Chi Hao, Deng Nanping, Han Jinyu, Feng Yang, Shui Yewen, Liu Zhize, Wang Yilong, Kang Weimin, Cheng Bowen
Ministry of Education Key Laboratory for Advanced Textile Composite Materials, School of Textile Science and Engineering, Tiangong University, Tianjin 300387, China.
Ministry of Education Key Laboratory for Advanced Textile Composite Materials, School of Textile Science and Engineering, Tiangong University, Tianjin 300387, China..
J Colloid Interface Sci. 2025 Dec 15;700(Pt 3):138616. doi: 10.1016/j.jcis.2025.138616. Epub 2025 Aug 5.
Developing high-activity, low-cost and stable multifunctional electrocatalysts remains crucial yet challenging for advancing energy technologies. Zn offers unique advantages for achieving high-performance electrocatalysts due to its low electronegativity-favourable for electronic modulation-and its low boiling point, which facilitates engineering during the synthesis process. Leveraging these dual characteristics, we computationally predicted the effects of Zn doping and rationally designed a Zn-doped FeCo alloy anchored on hierarchically porous carbon nanofiber with a protective surface carbon film (Zn-FeCo@CNF-900). Density functional theory calculations further reveal that Zn-induced charge transfer to Fe/Co, along with the lowering of the d-band centre, optimises the adsorption energies of key reaction intermediates. Simultaneously, pore formation during calcination enhances mass and electron transport, while the carbon film stabilises active sites. Benefitting from this synergistic modulation, the resulting Zn-FeCo@CNF-900 exhibits an outstanding half-wave potential of 0.84 V for the oxygen reduction reaction (ORR), and an overpotential of 268 mV at a current density of 10 mA cm for the oxygen evolution reaction (OER). In a Zn-air battery (ZAB), Zn-FeCo@CNF-900 delivers exceptional stability (>600 h) and a high-power density of 195 mW cm. Furthermore, this multifunctional electrocatalyst enables a ZAB-driven overall water splitting system. This study integrates computational design with experimental validation to develop high-performance multifunctional electrocatalysts through targeted electronic and structural engineering.
开发高活性、低成本且稳定的多功能电催化剂对于推动能源技术发展仍然至关重要,但也具有挑战性。锌由于其低电负性(有利于电子调制)和低沸点,在合成过程中便于加工,为实现高性能电催化剂提供了独特优势。利用这些双重特性,我们通过计算预测了锌掺杂的影响,并合理设计了一种锚定在具有保护性表面碳膜的分级多孔碳纳米纤维上的锌掺杂铁钴合金(Zn-FeCo@CNF-900)。密度泛函理论计算进一步表明,锌诱导的电荷转移到铁/钴,同时d带中心降低,优化了关键反应中间体的吸附能。同时,煅烧过程中形成的孔隙增强了质量和电子传输,而碳膜则稳定了活性位点。得益于这种协同调制,所得的Zn-FeCo@CNF-900在氧还原反应(ORR)中表现出0.84 V的出色半波电位,在析氧反应(OER)中,在电流密度为10 mA cm时过电位为268 mV。在锌空气电池(ZAB)中,Zn-FeCo@CNF-900具有出色的稳定性(>600 h)和195 mW cm的高功率密度。此外,这种多功能电催化剂还能实现由ZAB驱动的全水解系统。本研究将计算设计与实验验证相结合,通过有针对性的电子和结构工程开发高性能多功能电催化剂。