Wu Wei, Zhang Zeyi, Lei Zhao, Wang Xiaoyue, Tan Yangyang, Cheng Niancai, Sun Xueliang
College of Materials Science and Engineering, Fuzhou University, Fuzhou, 350108, China.
Key Laboratory of Eco-materials Advanced Technology, Fuzhou University, Fuzhou, 350108, China.
ACS Appl Mater Interfaces. 2020 Mar 4;12(9):10359-10368. doi: 10.1021/acsami.9b20781. Epub 2020 Feb 18.
The development of highly active and stable electrocatalysts toward oxygen reduction reaction (ORR) and hydrogen evolution reaction (HER) is a key for commercial application of fuel cells and water splitting. Here, we report a highly active and stable Pt nanoparticles (NPs) encapsulated in ultrathin two-dimensional (2D) carbon layers derived from the ultrathin 2D metal-organic framework precursor (ZIF-67). Electrochemical tests reveal that our approach not only stabilized Pt NPs successfully but also boosted Pt activities toward ORR and HER. We found that our Pt catalysts encapsulated in ultrathin 2D carbon layers exhibited an ORR activity of 5.9 and 12 times greater than those of the commercial Pt/C and Pt/RGO without 2D carbon layer protection. Our encapsulated Pt catalysts also show more than nine times higher stability than those of Pt/C catalysts. In addition to ORR, our novel encapsulated Pt catalysts display an extraordinary stability and activity toward HER, with a lower overpotential (14.3 mV in acidic media and 37.2 mV in alkaline media) at a current density of 10 mA cm than Pt/C catalysts (23.1 mV in acidic media and 92.1 mV in alkaline media). The enhanced electrochemical activities and stability of our encapsulated Pt catalysts are attributed to the synergistic effect of Pt-based NPs and ultrathin 2D carbon layers derived from ZIF-67 with enriched active sites Co-N. First-principles simulations reveal that the synergistic catalysis of Pt-based NPs and Co-N derived from ZIF-67 improves the activity for ORR and HER.
开发对氧还原反应(ORR)和析氢反应(HER)具有高活性和稳定性的电催化剂是燃料电池和水分解商业化应用的关键。在此,我们报道了一种由超薄二维(2D)金属有机框架前驱体(ZIF-67)衍生而来的,封装在超薄二维碳层中的高活性且稳定的铂纳米颗粒(NPs)。电化学测试表明,我们的方法不仅成功稳定了铂纳米颗粒,还提高了铂对ORR和HER的活性。我们发现,封装在超薄二维碳层中的铂催化剂的ORR活性分别比没有二维碳层保护的商业Pt/C和Pt/RGO高5.9倍和12倍。我们封装的铂催化剂的稳定性也比Pt/C催化剂高九倍以上。除了ORR,我们新型的封装铂催化剂对HER也表现出非凡的稳定性和活性,在电流密度为(10 mA cm^{-2})时,其过电位(酸性介质中为14.3 mV,碱性介质中为37.2 mV)低于Pt/C催化剂(酸性介质中为23.1 mV,碱性介质中为92.1 mV)。我们封装的铂催化剂增强后的电化学活性和稳定性归因于铂基纳米颗粒与源自ZIF-67且具有丰富活性位点Co-N的超薄二维碳层的协同效应。第一性原理模拟表明,铂基纳米颗粒与源自ZIF-67的Co-N的协同催化提高了ORR和HER的活性。