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Oxygen reduction reaction (ORR) performance of platinum can be improved through alloying transition metals, with L1-PtCo emerging as a standout option due to its balanced catalytic performance, durability, and manufacturability. However, traditional carbon supports often fail to stabilize nanoparticles, leading to performance degradation. This study introduces a mesoporous Co-N-C supported ordered L1-PtCo catalyst to overcome the above limitations. The CoN sites in the mesoporous Co-N-C (MS-CoNC) support create a strong synergy with L1-PtCo clusters, preventing nanoparticle aggregation during high-temperature synthesis. X-ray absorption spectroscopy reveals a unique shortened Pt-Pt bond length in L1-PtCo/MS-CoNC, which contributes to a mass activity of 0.54 A mg, 6.3 times that of commercial carbon-supported PtCo catalysts. Rationalised by density functional theory, L1-PtCo/MS-CoNC optimizes its d-band centre for enhancing ORR intermediate adsorption-desorption. Membrane electrode assemblies test deliver remarkably improved peak power density while with only 60 µg cm of Pt. The mesoporous structure of the Co-N-C support further reduces mass transport losses, enhancing oxygen diffusion and stability. Durability testing shows minimal performance loss after 30 000 voltage cycles, showcasing the catalyst's robustness under harsh PEMFC conditions. This work demonstrates the synergistic advantages of mesoporous Co-N-C supports and L1-PtCo catalysts, paving the way for high-performance, low-Pt fuel cell technologies.
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http://dx.doi.org/10.1002/smll.202505914 | DOI Listing |
Small
September 2025
School of Chemistry, University of New South Wales, Sydney, 2052, Australia.
Oxygen reduction reaction (ORR) performance of platinum can be improved through alloying transition metals, with L1-PtCo emerging as a standout option due to its balanced catalytic performance, durability, and manufacturability. However, traditional carbon supports often fail to stabilize nanoparticles, leading to performance degradation. This study introduces a mesoporous Co-N-C supported ordered L1-PtCo catalyst to overcome the above limitations.
View Article and Find Full Text PDFNano Lett
July 2025
School of Chemistry & Materials Science, Jiangsu Normal University, Xuzhou, 221116, P.R. China.
Lithium-sulfur (Li-S) batteries face challenges from polysulfide shuttling and sluggish redox kinetics. Single-atom Co-N-C catalysts are promising but require precise coordination modulation to optimize the activity. Herein, an axial Co-O asymmetric configuration integrated into oxygen-doped dual-channel mesoporous carbon (CoN-O@CMK-5) is engineered via a theoretical-guided design.
View Article and Find Full Text PDFNanoscale
July 2025
Institute for Advanced Science and Technology, Shandong University, Jinan 250061, China.
The insufficiency of effective active sites and poor stability are identified as primary factors responsible for the performance limitations of non-precious metal carbon-based catalysts towards the oxygen reduction reaction (ORR). Increasing the number of non-precious metal and N-C active sites while achieving their uniform distribution continues to be a major challenge in the advancement of oxygen reduction catalysts. In this work, riboflavin was employed to modify the precursors ZIF-8 and ZIF-67, leveraging the high electronegativity of nitrogen atoms in the isoalloxazine ring to enhance the anchoring effect on metal ions, thereby reducing the agglomeration of Co ions during pyrolysis.
View Article and Find Full Text PDFJ Colloid Interface Sci
November 2025
School of Materials Science and Engineering, Jiangsu University, Zhenjiang 212013, China. Electronic address:
Rechargeable zinc-air batteries (ZABs) hold great promise for next-generation energy storage, but their practical application depends on the development of efficient bifunctional catalysts capable of catalyzing both the oxygen reduction reaction (ORR) during discharge and the oxygen evolution reaction (OER) during recharge. Herein, we propose a high-performance bifunctional oxygen electrocatalyst for ZABs, fabricated by encapsulating Co clusters into zeolite imidazole framework-8 (ZIF-8)-derived carbon via a supercritical CO (scCO) fluid-assisted method. The dual-protection combining spatial confinement from porous carbon frameworks and strong Co-N coordination anchoring enables the stabilization of high-density Co clusters and preventing its aggregation.
View Article and Find Full Text PDFChem Commun (Camb)
February 2024
Key Laboratory of Applied Surface and Colloid Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, Shaanxi Normal University, Xi'an 710119, China.
Herein, a novel assembled Co-N-C (A-Co-N-C) material was reported for the first time by pyrolyzing zeolitic imidazolate framework-67 (ZIF-67) nanoparticle aggregates caused by the introduction of surfactant polystyrene sulfonic acid (PSS). The A-Co-N-C has a large surface area of 455 m g with micropores (101 m g) and mesopores (354 m g). The A-Co-N-C exhibits good bifunctional catalytic oxygen reduction/evolution reaction (ORR/OER) and Zn-air battery activity.
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