{"title":"LaS/CoS2异质结纳米棒增强锌-空气电池双功能氧催化","authors":"Chenyao Chen, , , Yuchan Liu, , , Wenjing Gao, , , Huihuan Ouyang, , , Rongkai Ye*, , and , Jianqiang Hu*, ","doi":"10.1021/acsanm.5c03702","DOIUrl":null,"url":null,"abstract":"<p >Conventional rechargeable zinc–air batteries (RZABs) are largely hindered by the sluggish reaction kinetics of oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) at the air cathode. Therefore, the rational design of highly active bifunctional electrocatalysts is crucial for advancing performance of the energy storage system. In this study, we synthesized uniform porous LaS/CoS<sub>2</sub> heterojunction nanorods, in which LaS was introduced into transition metal sulfide to construct abundant sulfur vacancies and well-defined heterointerfaces. This not only effectively regulated the electronic structure of the LaS/CoS<sub>2</sub> heterojunctions but also significantly enhanced their bifunctional catalytic activity, which possessed an ORR/OER voltage gap of as low as 0.72 V. The RZAB assembled with LaS/CoS<sub>2</sub> as an air cathode had a high peak power density of ca. 190 mW cm<sup>–2</sup>, stable open-circuit voltage of ca. 1.54 V, and remarkable specific capacity of ca. 801.7 mAh g<sub>Zn</sub><sup>–1</sup>. The RZAB device maintained stable charge–discharge cycling over 480 h with negligible performance degradation, surpassing the performance of conventional Pt/C and RuO<sub>2</sub>-based counterparts across multiple evaluation metrics. This work elucidated the synergistic effect between sulfur vacancies and heterojunction interfaces and mechanistic insight into their role in promoting electrocatalytic activity. These findings provide a promising strategy for the design of efficient and durable bifunctional catalysts for next-generation metal–air batteries.</p>","PeriodicalId":6,"journal":{"name":"ACS Applied Nano Materials","volume":"8 41","pages":"19996–20005"},"PeriodicalIF":5.5000,"publicationDate":"2025-10-08","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"LaS/CoS2 Heterojunction Nanorods for Enhanced Bifunctional Oxygen Catalysis in Zinc–Air Batteries\",\"authors\":\"Chenyao Chen, , , Yuchan Liu, , , Wenjing Gao, , , Huihuan Ouyang, , , Rongkai Ye*, , and , Jianqiang Hu*, \",\"doi\":\"10.1021/acsanm.5c03702\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<p >Conventional rechargeable zinc–air batteries (RZABs) are largely hindered by the sluggish reaction kinetics of oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) at the air cathode. Therefore, the rational design of highly active bifunctional electrocatalysts is crucial for advancing performance of the energy storage system. In this study, we synthesized uniform porous LaS/CoS<sub>2</sub> heterojunction nanorods, in which LaS was introduced into transition metal sulfide to construct abundant sulfur vacancies and well-defined heterointerfaces. This not only effectively regulated the electronic structure of the LaS/CoS<sub>2</sub> heterojunctions but also significantly enhanced their bifunctional catalytic activity, which possessed an ORR/OER voltage gap of as low as 0.72 V. The RZAB assembled with LaS/CoS<sub>2</sub> as an air cathode had a high peak power density of ca. 190 mW cm<sup>–2</sup>, stable open-circuit voltage of ca. 1.54 V, and remarkable specific capacity of ca. 801.7 mAh g<sub>Zn</sub><sup>–1</sup>. The RZAB device maintained stable charge–discharge cycling over 480 h with negligible performance degradation, surpassing the performance of conventional Pt/C and RuO<sub>2</sub>-based counterparts across multiple evaluation metrics. This work elucidated the synergistic effect between sulfur vacancies and heterojunction interfaces and mechanistic insight into their role in promoting electrocatalytic activity. 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引用次数: 0
摘要
传统的可充电锌空气电池(RZABs)受到空气阴极氧还原反应(ORR)和析氧反应(OER)反应动力学缓慢的影响。因此,合理设计高活性双功能电催化剂对于提高储能系统的性能至关重要。在这项研究中,我们合成了均匀多孔的LaS/CoS2异质结纳米棒,其中LaS被引入过渡金属硫化物中,以构建丰富的硫空位和明确的异质界面。这不仅有效调节了LaS/CoS2异质结的电子结构,而且显著增强了其双功能催化活性,其ORR/OER电压间隙低至0.72 V。以LaS/CoS2为空气阴极组装的RZAB具有约190 mW cm-2的峰值功率密度,约1.54 V的稳定开路电压和约801.7 mAh gZn-1的显著比容量。RZAB装置在480小时内保持了稳定的充放电循环,性能下降可以忽略不计,在多个评估指标上优于传统的Pt/C和基于ruo2的同类产品。这项工作阐明了硫空位和异质结界面之间的协同作用,以及它们在促进电催化活性中的作用机理。这些发现为下一代金属-空气电池设计高效耐用的双功能催化剂提供了一个有希望的策略。
LaS/CoS2 Heterojunction Nanorods for Enhanced Bifunctional Oxygen Catalysis in Zinc–Air Batteries
Conventional rechargeable zinc–air batteries (RZABs) are largely hindered by the sluggish reaction kinetics of oxygen reduction reaction (ORR) and oxygen evolution reaction (OER) at the air cathode. Therefore, the rational design of highly active bifunctional electrocatalysts is crucial for advancing performance of the energy storage system. In this study, we synthesized uniform porous LaS/CoS2 heterojunction nanorods, in which LaS was introduced into transition metal sulfide to construct abundant sulfur vacancies and well-defined heterointerfaces. This not only effectively regulated the electronic structure of the LaS/CoS2 heterojunctions but also significantly enhanced their bifunctional catalytic activity, which possessed an ORR/OER voltage gap of as low as 0.72 V. The RZAB assembled with LaS/CoS2 as an air cathode had a high peak power density of ca. 190 mW cm–2, stable open-circuit voltage of ca. 1.54 V, and remarkable specific capacity of ca. 801.7 mAh gZn–1. The RZAB device maintained stable charge–discharge cycling over 480 h with negligible performance degradation, surpassing the performance of conventional Pt/C and RuO2-based counterparts across multiple evaluation metrics. This work elucidated the synergistic effect between sulfur vacancies and heterojunction interfaces and mechanistic insight into their role in promoting electrocatalytic activity. These findings provide a promising strategy for the design of efficient and durable bifunctional catalysts for next-generation metal–air batteries.
期刊介绍:
ACS Applied Nano Materials is an interdisciplinary journal publishing original research covering all aspects of engineering, chemistry, physics and biology relevant to applications of nanomaterials. The journal is devoted to reports of new and original experimental and theoretical research of an applied nature that integrate knowledge in the areas of materials, engineering, physics, bioscience, and chemistry into important applications of nanomaterials.