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硅/石墨负极中硅的体电阻率和掺杂类型对锂离子电池电化学性能的影响 被引量:3
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作者 金晨鑫 徐国军 +4 位作者 刘烈凯 岳之浩 李晓敏 汤昊 周浪 《材料导报》 EI CAS CSCD 北大核心 2017年第22期10-14,共5页
将电阻率为1Ω·cm、0.1Ω·cm、0.01Ω·cm、0.001Ω·cm的n型掺杂硅片以及电阻率为1Ω·cm、0.001Ω·cm的p型掺杂硅片球磨制成6种硅粉,并分别将其与石墨按照5∶95的质量比进行混合,用作锂离子电池负极材料... 将电阻率为1Ω·cm、0.1Ω·cm、0.01Ω·cm、0.001Ω·cm的n型掺杂硅片以及电阻率为1Ω·cm、0.001Ω·cm的p型掺杂硅片球磨制成6种硅粉,并分别将其与石墨按照5∶95的质量比进行混合,用作锂离子电池负极材料并制成扣式电池,通过电化学阻抗谱和倍率性能测试来研究硅材料体电阻率和掺杂类型对锂离子电池电化学性能的影响规律。结果表明,硅材料体电阻率越低,其储锂容量越高,倍率性能越好。电阻率相同时,n型掺杂硅始终比p型掺杂硅具有更大的储锂容量和更好的倍率性能。但是,当p型掺杂硅的电阻率远低于n型掺杂硅时,p型掺杂硅电化学性能更佳。另外,0.001Ω·cm的n型掺杂硅样品具有最佳的充放电比容量和倍率性能,其首次充放电比容量分别为457.7mAh·g^(-1)和543.4mAh·g^(-1)。 展开更多
关键词 硅/石墨负极 体电阻率 N型掺杂 P型掺杂 锂离子电池 电化学性能
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Composites of graphene and encapsulated silicon for practically viable high-performance lithium-ion batteries 被引量:4
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作者 Xin Zhao Minjie Li Kuo-Hsin Chang Yu-Ming Lin 《Nano Research》 SCIE EI CAS CSCD 2014年第10期1429-1438,共10页
A facile and scalable approach to synthesize silicon composite anodes has been developed by encapsulating Si particles via in situ polymerization and carbonization of phloroglucinol-formaldehyde gel, followed by incor... A facile and scalable approach to synthesize silicon composite anodes has been developed by encapsulating Si particles via in situ polymerization and carbonization of phloroglucinol-formaldehyde gel, followed by incorporation of graphene nanoplatelets. As a result of its structural integrity, high packing density and an intimate electrical contact consolidated by the conductive networks, the composite anode yielded excellent electrochemical performance in terms of charge storage capability, cycling life and coulombic efficiency. A half cell achieved reversible capacities of 1,600 mAh·g-1 and 1,000 mAh·g-1 at 0.5 A·g-1 and 2.1 A·g-1, respectively, while retaining more than 70% of the initial capacities over 1,000 cycles. Complete lithium-ion pouch cells coupling the anode with a lithium metal oxide cathode demonstrated excellent cycling performance and energy output, representing significant advance in developing Si-based electrode for practical application in high-performance lithium-ion batteries. 展开更多
关键词 silicon nanoparticles graphene nanoplatelets phloroglucinol-formaldehyde gel lithium-ion batteries
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