通过酚醛树酯包覆和碳热反应在富锂正极材料表面原位构建碳和尖晶石双壳保护结构,对这种核壳结构的正极材料进行了结构和形貌表征,并研究了其电化学性能.研究发现,尖晶石相为材料提供了三维锂离子迁移通道,碳包覆层显著提高了正极材料...通过酚醛树酯包覆和碳热反应在富锂正极材料表面原位构建碳和尖晶石双壳保护结构,对这种核壳结构的正极材料进行了结构和形貌表征,并研究了其电化学性能.研究发现,尖晶石相为材料提供了三维锂离子迁移通道,碳包覆层显著提高了正极材料的电子电导率,两种效应的共同作用极大降低了材料的电化学阻抗,提升了材料的放电比容量,这种多壳层结构正极材料还具有优异的倍率性能,在5C倍率下放电比容量可达到135.1 m A·h/g.展开更多
Identification of the favorable salt-and potash-forming layer,we still mainly rely on logging interpretation and coring verification.However,we both know that the continuously carbonate platform is cyclical growing.It...Identification of the favorable salt-and potash-forming layer,we still mainly rely on logging interpretation and coring verification.However,we both know that the continuously carbonate platform is cyclical growing.It has recorded valuable information about the phase transition of carbonate rocks,which were synchronized with the relative sea-level cycles.This paper presents a fast and展开更多
文摘通过酚醛树酯包覆和碳热反应在富锂正极材料表面原位构建碳和尖晶石双壳保护结构,对这种核壳结构的正极材料进行了结构和形貌表征,并研究了其电化学性能.研究发现,尖晶石相为材料提供了三维锂离子迁移通道,碳包覆层显著提高了正极材料的电子电导率,两种效应的共同作用极大降低了材料的电化学阻抗,提升了材料的放电比容量,这种多壳层结构正极材料还具有优异的倍率性能,在5C倍率下放电比容量可达到135.1 m A·h/g.
文摘Identification of the favorable salt-and potash-forming layer,we still mainly rely on logging interpretation and coring verification.However,we both know that the continuously carbonate platform is cyclical growing.It has recorded valuable information about the phase transition of carbonate rocks,which were synchronized with the relative sea-level cycles.This paper presents a fast and