锰
溶解
阴极
二氧化碳
材料科学
碳纤维
化学工程
冶金
复合材料
化学
工程类
物理化学
有机化学
复合数
作者
Kun Wang,Xin Liu,Fuxing Zhao,Deyi Zhang,Yanguang Cui,Ze Yang,Xiaodong Li,Yanliang Zhang,H. Su,Jianfei Wu,Changshui Huang
摘要
Conductive layer modification, such as carbon coating layers, has also been widely reported to alleviate the continuous metal ion dissolution and volumetric expansion of rechargeable aqueous zinc-ion batteries (ZIBs) cathode. However, the thick coated layer acts as the inactive material cannot provide enough zinc ion storage sites, reduc-ing the capacity of cathode materials. Here, to address this challenge, we have devel-oped a dressed manganese dioxide nanorods (MnO2-NRs) cathode featuring a close-fitting confinement interface constructed from a hydrogen-substituted graphdiyne (HsGDY) thin film (MnO2-NRs@HsGDY). The unique hierarchical pore structure and active acetylene bonds of HsGDY film contribute to fast electron/ion transport channel, additional ion storage active site, and structural stability by enrich-ing Zn2+ ions and confining Mn2+ ions on MnO2-NRs surface. The MnO2-NRs@HsGDY-based ZIBs exhibit an ultra-high reversible specific capacity of 432 mAh g-1 under a current density of 50 mA g-1, as well as excellent cyclic stability and superior rate performance. Based on the MnO2-NRs@HsGDY, a folding and flexible battery with a high energy density of 162.5 Wh kg-1 at 1 A g-1 can be easily fabricated. Those results demonstrate a straightforward and controllable approach for preparing high-performance cathode materials applied for flexible ZIB.
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