Chen Jianyu, Li Sijia, Qiao Xin, Wang Yizhou, Lei Linna, Lyu Zhiyang, Zhao Jin, Zhang Yu, Liu Ruiqing, Liang Qinghua, Ma Yanwen
Key Laboratory for Organic Electronics and Information Displays, Jiangsu Key Laboratory for Biosensors, Institute of Advanced Materials (IAM), Jiangsu National Synergetic Innovation Center for Advanced Materials (SICAM), Nanjing University of Posts & Telecommunications, 9 Wenyuan Road, Nanjing, 210023, China.
Materials Science and Engineering, King Abdullah University of Science and Technology (KAUST), Thuwal, 23955-6900, Saudi Arabia.
Small. 2022 Feb;18(6):e2105999. doi: 10.1002/smll.202105999. Epub 2021 Dec 2.
The double-sided electrodes with active materials are widely used for commercial lithium (Li) ion batteries with a higher energy density. Accordingly, developing an anode current collector that can accommodate the stable and homogeneous Li plating/stripping on both sides will be highly desired for practical Li metal batteries (LMBs). Herein, an integrated bidirectional porous Cu (IBP-Cu) film with a through-pore structure is fabricated as Li metal hosts using the powder sintering method. The resultant IBP-Cu current collector with tunable pore volume and size exhibits high mechanical flexibility and stability. The bidirectional and through-pore structure enables the IBP-Cu host to achieve homogeneous Li deposition and effectively suppresses the dendritic Li growth. Impressively, the as-fabricated Li/IBP-Cu anode exhibits a remarkable capacity of up to 7.0 mAh cm for deep plating/stripping, outstanding rate performance, and ultralong cycling ability with high Coulombic efficiency of ≈100% for 1000 cycles. More practicably, a designed pouch cell coupled with one Li/IBP-Cu anode and two LiFePO cathodes exhibits a highly elevated energy density (≈187.5%) compared with a pouch cell with one anode and one cathode. Such design of a bidirectional porous Cu current collector with stable Li plating/stripping behaviors suggests its promising practical applications for next-generation Li metal batteries.
带有活性材料的双面电极被广泛应用于具有更高能量密度的商用锂离子电池。因此,开发一种能够在两侧容纳稳定且均匀的锂镀层/脱层的阳极集流体对于实际的锂金属电池(LMB)来说将是非常必要的。在此,采用粉末烧结法制备了一种具有通孔结构的集成双向多孔铜(IBP-Cu)薄膜作为锂金属主体。所得具有可调孔隙体积和尺寸的IBP-Cu集流体表现出高机械柔韧性和稳定性。双向通孔结构使IBP-Cu主体能够实现均匀的锂沉积,并有效抑制锂枝晶生长。令人印象深刻的是,所制备的锂/IBP-Cu阳极在深度镀层/脱层时表现出高达7.0 mAh cm的显著容量、出色的倍率性能以及超长时间的循环能力,在1000次循环中具有约100%的高库仑效率。更实际地说,与一个阳极和一个阴极的软包电池相比,一个设计的由一个锂/IBP-Cu阳极和两个磷酸铁锂阴极组成的软包电池表现出能量密度大幅提高(≈187.5%)。这种具有稳定锂镀层/脱层行为的双向多孔铜集流体的设计表明其在下一代锂金属电池中的实际应用前景广阔。