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用于高性能固态钠离子电池的具有优异界面接触的夹心复合电解质。

Sandwiched composite electrolyte with excellent interfacial contact for high-performance solid-state sodium-ion batteries.

作者信息

Wang Wenting, Yuan Wenyong, Zhao Zhongjun, Zhou Pengfei, Zhang Pengju, Ding Minghui, Bai Jiahai, Weng Junying

机构信息

School of Materials Science and Engineering, Shandong University of Technology, Zibo 255000, PR China.

School of Chemistry and Chemical Engineering, Shandong University of Technology, Zibo 0255000, PR China.

出版信息

J Colloid Interface Sci. 2023 Dec 15;652(Pt A):132-141. doi: 10.1016/j.jcis.2023.08.052. Epub 2023 Aug 9.

Abstract

Solid-state sodium-ion batteries have attracted significant attention due to their rich resources, high safety, and high energy density. However, the lower ionic conductivity and inferior interfacial contact between solid-state electrolytes (SSEs) and electrodes limit their practical applications. Herein, polyvinylideneuoride-co-hexauoropropylene (PVDF-HFP) membrane is selected and a novel sandwiched composite PVDF-HFP/NaZrCeSiPOF/PVDF-HFP (G-NZC0.05SPF0.7-G) SSEs is well designed. The ionic conductivity of NaZrSiPO is enhanced by Ce/F co-doping. The effects of Ce and F doping on the crystal structure, density, and ionic conductivity for NaZrSiPO are well investigated. The optimal NZC0.05SPF0.7 delivers a high ionic conductivity of 1.39 × 10 S cm at 25 ℃. Moreover, the PVDF-HFP membrane can significantly enhance the interface compatibility between NZC0.05SPF0.7 and electrodes. The as-prepared G-NZC0.05SPF0.7-G exhibits a large ionic conductivity of 1.07 × 10 S cm at 25 ℃, wide electrochemical stability window up to 4.5 V, high critical current density of 1.2 A cm, and stable Na plating/stripping over 600 h at 0.3 A cm. The solid-state NaMnNiTiO/G-NZC0.05SPF0.7-G/Na battery delivers a remarkable cycling stability and rate capability at 25 ℃, indicating that the as-prepared G-NZC0.05SPF0.7-G has a promising application for solid-state SIBs. This study demonstrates an effective strategy to develop advanced solid-state electrolytes for solid-state SIBs.

摘要

固态钠离子电池因其资源丰富、安全性高和能量密度高而备受关注。然而,固态电解质(SSEs)较低的离子电导率以及与电极之间较差的界面接触限制了它们的实际应用。在此,选择了聚偏氟乙烯-共-六氟丙烯(PVDF-HFP)膜,并精心设计了一种新型的三明治复合PVDF-HFP/NaZrCeSiPOF/PVDF-HFP(G-NZC0.05SPF0.7-G)固态电解质。通过Ce/F共掺杂提高了NaZrSiPO的离子电导率。深入研究了Ce和F掺杂对NaZrSiPO晶体结构、密度和离子电导率的影响。最佳的NZC0.05SPF0.7在25℃时具有1.39×10 S cm的高离子电导率。此外,PVDF-HFP膜可显著提高NZC0.05SPF0.7与电极之间的界面兼容性。所制备的G-NZC0.05SPF0.7-G在25℃时表现出1.07×10 S cm的大离子电导率、高达4.5 V的宽电化学稳定窗口、1.2 A cm的高临界电流密度以及在0.3 A cm下600 h以上稳定的Na电镀/剥离。固态NaMnNiTiO/G-NZC0.05SPF0.7-G/Na电池在25℃时具有出色的循环稳定性和倍率性能,表明所制备的G-NZC0.05SPF0.7-G在固态钠离子电池中具有广阔的应用前景。这项研究展示了一种开发用于固态钠离子电池的先进固态电解质的有效策略。

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