dc.contributor
Universitat Politècnica de Catalunya. Departament d'Enginyeria Química
dc.contributor
Universitat Politècnica de Catalunya. ENCORE - Energy Catalysis Process Reaction Engineering
dc.contributor.author
He, Ren
dc.contributor.author
Yang, Linlin
dc.contributor.author
Zhang, Yu
dc.contributor.author
Wang, Xiang
dc.contributor.author
Lee, Seungho
dc.contributor.author
Zhang, Ting
dc.contributor.author
Li, Lingxiao
dc.contributor.author
Liang, Zhifu
dc.contributor.author
Chen, Jingwei
dc.contributor.author
Li, Junshan
dc.contributor.author
Moghaddam, Ahmad Ostovari
dc.contributor.author
Llorca Piqué, Jordi
dc.contributor.author
Ibánez, María
dc.contributor.author
Arbiol Cobos, Jordi
dc.contributor.author
Xu, Ying hao
dc.contributor.author
Cabot, Andreu
dc.date.issued
2023-04-01
dc.identifier
He, R. [et al.]. A CrMnFeCoNi high entropy alloy boosting oxygen evolution/reduction reactions and zinc-air battery performance. "Energy Storage Materials", 1 Abril 2023, vol. 58, p. 287-298.
dc.identifier
https://hdl.handle.net/2117/389931
dc.identifier
10.1016/j.ensm.2023.03.022
dc.description.abstract
The development of cost-effective, high-activity and stable bifunctional catalysts for the oxygen reduction and evolution reactions (ORR/OER) is essential for zinc–air batteries (ZABs) to reach the market. Such catalysts must contain multiple adsorption/reaction sites to cope with the high demands of reversible oxygen electrodes. Herein, we propose a high entropy alloy (HEA) based on relatively abundant elements as a bifunctional ORR/OER catalyst. More specifically, we detail the synthesis of a CrMnFeCoNi HEA through a low-temperature solution-based approach. Such HEA displays superior OER performance with an overpotential of 265 mV at a current density of 10 mA/cm2, and a 37.9 mV/dec Tafel slope, well above the properties of a standard commercial catalyst based on RuO2. This high performance is partially explained by the presence of twinned defects, the incidence of large lattice distortions, and the electronic synergy between the different components, being Cr key to decreasing the energy barrier of the OER rate-determining step. CrMnFeCoNi also displays superior ORR performance with a half-potential of 0.78 V and an onset potential of 0.88 V, comparable with commercial Pt/C. The potential gap (Egap) between the OER overpotential and the ORR half-potential of CrMnFeCoNi is just 0.734 V. Taking advantage of these outstanding properties, ZABs are assembled using the CrMnFeCoNi HEA as air cathode and a zinc foil as the anode. The assembled cells provide an open-circuit voltage of 1.489 V, i.e. 90% of its theoretical limit (1.66 V), a peak power density of 116.5 mW/cm2, and a specific capacity of 836 mAh/g that stays stable for more than 10 days of continuous cycling, i.e. 720 cycles @ 8 mA/cm2 and 16.6 days of continuous cycling, i.e. 1200 cycles @ 5 mA/cm2.
dc.description.abstract
Peer Reviewed
dc.description.abstract
Postprint (author's final draft)
dc.format
application/pdf
dc.relation
https://www.sciencedirect.com/science/article/abs/pii/S240582972300123X
dc.rights
http://creativecommons.org/licenses/by-nc-nd/4.0/
dc.rights
Attribution-NonCommercial-NoDerivatives 4.0 International
dc.subject
Àrees temàtiques de la UPC::Enginyeria química
dc.title
A CrMnFeCoNi high entropy alloy boosting oxygen evolution/reduction reactions and zinc-air battery performance