School of Materials and Energy, University of Electronic Science and Technology of China, Chengdu 611731, PR China; Yangtze Delta Region Institute (Huzhou), University of Electronic Science and Technology of China, Huzhou 313001, PR China.
International Research Center for Composite and Intelligent Manufacturing Technology, School of Materials and Engineering, Xi'an University of Technology, Xi'an 710048, PR China.
J Colloid Interface Sci. 2023 Aug;643:205-213. doi: 10.1016/j.jcis.2023.03.191. Epub 2023 Apr 1.
Li-rich dual-phase Li-Cu alloy is a promising candidate toward practical application of Li metal anode due to its in situ formed unique three-dimensional (3D) skeleton of electrochemical inert LiCu solid-solution phase. Since a thin layer of metallic Li phase appears on the surface of as-prepared Li-Cu alloy, the LiCu framework cannot regulate Li deposition efficiently in the first Li plating process. Herein, a lithiophilic LiC headspace is capped on the upper surface of the Li-Cu alloy, which can not only offer free space to accommodate Li deposition and maintain dimensional stability of the anode, but also provide abundant lithiophilic sites and guide Li deposition effectively. This unique bilayer architecture is fabricated via a facile thermal infiltration method, where the Li-Cu alloy layer with an ultrathin thickness around 40 μm occupies the bottom of a carbon paper (CP) sheet, and the upper part of this 3D porous framework is reserved as the headspace for Li storage. Notably, the molten Li can quickly convert these carbon fibers of the CP into lithiophilic LiC fibers while the CP is touched with the liquid Li. The synergetic effect between the LiC fibers framework and LiCu nanowires scaffold can ensure a uniform local electric field and stable Li metal deposition during cycling. As a consequence, the CP capped ultrathin Li-Cu alloy anode demonstrates excellent cycling stability and rate capability.
富锂双相 Li-Cu 合金由于其原位形成的独特的电化学惰性 LiCu 固溶体相的三维(3D)骨架,是一种很有前途的实用化金属锂负极候选材料。由于在制备好的 Li-Cu 合金表面会出现一层很薄的金属锂相,因此在第一次锂电镀过程中,LiCu 骨架不能有效地调节锂的沉积。在此,在 Li-Cu 合金的上表面覆盖了一层亲锂的 LiC 空间,这不仅可以提供自由空间来容纳锂的沉积并保持阳极的维度稳定性,而且还可以提供丰富的亲锂位点并有效地引导锂的沉积。这种独特的双层结构是通过一种简便的热渗透方法制备的,其中厚度约为 40 μm 的超薄 Li-Cu 合金层占据了碳纸(CP)片的底部,3D 多孔框架的上部分则被预留作为 Li 储存的空间。值得注意的是,当 CP 接触到液态 Li 时,液态 Li 可以迅速将 CP 中的这些碳纤维转化为亲锂的 LiC 纤维。LiC 纤维框架和 LiCu 纳米线支架之间的协同效应可以确保在循环过程中均匀的局部电场和稳定的锂金属沉积。因此,CP 覆盖的超薄 Li-Cu 合金阳极表现出优异的循环稳定性和倍率性能。