Laura Moyano
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引用次数: 0

摘要

在这项工作中,通过快速热解合成柑橘皮衍生的生物碳,测试了PtPd纳米颗粒在碱性电解质中电化学氧化甘油的载体材料。在300°C(橘子皮衍生生物碳(BCM)-300)和500°C (BCM-500)下合成的生物碳具有良好的电子导电性和足够的表面性能。采用脉冲微波辅助多元醇法制备了平均尺寸为3.5 ~ 3.9 nm、Pt:Pd比为3:1的双金属PtPd纳米颗粒。电化学实验表明,负载在生物炭上的PtPd颗粒的甘油氧化反应的质量比活性高于沉积在火神炭黑上的双金属催化剂。此外,与支撑在商业碳材料上的双金属颗粒相比,沉积在生物碳上的催化剂具有更低的电位启动、更低的表观活化能和更低的电荷转移电阻。PtPd/BCM-300和PtPd/BCM-500催化剂优异的电催化性能归因于双金属颗粒与生物碳之间的协同作用,通过电子效应和双功能机制促进甘油氧化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Mandarin Peel-Derived Carbon-Supported PtPd Catalysts for the Electro-Oxidation of Glycerol in Alkaline Medium

Mandarin Peel-Derived Carbon-Supported PtPd Catalysts for the Electro-Oxidation of Glycerol in Alkaline Medium

In this work, mandarin peel-derived biocarbons synthesized by fast pyrolysis are tested as support materials for PtPd nanoparticles for the electrochemical oxidation of glycerol in an alkaline electrolyte. The biocarbons, synthesized at 300 °C (mandarin peel-derived biocarbons (BCM)-300) and 500 °C (BCM-500), present good electronic conductivities and adequate surface properties. Bimetallic PtPd nanoparticles with average sizes between 3.5 and 3.9 nm and a Pt:Pd ratio of 3:1 are deposited over the biocarbons by a pulse microwave-assisted polyol method. The electrochemical experiments show that the mass-specific activity for the glycerol oxidation reaction of the PtPd particles supported over the biocarbons is higher than that reported for the bimetallic catalyst deposited over Vulcan carbon black. In addition, the catalyst deposited over the biocarbons presents lower potential onsets, lower apparent activation energies, and lower charge transfer resistances compared to the bimetallic particles supported over the commercial carbon material. The superior electrocatalytic performance of PtPd/BCM-300 and PtPd/BCM-500 catalysts is attributed to the synergistic effect between the bimetallic particles and the biocarbons, which promotes glycerol oxidation through both the electronic effects and the bifunctional mechanism.

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来源期刊
ChemPlusChem
ChemPlusChem CHEMISTRY, MULTIDISCIPLINARY-
CiteScore
5.90
自引率
0.00%
发文量
200
审稿时长
1 months
期刊介绍: ChemPlusChem is a peer-reviewed, general chemistry journal that brings readers the very best in multidisciplinary research centering on chemistry. It is published on behalf of Chemistry Europe, an association of 16 European chemical societies. Fully comprehensive in its scope, ChemPlusChem publishes articles covering new results from at least two different aspects (subfields) of chemistry or one of chemistry and one of another scientific discipline (one chemistry topic plus another one, hence the title ChemPlusChem). All suitable submissions undergo balanced peer review by experts in the field to ensure the highest quality, originality, relevance, significance, and validity.
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