Lithium spreading layer consisting of nickel particles enables stable cycling of aluminum anode in all-solid-state battery

Jingjing Chai, Libo Song, Zhendong Li, Zhe Peng, Xiayin Yao
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Abstract

Developing promising substitutes of lithium (Li) metal anode that suffers from a serious interfacial instability against the solid electrolyte (SE) is a formidable challenge for the all-solid-state battery. Aluminum (Al), a highly potential candidate owing to its high specific capacity and relatively low working potential, however, cannot withstand stable cycling in all-solid-state battery due to the fast structural collapse caused by the solid/solid contact at the Al/SE interface. Herein, a Li spreading layer consisting of metallic nickel (Ni) particles at the Al surface is proposed to raise the performance of Al anode in all-solid-state battery. Owing to the immiscibility between Ni and Li solid phases, this Li spreading layer can enable a uniform distribution of Li atoms over the electrode surface followed by a stable Li–Al alloying/dealloying processes, suppressing the stress deformation at the Al/SE interface and significantly improving the cycling performance of Al anode in all-solid-state battery. The modified Al anode not only outperforms the bare Al significantly, but also exhibits superior cyclability and rate ability compared with the Li anode. This work provides an efficient strategy to promote the application of Al anode in all-solid-state battery, and is expected to be generalized for other alloy anodes.

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由镍颗粒组成的锂扩散层使铝阳极在全固态电池中稳定循环
锂(Li)金属负极与固体电解质(SE)之间存在严重的界面不稳定性,因此开发有前途的锂金属负极替代品是全固态电池面临的一项艰巨挑战。铝(Al)因其高比容量和相对较低的工作电位而成为极具潜力的候选材料,然而,由于铝/固态电解质界面的固/固接触导致的快速结构坍塌,铝无法承受全固态电池的稳定循环。本文提出在铝表面形成由金属镍(Ni)颗粒组成的锂扩散层,以提高铝阳极在全固态电池中的性能。由于镍和锂固相之间的不相溶性,这种锂扩散层能使锂原子均匀地分布在电极表面,然后形成稳定的锂-铝合金/合金化过程,从而抑制铝/SE界面的应力变形,显著提高铝阳极在全固态电池中的循环性能。与锂阳极相比,改性后的铝阳极不仅在性能上明显优于裸铝,而且在循环性和速率能力上也更胜一筹。这项工作为促进铝阳极在全固态电池中的应用提供了一种有效的策略,并有望推广到其他合金阳极中。
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