Lee Jinhee, Kim Miso, Lee Bongho, Jang Jeonghee, Lee Suhwan, You Dae Jong, Song Juseok, Jung Namgee
Carbon Inc., 4, Techno 2-ro, Yoseong-gu, Daejeon 34015, Republic of Korea.
Graduate School of Energy Science and Technology (GEST), Chungnam National University, 99 Daehak-ro, Yuseong-gu, Daejeon 34134, Republic of Korea.
Nanomaterials (Basel). 2025 Apr 26;15(9):657. doi: 10.3390/nano15090657.
In polymer electrolyte membrane fuel cells (PEMFCs), substantial efforts have been made to focus on Pt and Pt alloy catalysts to enhance their catalytic performance. However, these catalysts still fail to meet practical requirements and existing PtCo catalysts face durability issues due to structural limitations. In this study, carbon-supported hybrid PtCo alloy catalysts (H-PtCo) with improved activity and durability are synthesized by reducing Co precursors onto pre-formed colloidal Pt nanoparticles. Elemental mapping via transmission electron microscopy reveals that the H-PtCo catalysts exhibit a high concentration of Co atoms near the sub-surface. This Co enrichment results from the conformal deposition of Co atoms onto Pt nanoparticles, followed by high-temperature treatment. Electrochemical characterizations, including linear sweep voltammetry (LSV) and accelerated durability test (ADT), demonstrate that the H-PtCo catalysts outperform conventional PtCo alloys (C-PtCo), synthesized via the co-reduction method of Pt and Co, in terms of oxygen reduction reaction (ORR) activity and stability. Furthermore, single-cell tests reveal that the H-PtCo catalysts significantly enhance both performance and durability compared to C-PtCo and Pt catalysts. These findings emphasize the critical role of Co atom distribution within PtCo nanoparticles in improving catalytic efficiency and long-term stability.
在聚合物电解质膜燃料电池(PEMFC)中,人们付出了巨大努力来聚焦于铂(Pt)和铂合金催化剂,以提高其催化性能。然而,这些催化剂仍无法满足实际需求,并且现有的铂钴(PtCo)催化剂由于结构限制而面临耐久性问题。在本研究中,通过将钴前驱体还原到预先形成的胶体铂纳米颗粒上,合成了具有改进活性和耐久性的碳载混合铂钴合金催化剂(H-PtCo)。通过透射电子显微镜进行的元素映射显示,H-PtCo催化剂在亚表面附近表现出高浓度的钴原子。这种钴富集是由于钴原子在铂纳米颗粒上的共形沉积,随后进行高温处理所致。包括线性扫描伏安法(LSV)和加速耐久性测试(ADT)在内的电化学表征表明,在氧氧还原明,在氧还原反应(ORR)活性和稳定性方面,H-PtCo催化剂优于通过铂和钴的共还原法合成的传统铂钴合金(C-PtCo)。此外,单电池测试表明,与C-PtCo和Pt催化剂相比,H-PtCo催化剂显著提高了性能和耐久性。这些发现强调了铂钴纳米颗粒内钴原子分布在提高催化效率和长期稳定性方面的关键作用。