Bai Ping, Wang Peng, Mu Jiarong, Xie Zhinan, Du Chunfang, Su Yiguo
Inner Mongolia Key Laboratory of Chemistry and Physics of Rare Earth Materials, School of Chemistry and Chemical Engineering, Inner Mongolia University, Hohhot 010021, People's Republic of China.
ACS Appl Mater Interfaces. 2023 Jul 26;15(29):35117-35127. doi: 10.1021/acsami.3c07839. Epub 2023 Jul 17.
This work reports a new type of platinum-based heterostructural electrode catalyst that highly dispersed PtCo alloy nanoparticles (NPs) confined in cobalt benzoate (Co-BA) nanowires are supported on a nitrogen-doped ultra-thin carbon nanosheet/FeC hybrid (PtCo@Co-BA-FeC/NC) to show high electrochemical activity and long-term stability. One-dimensional Co-BA nanowires could alleviate the shedding and agglomeration of PtCo alloy NPs during the reaction so as to achieve satisfactory long-term durability. Moreover, the synergistic effect at the interface optimizes the surface electronic structure and prominently accelerates the electrochemical kinetics. The oxygen reduction reaction half-wave potential is 0.923 V, and the oxygen evolution reaction under the condition of 10 mA•cm is 1.48 V. Higher power density (263.12 mW•cm), narrowed voltage gap (0.49 V), and specific capacity (808.5 mAh•g) for PtCo@Co-BA-FeC/NC in Zn-air batteries are achieved with long-term cycling measurements over 776 h, which is obviously better than the Pt/C + RuO catalyst. The interfacial electronic interaction of PtCo@Co-BA-FeC/NC is investigated, which can accelerate electron transfer from Fe to Pt. Density functional theory calculations also indicate that the interfacial potential regulates the binding energies of the intermediates to achieve the best performance.
这项工作报道了一种新型的铂基异质结构电极催化剂,该催化剂是将高度分散在苯甲酸钴(Co-BA)纳米线中的PtCo合金纳米颗粒(NPs)负载在氮掺杂超薄碳纳米片/FeC杂化物(PtCo@Co-BA-FeC/NC)上,以展现出高电化学活性和长期稳定性。一维Co-BA纳米线可以减轻反应过程中PtCo合金NPs的脱落和团聚,从而实现令人满意的长期耐久性。此外,界面处的协同效应优化了表面电子结构,并显著加速了电化学动力学。氧还原反应半波电位为0.923 V,在10 mA•cm条件下的析氧反应为1.48 V。通过超过776 h的长期循环测量,PtCo@Co-BA-FeC/NC在锌空气电池中实现了更高的功率密度(263.12 mW•cm)、更窄的电压间隙(0.49 V)和比容量(808.5 mAh•g),这明显优于Pt/C + RuO催化剂。研究了PtCo@Co-BA-FeC/NC的界面电子相互作用,其可以加速电子从Fe转移到Pt。密度泛函理论计算还表明,界面电位调节中间体的结合能以实现最佳性能。