LiNi1-xCoxO2 with x=0.1, 0.2, 0.3, 0.5 and 1 were prepared by co-precipitation of mixed solution of Ni- and Co-salt in NaOH. The structure of LiNi1-xCoxO2 was analyzed by XRD. The results show that the unit cell const...LiNi1-xCoxO2 with x=0.1, 0.2, 0.3, 0.5 and 1 were prepared by co-precipitation of mixed solution of Ni- and Co-salt in NaOH. The structure of LiNi1-xCoxO2 was analyzed by XRD. The results show that the unit cell constants a and c decrease as the Co content increases. Although the change of unit cell constants can reflect the substitution of Co ions with Ni ions in the lab, the splits of the pairs of (006), (102) and (108), (110) in the XRD pattern can not reflect the presence of Ni2+ in the lithium site.展开更多
Li[NixCoyMn2]O2(0.6≤x≤0.8) cathode materials with a typical hexagonal α-NaFeO2 structure were prepared utilizing a co-precipitation method.It is found that the ratio of peak intensities of(003) to(104) observ...Li[NixCoyMn2]O2(0.6≤x≤0.8) cathode materials with a typical hexagonal α-NaFeO2 structure were prepared utilizing a co-precipitation method.It is found that the ratio of peak intensities of(003) to(104) observed from X-ray diffraction(XRD)increases with decreasing the Ni content or increasing the Co content.The scanning electron microscopy(SEM) images reveal that the small primary particles are agglomerated to form the secondary ones.As the Mn content increases,the primary and secondary particles become larger and the resulted particle size for the Li[Ni(0.6)Co(0.2)Mn(0.2)]O2 is uniformly distributed in the range of100-300 nm.Although the initial discharge capacity of the Li/Li[NixCoyMn2]O2 cells reduces with decreasing the Ni content,the cyclic performance and rate capability are improved with higher Mn or Co content.The Li[Ni(0.6)Co(0.2)Mn(0.2)]O2 can deliver excellent cyclability with a capacity retention of 97.1%after 50 cycles.展开更多
以过渡金属硫酸盐和一水合氢氧化锂为原料,采用共沉淀-高温固相烧结法制备富锂正极材料Li[Li0.2Ni0.13Co0.13Mn0.54]O2。通过XRD、SEM和电池充放电测试方法考察了产物结构和性能,结果表明:在水浴50℃下控制p H=11合成的前驱体具有很好...以过渡金属硫酸盐和一水合氢氧化锂为原料,采用共沉淀-高温固相烧结法制备富锂正极材料Li[Li0.2Ni0.13Co0.13Mn0.54]O2。通过XRD、SEM和电池充放电测试方法考察了产物结构和性能,结果表明:在水浴50℃下控制p H=11合成的前驱体具有很好的分散性,且在950℃下烧结得到了优越的电化学性能;在0.1C(1C=300 m A/g)充放电时,首次放电比容量为258.9 m Ah/g(2.0~4.8 V),首次充放电效率为75.6%;在1C充放电时,首次放电比容量为204.6 m Ah/g,循环10次后放电比容量为179.9 m Ah/g;2C倍率下仍保持了141.4 m Ah/g的放电比容量。展开更多
采用溶胶凝胶法在球形Ni(OH)2颗粒表面包覆钴、锰氧化物,作为镍钴锰氢氧化物浓度梯度包覆的复合前驱体,然后配锂高温焙烧,合成了梯度包覆的镍酸锂复合正极材料Li[Ni0.83Co0.07Mn0.10]O2。采用X射线衍射(XRD)、扫描电镜(SEM)、恒...采用溶胶凝胶法在球形Ni(OH)2颗粒表面包覆钴、锰氧化物,作为镍钴锰氢氧化物浓度梯度包覆的复合前驱体,然后配锂高温焙烧,合成了梯度包覆的镍酸锂复合正极材料Li[Ni0.83Co0.07Mn0.10]O2。采用X射线衍射(XRD)、扫描电镜(SEM)、恒电流充放电测试等方法对材料的结构、表观形貌及电化学性能进行了表征。结果表明,该材料具有良好的六方单相层状α-Na Fe O2结构,呈类球状。切面元素线扫描显示该材料的包覆壳层中锰金属元素呈梯度变化。同时该新型梯度包覆的镍钴锰酸锂复合正极材料表现出了优越的电化学性能:在25℃下,2.8~4.3 V充放电范围,0.5 C首次放电比容量可达190.5 m Ah/g,循环50次容量保持92.5%;55℃下,该材料首次放电比容量可达210.1 m Ah/g,循环50次容量仍能保持81.1%。展开更多
An amorphous CoSnO3@rGO nanocomposite fabricated using a surfactant‐assisted assembly method combined with thermal treatment served as a catalyst for non‐aqueous lithium‐oxygen(Li‐O2)batteries.In contrast to the s...An amorphous CoSnO3@rGO nanocomposite fabricated using a surfactant‐assisted assembly method combined with thermal treatment served as a catalyst for non‐aqueous lithium‐oxygen(Li‐O2)batteries.In contrast to the specific surface area of the bare CoSnO3 nanoboxes(104.3 m2 g–1),the specific surface area of the CoSnO3@rGO nanocomposite increased to approximately 195.8 m2 g–1 and the electronic conductivity also improved.The increased specific surface area provided more space for the deposition of Li2O2,while the improved electronic conductivity accelerated the decomposition of Li2O2.Compared to bare CoSnO3,the overpotential reduced by approximately 20 and 60 mV at current densities of 100 and 500 mA g?1 when CoSnO3@rGO was used as the catalyst.A Li‐O2 battery using a CoSnO3@rGO nanocomposite as the cathode catalyst cycled indicated a superior cyclic stability of approximately 130 cycles at a current density of 200 mA g–1 with a limited capacity of 1000 mAh g–1,which is 25 cycles more than that of the bare amorphous CoSnO3 nanoboxes.展开更多
文摘LiNi1-xCoxO2 with x=0.1, 0.2, 0.3, 0.5 and 1 were prepared by co-precipitation of mixed solution of Ni- and Co-salt in NaOH. The structure of LiNi1-xCoxO2 was analyzed by XRD. The results show that the unit cell constants a and c decrease as the Co content increases. Although the change of unit cell constants can reflect the substitution of Co ions with Ni ions in the lab, the splits of the pairs of (006), (102) and (108), (110) in the XRD pattern can not reflect the presence of Ni2+ in the lithium site.
