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Decoupling slab gliding and lattice contraction in Na layered oxides to enable high-voltage Na-ion batteries - Nature Communications
Abstract Layered transition metal oxide cathodes (NaxTMO2) demonstrate a classic type of cathode for Sodium-ion batteries (SIBs), however their practical application faces a long-standing challenge of irreversible phase transitions at high voltages, which causes unsatisfied specific energy and cycling stability, particularly for P-type (Na+ located at prismatic sites) cathodes.
Hard carbon micro-nano tubes derived from kapok fiber as anode materials for sodium-ion batteries and the sodium-ion storage mechanism
Hard carbon micro-nano tubes derived from kapok fiber as anode materials for sodium-ion batteries and the sodium-ion storage mechanism† Zhuo-Er Yu,a Yingchun Lyu, *a Yeting Wang,a Shuyin Xu,b Hongyu Cheng,a Xiaoyang Mu,a Jiaqi Chu,a Riming Chen,a Yang Liu a and Bingkun Guo *a Author affiliations * Corresponding authors a Materials Genome Institute, Shanghai University, Shanghai 200444, P. R.
Hard Carbon Micro-Nano Tubes Derived from Kapok Fiber as Anode Materials for Sodium-Ion Batteries and the Sodium-Ion Storage Mechanism
Hard Carbon Micro-Nano Tubes Derived from Kapok Fiber as Anode Materials for Sodium-Ion Batteries and the Sodium-Ion Storage Mechanism Hard carbon materials are considered as the most promising anode for sodium-ion batteries (SIBs). However, the high cost and poor rate performance hinder their application in SIBs. Moreover, the controversial mechanism of Na-ion storage restricts the improvement of hard carbon anodes.
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