Se-Jun Park, Jae-Sung Jang, Deok-Hye Park, Ji-Hwan Kim, Gang-In Lee, Min-Jae Kim, Se-Yeon Jang, Kyung-Won Park
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Particularly, the incorporation of Mn induces structural distortions and defect formation, resulting in a significant increase in the electrochemically active surface area, as validated via Brunauer–Emmett–Teller surface analysis and electrochemical double-layer capacitance measurements. Furthermore, X-ray photoelectron and electrochemical impedance spectroscopies reveal that electronic structure rearrangements contribute to improved charge-transfer properties. Consequently, the MCP12-based air electrode achieves a high discharge capacity of 6.33 mA cm<sup>−2</sup>, a prolonged cycle life of 211 cycles, and a substantially reduced overpotential. Density functional theory calculations demonstrate that Mn incorporation upshifts the d-band center and increases the density of states near the Fermi level, thereby enhancing the adsorption of oxygen intermediates and facilitating charge transfer. This study highlights the synergistic effect of bimetallic phosphide catalysts and provides a promising strategy for developing high-performance electrocatalysts for next-generation Li–O<sub>2</sub> batteries.</p>","PeriodicalId":228,"journal":{"name":"Small","volume":"21 36","pages":""},"PeriodicalIF":12.1000,"publicationDate":"2025-07-24","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Enhancing Oxygen Redox Reversibility in Li–O2 Batteries via Bimetallic Phosphide Catalysts with Tailored Surface Morphology and Electronic Structure\",\"authors\":\"Se-Jun Park, Jae-Sung Jang, Deok-Hye Park, Ji-Hwan Kim, Gang-In Lee, Min-Jae Kim, Se-Yeon Jang, Kyung-Won Park\",\"doi\":\"10.1002/smll.202505547\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p>In this study, a manganese-cobalt-based bimetallic phosphide (MCP) catalyst is developed to address two major challenges of lithium-oxygen (Li–O<sub>2</sub>) batteries: high overpotential and limited cycling stability. 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引用次数: 0
摘要
在这项研究中,开发了一种锰钴基双金属磷化物(MCP)催化剂,以解决锂氧(Li-O2)电池的两个主要挑战:高过电位和有限循环稳定性。通过系统调整Mn: Co的比例,优化后的MCP12催化剂表现出最高的电化学活性,这是由于它增加了表面积,增强了电导率,并调节了对氧中间体的吸附亲和力。特别是,锰的掺入会引起结构扭曲和缺陷形成,导致电化学活性表面积显著增加,这一点通过brunauer - emmet - teller表面分析和电化学双层电容测量得到了验证。此外,x射线光电子和电化学阻抗谱显示,电子结构重排有助于改善电荷转移性能。因此,基于mcp12的空气电极实现了6.33 mA cm-2的高放电容量,延长了211次循环寿命,并大大降低了过电位。密度泛函理论计算表明,Mn的加入提高了d带中心,增加了费米能级附近的态密度,从而增强了氧中间体的吸附,促进了电荷转移。该研究突出了双金属磷化物催化剂的协同效应,为开发下一代锂氧电池的高性能电催化剂提供了一种有前景的策略。
Enhancing Oxygen Redox Reversibility in Li–O2 Batteries via Bimetallic Phosphide Catalysts with Tailored Surface Morphology and Electronic Structure
In this study, a manganese-cobalt-based bimetallic phosphide (MCP) catalyst is developed to address two major challenges of lithium-oxygen (Li–O2) batteries: high overpotential and limited cycling stability. By systematically tuning the Mn: Co ratio, the optimized MCP12 catalyst exhibits the highest electrochemical activity, which is attributed to its increased surface area, enhanced electrical conductivity, and modulated adsorption affinity for oxygen intermediates. Particularly, the incorporation of Mn induces structural distortions and defect formation, resulting in a significant increase in the electrochemically active surface area, as validated via Brunauer–Emmett–Teller surface analysis and electrochemical double-layer capacitance measurements. Furthermore, X-ray photoelectron and electrochemical impedance spectroscopies reveal that electronic structure rearrangements contribute to improved charge-transfer properties. Consequently, the MCP12-based air electrode achieves a high discharge capacity of 6.33 mA cm−2, a prolonged cycle life of 211 cycles, and a substantially reduced overpotential. Density functional theory calculations demonstrate that Mn incorporation upshifts the d-band center and increases the density of states near the Fermi level, thereby enhancing the adsorption of oxygen intermediates and facilitating charge transfer. This study highlights the synergistic effect of bimetallic phosphide catalysts and provides a promising strategy for developing high-performance electrocatalysts for next-generation Li–O2 batteries.
期刊介绍:
Small serves as an exceptional platform for both experimental and theoretical studies in fundamental and applied interdisciplinary research at the nano- and microscale. The journal offers a compelling mix of peer-reviewed Research Articles, Reviews, Perspectives, and Comments.
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