基金Project(21473258)supported by the National Natural Science Foundation of ChinaProject(13JJ1004)supported by the Distinguished Young Scientists of Hunan Province,ChinaProject(NCET-11-0513)supported by the New Century Excellent Talents in University,China
文摘Li[NixCoyMn2]O2(0.6≤x≤0.8) cathode materials with a typical hexagonal α-NaFeO2 structure were prepared utilizing a co-precipitation method.It is found that the ratio of peak intensities of(003) to(104) observed from X-ray diffraction(XRD)increases with decreasing the Ni content or increasing the Co content.The scanning electron microscopy(SEM) images reveal that the small primary particles are agglomerated to form the secondary ones.As the Mn content increases,the primary and secondary particles become larger and the resulted particle size for the Li[Ni(0.6)Co(0.2)Mn(0.2)]O2 is uniformly distributed in the range of100-300 nm.Although the initial discharge capacity of the Li/Li[NixCoyMn2]O2 cells reduces with decreasing the Ni content,the cyclic performance and rate capability are improved with higher Mn or Co content.The Li[Ni(0.6)Co(0.2)Mn(0.2)]O2 can deliver excellent cyclability with a capacity retention of 97.1%after 50 cycles.
文摘以过渡金属硫酸盐和一水合氢氧化锂为原料,采用共沉淀-高温固相烧结法制备富锂正极材料Li[Li0.2Ni0.13Co0.13Mn0.54]O2。通过XRD、SEM和电池充放电测试方法考察了产物结构和性能,结果表明:在水浴50℃下控制p H=11合成的前驱体具有很好的分散性,且在950℃下烧结得到了优越的电化学性能;在0.1C(1C=300 m A/g)充放电时,首次放电比容量为258.9 m Ah/g(2.0~4.8 V),首次充放电效率为75.6%;在1C充放电时,首次放电比容量为204.6 m Ah/g,循环10次后放电比容量为179.9 m Ah/g;2C倍率下仍保持了141.4 m Ah/g的放电比容量。
文摘采用溶胶凝胶法在球形Ni(OH)2颗粒表面包覆钴、锰氧化物,作为镍钴锰氢氧化物浓度梯度包覆的复合前驱体,然后配锂高温焙烧,合成了梯度包覆的镍酸锂复合正极材料Li[Ni0.83Co0.07Mn0.10]O2。采用X射线衍射(XRD)、扫描电镜(SEM)、恒电流充放电测试等方法对材料的结构、表观形貌及电化学性能进行了表征。结果表明,该材料具有良好的六方单相层状α-Na Fe O2结构,呈类球状。切面元素线扫描显示该材料的包覆壳层中锰金属元素呈梯度变化。同时该新型梯度包覆的镍钴锰酸锂复合正极材料表现出了优越的电化学性能:在25℃下,2.8~4.3 V充放电范围,0.5 C首次放电比容量可达190.5 m Ah/g,循环50次容量保持92.5%;55℃下,该材料首次放电比容量可达210.1 m Ah/g,循环50次容量仍能保持81.1%。
基金supported by the National Natural Science Foundation of China (11405144)the Fundamental Research Funds for the Central Universities (20720180081)~~
文摘An amorphous CoSnO3@rGO nanocomposite fabricated using a surfactant‐assisted assembly method combined with thermal treatment served as a catalyst for non‐aqueous lithium‐oxygen(Li‐O2)batteries.In contrast to the specific surface area of the bare CoSnO3 nanoboxes(104.3 m2 g–1),the specific surface area of the CoSnO3@rGO nanocomposite increased to approximately 195.8 m2 g–1 and the electronic conductivity also improved.The increased specific surface area provided more space for the deposition of Li2O2,while the improved electronic conductivity accelerated the decomposition of Li2O2.Compared to bare CoSnO3,the overpotential reduced by approximately 20 and 60 mV at current densities of 100 and 500 mA g?1 when CoSnO3@rGO was used as the catalyst.A Li‐O2 battery using a CoSnO3@rGO nanocomposite as the cathode catalyst cycled indicated a superior cyclic stability of approximately 130 cycles at a current density of 200 mA g–1 with a limited capacity of 1000 mAh g–1,which is 25 cycles more than that of the bare amorphous CoSnO3 nanoboxes.