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炭黑载体对溶液等离子体溅射合成的钯纳米颗粒电催化剂析氢反应活性的影响。

Effect of carbon black supports on the hydrogen evolution reaction activity of Pd nanoparticle electrocatalysts synthesized solution plasma sputtering.

作者信息

Chantaramethakul Jidapa, Hussakan Chadapat, Yenmankhong Yanisa, Chandeang Praewpanit, Techapiesancharoenkij Ratchatee, Hirunpinyopas Wisit, Kurniawan Cepi, Panomsuwan Gasidit

机构信息

Department of Materials Engineering, Faculty of Engineering, Kasetsart University Bangkok 10900 Thailand

International Collaborative Education Program for Materials Technology, Education, and Research (ICE-Matter), ASEAN University Network/Southeast Asia Engineering Education Development Network (AUN/SEED-Net), Kasetsart University Bangkok 10900 Thailand.

出版信息

RSC Adv. 2024 Oct 7;14(43):31648-31654. doi: 10.1039/d4ra04809a. eCollection 2024 Oct 1.

DOI:10.1039/d4ra04809a
PMID:39376516
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC11456999/
Abstract

The hydrogen evolution reaction (HER) is a pivotal electrochemical process in water electrolysis, essential for hydrogen production. The efficiency and kinetics of HER are significantly influenced by the choice of catalyst and its support material. In this study, we investigated the effect of carbon supports on palladium (Pd) nanoparticle electrocatalysts synthesized the solution plasma sputtering process for HER. Pd nanoparticles were loaded onto three hierarchically porous carbon black (CB) supports: Vulcan XC-72R, Ketjen Black EC-300J, and Black Pearls 2000. Well-crystalline Pd nanoparticles, ranging in size from approximately 2-6 nm, were distributed on the surface of CB supports with Pd loading contents ranging between 21 and 29 wt%. The catalysts exhibited lower specific surface areas compared to bare CB supports due to a significant decrease in exposed micropores, which were blocked by the Pd nanoparticles at their entrances. Among the CB supports investigated, Pd nanoparticles loaded on Black Pearls 2000 demonstrated the highest HER activity, as evidenced by the lowest overpotential, largest electrochemical surface area, and highest mass activity. This superior activity can be attributed to the unique characteristics of Black Pearls 2000, including its high surface area and abundant micropores. Furthermore, it demonstrated greater HER stability than commercial platinum (Pt)-based catalysts. Our finding suggests that Black Pearls 2000 could serve as a promising CB support for further developing highly efficient and stable HER electrocatalysts.

摘要

析氢反应(HER)是水电解中的一个关键电化学过程,对制氢至关重要。HER的效率和动力学受到催化剂及其载体材料选择的显著影响。在本研究中,我们研究了碳载体对通过溶液等离子体溅射工艺合成的用于HER的钯(Pd)纳米颗粒电催化剂的影响。将Pd纳米颗粒负载到三种分级多孔炭黑(CB)载体上:Vulcan XC - 72R、科琴黑EC - 300J和黑珍珠2000。尺寸约为2 - 6 nm的结晶良好的Pd纳米颗粒分布在CB载体表面,Pd负载量在21至29 wt%之间。由于暴露的微孔显著减少,这些微孔在入口处被Pd纳米颗粒堵塞,与裸CB载体相比,催化剂的比表面积较低。在所研究的CB载体中,负载在黑珍珠2000上的Pd纳米颗粒表现出最高的HER活性,这由最低的过电位、最大的电化学表面积和最高的质量活性证明。这种优异的活性可归因于黑珍珠2000的独特特性,包括其高表面积和丰富的微孔。此外,它还表现出比商业铂(Pt)基催化剂更高的HER稳定性。我们的发现表明,黑珍珠2000可作为一种有前途的CB载体,用于进一步开发高效稳定的HER电催化剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/32cb/11456999/5642b5a04a1a/d4ra04809a-f4.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/32cb/11456999/17bd0e601934/d4ra04809a-f1.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/32cb/11456999/581b911484ed/d4ra04809a-f2.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/32cb/11456999/a49c4385de21/d4ra04809a-f3.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/32cb/11456999/5642b5a04a1a/d4ra04809a-f4.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/32cb/11456999/17bd0e601934/d4ra04809a-f1.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/32cb/11456999/581b911484ed/d4ra04809a-f2.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/32cb/11456999/a49c4385de21/d4ra04809a-f3.jpg
https://cdn.ncbi.nlm.nih.gov/pmc/blobs/32cb/11456999/5642b5a04a1a/d4ra04809a-f4.jpg

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本文引用的文献

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Pt-C interactions in carbon-supported Pt-based electrocatalysts.碳载铂基电催化剂中的铂-碳相互作用
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Confinement of Pt NPs by hollow-porous-carbon-spheres pore regulation with promoted activity and durability in the hydrogen evolution reaction.
中空多孔碳球对铂纳米颗粒的限制:在析氢反应中通过孔调节提高活性和耐久性。
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Electrochemical Stability and Degradation Mechanisms of Commercial Carbon-Supported Gold Nanoparticles in Acidic Media.商业碳载金纳米颗粒在酸性介质中的电化学稳定性及降解机制
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