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无汞碱锰电池锌负极的研究(Ⅱ) 被引量:7
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作者 费锡明 彭历 +2 位作者 黄正喜 龙光斗 陈琼 《华中师范大学学报(自然科学版)》 CAS CSCD 北大核心 2001年第1期57-60,共4页
在碱性锌锰电池负极铜集电体表面用化学方法分别沉积致密的铟、锌、锡单层和锌铟、锡铟、锌锡双层金属 .用动态析氢实验表征 ,发现沉积单、双层金属的集电体在含锌粉的 7.0 mol/ LKOH溶液体系中的析氢量比无沉积层的铜集电体析氢量要小 ... 在碱性锌锰电池负极铜集电体表面用化学方法分别沉积致密的铟、锌、锡单层和锌铟、锡铟、锌锡双层金属 .用动态析氢实验表征 ,发现沉积单、双层金属的集电体在含锌粉的 7.0 mol/ LKOH溶液体系中的析氢量比无沉积层的铜集电体析氢量要小 ,其中沉积锌铟、锡铟双层的析氢量最小 ,与用循环伏安和极化曲线方法测试金属集电体的电化学行为的结果一致 .在相同的条件下 ,将沉积不同镀层的集电体装配成电池进行放电 ,实验结果表明 :集电体表面化学沉积铟、锌、锡单层或锌铟、锡铟、锌锡双层金属用来生产无汞碱锰电池的放电性能均超过这类电池的国家行业标准 QB1 1 展开更多
关键词 碱锰电池 集电集 锌负极 动态析氢实验 放电性能 电化学行为 表面沉积
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Hierarchically Micro/Nanostructured Current Collectors Induced by Ultrafast Femtosecond Laser Strategy for High-Performance Lithium-ion Batteries 被引量:2
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作者 Yaya Wang Zexu Zhao +8 位作者 Jiang Zhong Tao Wang Lei Wang Hanjiao Xu Jinhui Cao Jinhao Li Guanhua Zhang Huilong Fei Jian Zhu 《Energy & Environmental Materials》 SCIE EI CAS CSCD 2022年第3期969-976,共8页
Commercial Cu and Al current collectors for lithium-ion batteries(LIBs)possess high electrical conductivity,suitable chemical and electrochemical stability.However,the relatively flat surface of traditional current co... Commercial Cu and Al current collectors for lithium-ion batteries(LIBs)possess high electrical conductivity,suitable chemical and electrochemical stability.However,the relatively flat surface of traditional current collectors causes weak bonding strength and poor electrochemical contact between current collectors and electrode materials,resulting in potential detachment of active materials and rapid capacity degradation during extended cycling.Here,we report an ultrafast femtosecond laser strategy to manufacture hierarchical micro/nanostructures on commercial Al and Cu foils as current collectors for high-performance LIBs.The hierarchically micro/nanostructured current collectors(HMNCCs)with high surface area and roughness offer strong adhesion to active materials,fast electronic delivery of entire electrodes,significantly improving reversible capacities and cyclic stability of HMNCCs based LIBs.Consequently,LiNi_(0.5)Co_(0.2)Mn_(0.3)O_(2)(NCM523)cathode with Al HMNCC generated a high reversible capacity after 200 cycles(25%higher than that of cathode with Al CC).Besides,graphite anode with Cu HMNCC also maintained prominent reversible capacity even after 600 cycles.Moreover,the full cell assembled by graphite anode with Cu HMNCC and NCM523 cathode with Al HMNCC achieved high reversible capacity and remarkable cycling stability under industrial-grade mass loading.This study provides promising candidate for achieving high-performance LIBs current collectors. 展开更多
关键词 currentcollectors femtosecondlaserstrategy hierarchical micro/nanostructures high rate performance lithium-ion battery
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Review of nanostructured current collectors in lithium-sulfur batteries 被引量:14
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作者 Long Kong Hong-Jie Peng +1 位作者 Jia-Qi Huang Qiang Zhang 《Nano Research》 SCIE EI CAS CSCD 2017年第12期4027-4054,共28页
Lithium-sulfur (Li-S) batteries are receiving increasing attention because of their high theoretical energy density and the natural abundance of S. However, their practical applications are impeded by the low areal ... Lithium-sulfur (Li-S) batteries are receiving increasing attention because of their high theoretical energy density and the natural abundance of S. However, their practical applications are impeded by the low areal S loading in the cathode and the fatal Li dendrites in the anode of the Li-S cells, which yield an inferior practical energy density and introduce safety concerns, respectively. In this review, we focus on an emerging approach--the nanostructured current collector--to overcome these two critical challenges for Li-S batteries. We describe the general attributes of nanostructured current collectors and examine how these attributes enhance the S utilization with a high S loading and suppress the Li dendrites by regulating the Li-deposition behavior. We present various assembly blocks that have been used for the construction of advanced nanostructured current collectors to build better S cathodes and Li anodes. Finally, we investigate the current challenges and possible solutions regarding the practical applications of nanostructured current collectors in Li-S batteries. 展开更多
关键词 Li-S batteries nanostructured currentcollectors Li metal anode graphene C nanotubes composite cathode
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