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基于活性炭‖Na_(0.44)MnO_(2)的低成本、高倍率和长寿命碱性钠离子电池电容器
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作者 薛晴 李圣驿 +9 位作者 赵亚楠 盛鹏 徐丽 李正曦 张波 李慧 王博 杨立滨 曹余良 陈重学 《物理化学学报》 SCIE CAS CSCD 北大核心 2024年第2期87-88,共2页
水系钠离子电池电容器具有成本低、功率大、安全性好等优点,是下一代大规模储能系统的理想选择之一。本文采用Na_(0.44)MnO_(2)正极、活性炭(AC)负极、6mol·L^(-1)NaOH电解液和廉价的不锈钢集流体构建了可充电碱性钠离子电池电容... 水系钠离子电池电容器具有成本低、功率大、安全性好等优点,是下一代大规模储能系统的理想选择之一。本文采用Na_(0.44)MnO_(2)正极、活性炭(AC)负极、6mol·L^(-1)NaOH电解液和廉价的不锈钢集流体构建了可充电碱性钠离子电池电容器。由于Na_(0.44)MnO_(2)正极在碱性电解液中具有较高的过充耐受性,通过首次充电时的原位过充预活化过程可以解决半钠化Na_(0.44)MnO_(2)正极和AC负极初始库伦效率低的缺点。因此,AC‖Na_(0.44)MnO_(2)可充电碱性钠离子电池电容器具有优异的电化学性能,在功率密度为85 W·kg^(-1)时,能量密度达26.6 Wh·kg^(-1),循环10000次后容量保持率为89%。同时,在50℃的高温和-20℃的低温也具有良好的电化学性能。这些结果表明AC‖Na_(0.44)MnO_(2)可充电碱性钠离子电池电容器具备应用于大规模储能的潜力。 展开更多
关键词 钠离子电池电容 碱性电解液 过充自保护 低成本 宽工作温程
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Structural engineering of a bimetallic iron-cobalt sulfide composite anode for superior sodium-ion battery performance
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作者 FU Zheng-guang LI Nan +2 位作者 SHAO Xin-yu HONG Min SUN Ju-tao 《新型炭材料(中英文)》 北大核心 2025年第5期1113-1122,I0029-I0035,共17页
Transition metal sulfides are considered promising anode materials for sodium-ion batteries(SIBs)due to their high theoretical capacity and low synthesis cost.However,is-sues such as poor cyclic stability and rate per... Transition metal sulfides are considered promising anode materials for sodium-ion batteries(SIBs)due to their high theoretical capacity and low synthesis cost.However,is-sues such as poor cyclic stability and rate performance,arising from volume expansion and structural degradation,remain sig-nificant challenges.We report a novel FeS_(2)/CoS_(2) heterostruc-ture embedded in a 3D carbon aerogel matrix(FeS_(2)/CoS_(2)@C)synthesized by a cross-linking and vulcanization process.The resulting core-shell structure,with bimetallic FeS_(2)/CoS_(2) nano-particles encapsulated in a conductive carbon shell,effectively reduces the adverse effects of volume changes during sodiation/desodiation cycles.The 3D porous carbon network increases both ion and electron diffusion,while preventing agglomeration of the active material and maintaining interface integrity.The FeS_(2)/CoS_(2)@C composite has an outstanding electrochemical performance,including a high specific capacity of 725 mAh g^(-1)at 0.5 A g^(-1)and an exceptional rate capability of 572 mAh g^(-1)at 10 A g^(-1).It also has remarkable cycling stability with no signific-ant capacity decay over 1000 cycles at 5 A g^(-1). 展开更多
关键词 Sodium-ion battery ANODE Metal sulfide High capacity Electrochemical performance
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