Li Li, Zhao Rui, Xu Tinghua, Wang Dandan, Pan Du, Zhang Kun, Yu Caiyan, Lu Xia, He Guanjie, Bai Ying
School of Physics & Electronics, Henan University, Kaifeng 475004, P.R. China.
Nanoscale. 2019 May 9;11(18):8967-8977. doi: 10.1039/c9nr01655d.
LiNi0.5Mn1.5O4 (LNMO) spinel has drawn increasing attention due to its high voltage, stabilized electrochemical performance and safety features as a cathode for lithium-ion batteries. However, the main challenge lies in its unstable surface structure, especially at elevated temperatures. In this paper, we decorate the LNMO precursor with a solid electrolyte of Li1.4Al0.4Ti1.6(PO4)3 (LATP) via a facile sol-gel method, followed by a co-crystallization process at 820 °C, to successfully generate a LATP modification shell at the surface of LNMO. The LATP modification shell could not only optimize the morphology of LNMO including the limitation of particle growth and control of crystalline orientation, but also realize ion doping during the co-crystallization process. By tuning the LATP contents, the 2 wt% LATP modification is found to be the most effective at balancing the interfacial stability and Li+ diffusion kinetics of LNMO, as well as enhancing its rate capability and capacity retention at high temperatures. As a result, the 2 wt% LATP-modified LNMO cathode exhibits a high reversible capacity of 84.8 mA h g-1 after 500 cycles with a capacity retention of 68.9%, and a superior rate capability (102.0 mA h g-1 at 20 C) at room temperature. Moreover, this electrode also delivers a good capacity retention of 85.7% after 100 cycles at 55 °C, which is ascribed to the stabilized interface with a LATP protective layer.
LiNi0.5Mn1.5O4(LNMO)尖晶石因其高电压、稳定的电化学性能以及作为锂离子电池正极的安全特性而受到越来越多的关注。然而,主要挑战在于其不稳定的表面结构,尤其是在高温下。在本文中,我们通过简便的溶胶-凝胶法用Li1.4Al0.4Ti1.6(PO4)3(LATP)固体电解质修饰LNMO前驱体,随后在820℃进行共结晶过程,从而在LNMO表面成功生成LATP修饰壳层。LATP修饰壳层不仅可以优化LNMO的形貌,包括限制颗粒生长和控制晶体取向,还能在共结晶过程中实现离子掺杂。通过调整LATP含量,发现2 wt%的LATP修饰在平衡LNMO的界面稳定性和Li+扩散动力学、提高其倍率性能以及高温下的容量保持率方面最为有效。结果,2 wt% LATP修饰的LNMO正极在500次循环后表现出84.8 mA h g-1的高可逆容量,容量保持率为68.9%,在室温下具有优异的倍率性能(20 C时为102.0 mA h g-1)。此外,该电极在55℃下100次循环后也具有85.7%的良好容量保持率,这归因于具有LATP保护层的稳定界面。