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可在-20°C下运行的可充电固态钠金属电池。

Rechargeable Solid-State Na-Metal Battery Operating at -20 °C.

作者信息

Jin Haibo, Xiao Xiong, Chen Lai, Ni Qing, Sun Chen, Miao Runqing, Li Jingbo, Su Yuefeng, Wang Chengzhi

机构信息

Beijing Institute of Technology, School of Materials Science and Engineering, Beijing Key Laboratory of Construction Tailorable Advanced Functional Materials and Green Applications, Beijing Key Laboratory of Environmental Science and Engineering, Beijing, 100081, China.

Beijing Institute of Technology Chongqing Innovation Center, Chongqing, 401120, China.

出版信息

Adv Sci (Weinh). 2023 Sep;10(27):e2302774. doi: 10.1002/advs.202302774. Epub 2023 Jul 23.

Abstract

Achieving satisfactory performance for a solid-state Na-metal battery (SSNMB) with an inorganic solid electrolyte (SE), especially under freezing temperatures, poses a challenge for stabilizing a Na-metal anode. Herein, this challenge is addressed by utilizing a Natrium super ionic conductor (NASICON) NASICON-type solid electrolyte, enabling the operation of a rechargeable SSNMB over a wide temperature range from -20 to 45 °C. The interfacial resistance at the Na metal/SE interface is only 0.4 Ω cm at 45 °C and remains below 110 Ω cm even at -20 °C. Remarkably, long-term Na-metal plating/stripping cycles lasting over 2000 h at -20 °C are achieved with minimal polarization voltages at 0.1 mA cm . Further analysis reveals the formation of a uniform Na Ca PO interphase layer at the interface, which significantly contributes to the exceptional interfacial performance observed. By employing a Na V Al (PO ) cathode, the full battery system demonstrates excellent adaptability to low temperatures, exhibiting a capacity of 80 mA h g at -20 °C over 50 cycles and retaining a capacity of 108 mAh g (88.5% of the capacity at 45 °C) at 0 °C over 275 cycles. This research significantly reduces the temperature threshold for SSNMB operation and paves the way toward solid-state batteries suitable for all-season applications.

摘要

对于采用无机固体电解质(SE)的固态钠金属电池(SSNMB)而言,要实现令人满意的性能,尤其是在低温条件下,在稳定钠金属阳极方面面临着挑战。在此,通过使用钠超离子导体(NASICON)型固体电解质来应对这一挑战,使得可充电固态钠金属电池能够在-20至45°C的宽温度范围内运行。在45°C时,钠金属/固体电解质界面处的界面电阻仅为0.4Ω·cm,即使在-20°C时也保持在110Ω·cm以下。值得注意的是,在-20°C下,以0.1mA/cm²的电流密度实现了超过2000小时的长期钠金属电镀/剥离循环,且极化电压极小。进一步分析表明,在界面处形成了均匀的Na₂CaPO₄界面层,这对所观察到的优异界面性能有显著贡献。通过采用Na₃V₂(PO₄)₃阴极,全电池系统在低温下表现出出色的适应性,在-20°C下50次循环的容量为80mAh/g,在0°C下275次循环后仍保持108mAh/g的容量(为45°C时容量的88.5%)。这项研究显著降低了固态钠金属电池运行的温度阈值,并为适用于全季节应用的固态电池铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f7b6/10520632/fd77e84a8bf3/ADVS-10-2302774-g003.jpg

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