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Doping sites modulation of T-Nb_(2)O_(5) to achieve ultrafast lithium storage 被引量:1
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作者 xiaobo ding Huiying Huang +4 位作者 Qianhui Huang Benrui Hu Xiaokang Li Xiangdong Ma Xunhui Xiong 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2023年第2期280-289,I0008,共11页
Heteroatoms doping has been regarded as a promising route to modulate the physiochemical properties of electrode materials,in which the doping sites greatly influence the electrochemical performances.However,very few ... Heteroatoms doping has been regarded as a promising route to modulate the physiochemical properties of electrode materials,in which the doping sites greatly influence the electrochemical performances.However,very few reports focus on enhancing the lithium storage performances of Nb_(2)O_(5) via heteroatoms doping,yet the effect of different doping sites remains unclear.Herein,nitrogen doping has been proposed to improve the fast-charging capability of orthorhombic Nb_(2)O_(5)(T-Nb_(2)O_(5))via a urea-assisted annealing process.Experimental data and theoretical calculation demonstrate that the N doping sites in T-Nb_(2)O_(5) can be tuned by the heating rate,in which substitutional N can increase the spacing of the Li^(+)transport layer as well as reduce the band gap,while interstitial N can provide an electron-rich environment for Li^(+)transport layer and then reduce the Li^(+)diffusion barrier.Arising from the synergistic effect of N doping at different sites,the N-doped T-Nb_(2)O_(5) without carbon coating delivers impressive rate performance(104.6 mA h g^(-1) at 25 C)as well as enhanced cycle stability with a retention of 70.5%over1000 cycles at 5 C.In addition,the assembled lithium ion capacitor exhibits a high energy density of46.6 Wh kg^(-1) even at high power density of 8.4 kW kg^(-1). 展开更多
关键词 Niobium oxide Nitrogen doping Doping site Lithium-ion capacitor
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Competitive Redox Chemistries in Vanadium Niobium Oxide for Ultrafast and Durable Lithium Storage
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作者 xiaobo ding Jianhao Lin +2 位作者 Huiying Huang Bote Zhao Xunhui Xiong 《Nano-Micro Letters》 SCIE EI CAS CSCD 2023年第11期90-103,共14页
Niobium pentoxide(Nb_(2)O_(5))anodes have gained increasing attentions for high-power lithium-ion batteries owing to the outstanding rate capability and high safety.However,Nb2O5 anode suffers poor cycle stability eve... Niobium pentoxide(Nb_(2)O_(5))anodes have gained increasing attentions for high-power lithium-ion batteries owing to the outstanding rate capability and high safety.However,Nb2O5 anode suffers poor cycle stability even after modified and the unrevealed mechanisms have restricted the practical applications.Herein,the over-reduction of Nb5+has been demonstrated to be the critical reason for the capacity loss for the first time.Besides,an effective competitive redox strategy has been developed to solve the rapid capacity decay of Nb_(2)O_(5),which can be achieved by the incorporation of vanadium to form a new rutile VNbO_(4)anode.The highly reversible V^(3+)/V^(2+)redox couple in VNbO_(4)can effectively inhibit the over-reduction of Nb^(5+).Besides,the electron migration from V^(3+)to Nb5+can greatly increase the intrinsic electronic conductivity for VNbO4.As a result,VNbO4 anode delivers a high capacity of 206.1 mAh g^(−1)at 0.1 A g^(−1),as well as remarkable cycle performance with a retention of 93.4%after 2000 cycles at 1.0 A g^(−1).In addition,the assembled lithium-ion capacitor demonstrates a high energy density of 44 Wh kg^(−1)at 5.8 kW kg^(−1).In summary,our work provides a new insight into the design of ultra-fast and durable anodes. 展开更多
关键词 Niobium pentoxide Capacity decay Over-reduction Vanadium niobium oxide Lithium-ion capacitor
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锂离子电池快充石墨负极研究与应用 被引量:5
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作者 丁晓博 黄倩晖 熊训辉 《物理化学学报》 SCIE CAS CSCD 北大核心 2022年第11期89-104,共16页
相较于传统燃油汽车,电动汽车缓慢的充电速度始终制约了其进一步推广。为电动汽车实现“加油式”快速充电能够缓解充电桩的使用压力,增加电动汽车的应用场景和市场占有率。因此,亟需开发出具有快速充放电能力的高性能锂离子电池。石墨... 相较于传统燃油汽车,电动汽车缓慢的充电速度始终制约了其进一步推广。为电动汽车实现“加油式”快速充电能够缓解充电桩的使用压力,增加电动汽车的应用场景和市场占有率。因此,亟需开发出具有快速充放电能力的高性能锂离子电池。石墨因其低廉的价格和优异的电化学性能已经在锂离子电池负极领域得到了广泛的商业化应用,然而其较低的嵌锂电位导致在快充过程中出现析锂,损害电化学性能的同时会带来安全隐患。因此,必须对石墨进行改良处理,以适应快充技术的需要。本文系统介绍了近年来石墨负极快充化改良领域的研究进展,从成分设计,形貌调控,结构优化,电解液适配等方面进行了评述,并总结了快充石墨面临的挑战,展望了其发展前景,为推动快充技术的商业化应用提供了借鉴。 展开更多
关键词 石墨 负极 快充 锂离子电池
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多壳层中空材料的制备及其应用 被引量:1
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作者 丁晓博 吴华龙 +5 位作者 莫文彬 李新海 王志兴 郭华军 颜果春 王接喜 《科学通报》 EI CAS CSCD 北大核心 2019年第34期3526-3545,共20页
多壳层中空材料具有比表面积大、结构稳定的优点,其特有的中空形貌结构赋予了它优异的光、电、磁、热等性质,是近年来材料领域研究的热点之一.近年来,随着材料合成工艺与设备的发展,具有功能多样化的中空材料得到蓬勃发展.本文首先介绍... 多壳层中空材料具有比表面积大、结构稳定的优点,其特有的中空形貌结构赋予了它优异的光、电、磁、热等性质,是近年来材料领域研究的热点之一.近年来,随着材料合成工艺与设备的发展,具有功能多样化的中空材料得到蓬勃发展.本文首先介绍了几类多壳层中空材料的合成方法,包括硬模板法、软模板法、无模板法(如奥斯瓦尔德熟化法、柯肯达尔效应法、离子交换法、选择性刻蚀法、热诱导迁移法、喷雾干燥法).然后,对不同形貌的多壳层中空材料进行了分类,并对其合成过程中的生长机制进行了归纳总结.最后,总结了多壳层中空材料在锂/钠二次电池、超级电容器、染料敏化太阳能电池、光催化、光解水等领域中的应用进展. 展开更多
关键词 多壳层 中空结构 合成方法 生长机制 能源应用
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