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还原氧化石墨烯包裹的空心分级结构氧化铜微纳立方体的制备及其作为钠离子电池阳极的应用前景

Fabrication of Hollow and Hierarchical CuO Micro-Nano Cubes Wrapped by Reduced Graphene Oxide as a Prospective Anode for SIBs.

作者信息

Wen Jia, Jiang Rong, Huang Junyuan, Xie Yuan, Ma Le, Li Xinyu, Ren Yang, Liu Zhu, Xiao Bowen, Zhou Xiaowei

机构信息

Department of Physics, School of Physics and Astronomy, Yunnan University, Kunming 650504, China.

Yunnan Key Laboratory of Micro/Nano-Materials and Technology, School of Materials and Energy, Yunnan University, Kunming 650504, China.

出版信息

Langmuir. 2024 Jan 9;40(1):348-361. doi: 10.1021/acs.langmuir.3c02598. Epub 2023 Dec 28.

Abstract

In this study, hollow and hierarchical CuO micro-nano cubes wrapped by reduced graphene oxide (H-CuO MNCs@rGO) were designed and successfully fabricated via a novel three-step wet-chemical method. Benefiting from its unique hollow and hierarchical micro-nano structures, H-CuO MNCs@rGO exhibited significantly enhanced electrochemical Na storage performance when utilized as anode material for sodium-ion batteries (SIBs). Specifically, H-CuO MNCs@rGO demonstrated a specific capacity of 380.9 mAh g in the initial reversible cycle and a capacity retention of 218.9 mAh g after 150 cycles at a current density of 300 mA g. Furthermore, through the dominant pseudocapacitive behavior, an optimized rate capability of 221.2 mAh g at 800 mA g can be obtained for H-CuO MNCs@rGO. The comprehensive Na storage properties of H-CuO MNCs@rGO obviously exceeded those of hollow CuO cubes (H-CuO MNCs) and bulk CuO anodes. Such enhanced Na storage performances of H-CuO MNCs@rGO can be attributed to its reasonable hollow and hierarchical micro-nano structures, which provide abundant redox active sites, shorten Na migration pathway, buffer volume expansion, and improve electronic/ionic conductivity during sodiation/desodiation process. Our strategy provides a facile and innovative approach for the design of CuO with rational micro-nano structure as a high-performance anode for SIBs, which would also be a guiding way for tailoring transition metal oxides in other scalable and functional applications.

摘要

在本研究中,通过一种新颖的三步湿化学方法设计并成功制备了由还原氧化石墨烯包裹的中空且具有分级结构的氧化铜微纳立方体(H-CuO MNCs@rGO)。得益于其独特的中空和分级微纳结构,H-CuO MNCs@rGO在用作钠离子电池(SIBs)的负极材料时展现出显著增强的电化学储钠性能。具体而言,H-CuO MNCs@rGO在初始可逆循环中表现出380.9 mAh g的比容量,在300 mA g的电流密度下循环150次后容量保持为218.9 mAh g。此外,通过主导的赝电容行为,H-CuO MNCs@rGO在800 mA g时可获得221.2 mAh g的优化倍率性能。H-CuO MNCs@rGO的综合储钠性能明显超过了中空氧化铜立方体(H-CuO MNCs)和块状氧化铜负极。H-CuO MNCs@rGO如此增强的储钠性能可归因于其合理的中空和分级微纳结构,该结构提供了丰富的氧化还原活性位点,缩短了钠离子迁移路径,缓冲了体积膨胀,并在脱钠/嵌钠过程中提高了电子/离子电导率。我们的策略为设计具有合理微纳结构的氧化铜作为高性能SIBs负极提供了一种简便且创新的方法,这也将为在其他可扩展和功能性应用中定制过渡金属氧化物提供指导思路。

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