材料科学
插层(化学)
假电容
钒
电解质
电化学
水溶液
氧化钒
化学工程
无机化学
电极
超级电容器
物理化学
化学
工程类
冶金
作者
Junwei Ding,Zhiguo Du,Linqing Gu,Bin Li,Lizhen Wang,Shiwen Wang,Yongji Gong,Shubin Yang
标识
DOI:10.1002/adma.201800762
摘要
Although rechargeable aqueous zinc-ion batteries have attracted extensive interest due to their environmental friendliness and low cost, they still lack suitable cathodes with high rate capabilities, which are hampered by the intense charge repulsion of bivalent Zn2+ . Here, a novel intercalation pseudocapacitance behavior and ultrafast kinetics of Zn2+ into the unique tunnels of VO2 (B) nanofibers in aqueous electrolyte are demonstrated via in situ X-ray diffraction and various electrochemical measurements. Because VO2 (B) nanofibers possess unique tunnel transport pathways with big sizes (0.82 and 0.5 nm2 along the b- and c-axes) and little structural change on Zn2+ intercalation, the limitation from solid-state diffusion in the vanadium dioxide electrode is eliminated. Thus, VO2 (B) nanofibers exhibit a high reversible capacity of 357 mAh g-1 , excellent rate capability (171 mAh g-1 at 300 C), and high energy and power densities as applied for zinc-ion storage.
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