Zhao Yufei, Zhang Kaixin, Li Yongjia, Li Cheng, Zhao Rui, Ji Yingjie, Meng Yifan, Hu Tianrui, Wang Hao, Yang Zhiyu, Yan Yi-Ming
State Key Lab of Organic-Inorganic Composites, Beijing Advanced Innovation Center for Soft Matter Science and Engineering, Beijing University of Chemical Technology, Beijing 100029, People's Republic of China.
ACS Appl Mater Interfaces. 2021 Nov 3;13(43):51643-51651. doi: 10.1021/acsami.1c12637. Epub 2021 Oct 21.
Direct formate fuel cells (DFFCs) as promising energy technologies have been applied for portable and wearable devices. However, for the formate oxidation reaction (FOR), the deficiency of catalysts has prevented DFFCs from practical applications. Herein, we prepared a Pd-loaded CeO catalyst through a simple steam treatment at 400 °C to enhance the catalytic FOR performance. In comparison with the counterpart of Pd/CeO without stream treatment, the as-prepared Pd/CeO-ST catalyst has a lower onset potential of 381 mV and a lower peak potential of 0.64 V with a higher peak current of 10.62 mA cm. The experimental results show that the enhanced FOR properties of Pd/CeO-ST are ascribed to the introduction of surface reactive oxygen species to the CeO substrate, which substantially promotes the desorption of adsorbed hydrogen (H*) intermediates. Density functional theory (DFT) calculations reveal that on the surface of CeO, the abundant oxygen vacancies boost the OH* adsorption ability and accelerate the kinetics of the potential-limiting step. This work not only proposes a new strategy for enhancing the activity of FOR catalysts but also highlights the understanding of the FOR mechanism in alkaline media for DFFC applications.
直接甲酸燃料电池(DFFCs)作为一种很有前景的能源技术,已被应用于便携式和可穿戴设备。然而,对于甲酸氧化反应(FOR),催化剂的不足阻碍了DFFCs的实际应用。在此,我们通过在400℃下进行简单的蒸汽处理制备了负载钯的CeO催化剂,以提高催化FOR性能。与未经蒸汽处理的Pd/CeO对应物相比,所制备的Pd/CeO-ST催化剂具有更低的起始电位381 mV和更低的峰值电位0.64 V,且峰值电流更高,为10.62 mA cm。实验结果表明,Pd/CeO-ST增强的FOR性能归因于向CeO基底引入了表面活性氧物种,这极大地促进了吸附氢(H*)中间体的解吸。密度泛函理论(DFT)计算表明,在CeO表面,丰富的氧空位提高了OH*吸附能力,并加速了限速步骤的动力学。这项工作不仅提出了一种提高FOR催化剂活性的新策略,还突出了对碱性介质中DFFC应用的FOR机理的理解。