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利用中空石墨碳纳米笼与铂钌纳米颗粒增强甲醇氧化的潜力

Harnessing the Potential of Hollow Graphitic Carbon Nanocages for Enhanced Methanol Oxidation Using PtRu Nanoparticles.

作者信息

Ramli Zatil Amali Che, Pasupuleti Jagadeesh, Kamarudin Siti Kartom, Zainoodin Azran Mohd, Isahak Wan Nor Roslam Wan, Koh S P, Kiong Sieh Tiong

机构信息

Institute of Sustainable Energy (ISE), Universiti Tenaga Nasional (UNITEN), Putrajaya Campus, Jalan IKRAM-UNITEN, Kajang 43000, Selangor, Malaysia.

Fuel Cell Institute, Universiti Kebangsaan Malaysia, Bangi 43600, Selangor, Malaysia.

出版信息

Polymers (Basel). 2024 Sep 24;16(19):2684. doi: 10.3390/polym16192684.

Abstract

Direct Methanol Fuel Cell (DMFC) is a powerful system for generating electrical energy for various applications. However, there are several limitations that hinder the commercialization of DMFCs, such as the expense of platinum (Pt) at market price, sluggish methanol oxidation reaction (MOR) due to carbon monoxide (CO) formation, and slow electrooxidation kinetics. This work introduces carbon nanocages (CNCs) that were obtained through the pyrolysis of polypyrrole (Ppy) as the carbon source. The CNCs were characterized using BET, XRD, HRTEM, TEM, SEM, and FTIR techniques. The CNCs derived from the Ppy source, pyrolyzed at 750 °C, exhibited the best morphologies with a high specific surface area of 416 mg, allowing for good metal dispersion. Subsequently, PtRu catalyst was doped onto the CNC-Ppy750 support using chemical reduction and microwave-assisted methods. In electrochemical tests, the PtRu/CNC-Ppy750 electrocatalyst demonstrated improved CO tolerance and higher performance in MOR compared to PtRu-supported commercial carbon black (CB), with values of 427 mA mg and 248 mA mg, respectively. The superior MOR performance of PtRu/CNC-Ppy750 was attributed to its high surface area of CNC support, uniform dispersion of PtRu catalyst, and small PtRu nanoparticles on the CNC. In DMFC single-cell tests, the PtRu/CNC-Ppy750 exhibited higher performance, approximately 1.7 times higher than PtRu/CB. In conclusion, the PtRu/CNC-PPy750 represents a promising electrocatalyst candidate for MOR and anodic DMFC applications.

摘要

直接甲醇燃料电池(DMFC)是一种为各种应用发电的强大系统。然而,存在一些限制阻碍了DMFC的商业化,例如市场价格的铂(Pt)成本高昂、由于一氧化碳(CO)形成导致甲醇氧化反应(MOR)迟缓以及电氧化动力学缓慢。这项工作引入了通过聚吡咯(Ppy)热解作为碳源获得的碳纳米笼(CNC)。使用BET、XRD、HRTEM、TEM、SEM和FTIR技术对CNC进行了表征。源自Ppy源且在750℃热解的CNC表现出最佳形态,具有416mg的高比表面积,有利于良好的金属分散。随后,采用化学还原和微波辅助方法将PtRu催化剂掺杂到CNC - Ppy750载体上。在电化学测试中,与负载在商用炭黑(CB)上的PtRu相比,PtRu/CNC - Ppy750电催化剂表现出更高的CO耐受性和在MOR中的更高性能,其值分别为427mA mg和248mA mg。PtRu/CNC - Ppy750优异的MOR性能归因于其CNC载体的高表面积、PtRu催化剂的均匀分散以及CNC上的小PtRu纳米颗粒。在DMFC单电池测试中,PtRu/CNC - Ppy750表现出更高的性能,比PtRu/CB高出约1.7倍。总之,PtRu/CNC - PPy750是MOR和阳极DMFC应用中一种有前景的电催化剂候选物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/30b5/11478971/37f2975084d6/polymers-16-02684-g001.jpg

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