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Reversible Mn^(2+)/Mn^(4+)double-electron redox in P3-type layer-structured sodium-ion cathode
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作者 Jie Zeng Jian Bao +8 位作者 Ya Zhang Xun-Lu Li Cui Ma Rui-Jie Luo Chong-Yu Du Xuan Xu zhe Mei zhe qian Yong-Ning Zhou 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2024年第2期79-88,I0004,共11页
The balance between cationic redox and oxygen redox in layer-structured cathode materials is an important issue for sodium batteries to obtain high energy density and considerable cycle stability.Oxygen redox can cont... The balance between cationic redox and oxygen redox in layer-structured cathode materials is an important issue for sodium batteries to obtain high energy density and considerable cycle stability.Oxygen redox can contribute extra capacity to increase energy density,but results in lattice instability and capacity fading caused by lattice oxygen gliding and oxygen release.In this work,reversible Mn^(2+)/Mn^(4+)redox is realized in a P3-Na_(0.65)Li_(0.2)Co_(0.05)Mn_(0.75)O_(2)cathode material with high specific capacity and structure stability via Co substitution.The contribution of oxygen redox is suppressed significantly by reversible Mn^(2+)/Mn^(4+)redox without sacrificing capacity,thus reducing lattice oxygen release and improving the structure stability.Synchrotron X-ray techniques reveal that P3 phase is well maintained in a wide voltage window of 1.5-4.5 V vs.Na^(+)/Na even at 10 C and after long-term cycling.It is disclosed that charge compensation from Co/Mn-ions contributes to the voltage region below 4.2 V and O-ions contribute to the whole voltage range.The synergistic contributions of Mn^(2+)/Mn^(4+),Co^(2+)/Co^(3+),and O^(2-)/(O_n)^(2-)redox in P3-Na_(0.65)Li_(0.2)Co_(0.05)Mn_(0.75)O_(2)lead to a high reversible capacity of 215.0 m A h g^(-1)at 0.1 C with considerable cycle stability.The strategy opens up new opportunities for the design of high capacity cathode materials for rechargeable batteries. 展开更多
关键词 Sodium batteries Cathode materials Layered structure Co substitution
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新集一矿综放工作面瓦斯高抽巷技术 被引量:4
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作者 赵林 者倩 +3 位作者 邹治 李佳妮 魏世龙 孟丽萍 《陕西煤炭》 2021年第4期5-9,共5页
为确定新集一矿综放工作面高抽巷瓦斯抽采工艺,确保工作面回采期间瓦斯抽采高效与工作面的回采安全,采用COMSOL Multiphysics 5.03D建立采空区高抽巷瓦斯抽采三维数值模拟模型,研究高抽巷流量及其位置对抽采效果的影响,分析高抽巷在不... 为确定新集一矿综放工作面高抽巷瓦斯抽采工艺,确保工作面回采期间瓦斯抽采高效与工作面的回采安全,采用COMSOL Multiphysics 5.03D建立采空区高抽巷瓦斯抽采三维数值模拟模型,研究高抽巷流量及其位置对抽采效果的影响,分析高抽巷在不同抽采流量及位置条件下瓦斯抽采时回风瓦斯随时间的变化规律,确定合理的高抽巷抽采流量与位置。研究表明,新集一矿综放工作面高抽巷抽采期间瓦斯抽采纯量随时间逐渐降低,该工作面抽采流量50~75 m^(3)/min,高抽巷距离回风15~20 m,距离煤层顶板15~20 m,高抽巷抽采量显著高于钻孔抽采量与风排瓦斯量,抽采率60%以上,回采期间回风瓦斯浓度0.14%~0.34%,工作面实现安全回采。 展开更多
关键词 高抽巷 抽采量 位置 数值仿真
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