Yuanxue TaoNan YangChennan LiangDekang HuangPei WangFeifei CaoYanzhu LuoHao Chen
Abstract The binary transition metal oxides have attracted great attention because of their considerable energy and power densities. However, they suffer from low reaction kinetics and large volume change, limiting their practical energy applications. The construction of a mesoporous structure with a large surface area, the development of a carbon matrix, as well as heteroatom doping can effectively overcome the above challenges. Herein, the synthesis of phosphorous‐containing Fe 2 VO 4 /nitrogen‐doped carbon mesoporous nanowires (P‐Fe 2 VO 4 /NCMNWs) is reported. In this unique structure, the atomic‐level P‐doping could increase the conductivity of Fe 2 VO 4 by reducing its band gap, which is confirmed by DFT calculations. Furthermore, the phosphorus can covalently “bridge” the carbon layer and Fe 2 VO 4 through P−C and Fe−O−P bondings. As a result, this anode material exhibits a high capacity (1002 mA h g −1 at 0.5 A g −1 after 250 cycles), excellent rate performance (448 mA h g −1 at 10 A g −1 ), and prominent long‐term cycling stability (533 mA h g −1 at 5 A g −1 after 500 cycles, 364 mA h g −1 at 10 A g −1 after 1000 cycles). All of these attractive features make the P‐Fe 2 VO 4 /NCMNWs a promising electrode material for high‐performance lithium‐ion batteries.
Yuanxue TaoNan YangChennan LiangDekang HuangPei WangFeifei CaoYanzhu LuoHao Chen
Chao YangFan LvYelong ZhangJie WenKang DongHai SuFeili LaiGuoyu QianWei WangAndré HilgerYunhua XuYizhou ZhuYida DengWenbin HuIngo MankeYanan Chen
Jizhang ChenQiongyu ChenJunling XuChing‐Ping Wong
Ying JiangFeng WuZhengqing YeCheng LiYixin ZhangLi LiMan XieRenjie Chen
Huanhuan DuanShenkui ZhangZhuowen ChenAnding XuShu‐Zhong ZhanSongping Wu