Enhancing Delithiation Reversibility of Li15Si4 Alloy of Silicon Nanoparticles-Carbon/Graphite Anode Materials for Stable-Cycling Lithium Ion Batteries by Restricting the Silicon Particle Size

Silicon nanoparticles (SiNPs) with a median size of 51 nm are prepared by the sand mill from waste silicon, and then carbon-interweaved SiNPs/graphite anode materials are designed. Because of the size of SiNPs is restricted below a critical fracture size of 150 nm as well as the rational decoration...

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Veröffentlicht in:ACS applied materials & interfaces 2019-10, Vol.11 (39), p.35809-35819
Hauptverfasser: Gan, Chuanhai, Zhang, Chengkun, Wen, Weidong, Liu, Yingkuan, Chen, Juan, Xie, Qingshui, Luo, Xuetao
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container_title ACS applied materials & interfaces
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creator Gan, Chuanhai
Zhang, Chengkun
Wen, Weidong
Liu, Yingkuan
Chen, Juan
Xie, Qingshui
Luo, Xuetao
description Silicon nanoparticles (SiNPs) with a median size of 51 nm are prepared by the sand mill from waste silicon, and then carbon-interweaved SiNPs/graphite anode materials are designed. Because of the size of SiNPs is restricted below a critical fracture size of 150 nm as well as the rational decoration of carbon and graphite, fracture of SiNPs, and volume deformation of active materials are highly alleviated, leading to low impedance, enhanced electrochemical reaction kinetics, and good electronic connection between active materials and current collector. Furthermore, delithiation reversibility of the formed crystalline Li15Si4 alloy is enhanced. As a result, the anode with 10.5 wt % content of Si (including SiO x ) delivers a properly high initial reversible capacity of 505 mA h g–1, high cycling stability with capacity retentions of 86.3%, and 91.5% at 0.1 and 1 A g–1 after 500 cycles, respectively. After cycling at a series of higher current densities, the reversible capacity recovers to the original level completely (100% recovery) when the current density is set back to the original value, exhibiting outstanding rate performance. The results indicate that the silicon–carbon anode can achieve high cycling performances with enhanced delithiation reversibility of the formed crystalline Li15Si4 alloy by restricting size of SiNPs and decoration of carbon materials, which are discussed systematically. The SiNPs are recycled from waste Si, and synthetic strategy of anode materials is very facile, cost-effective, and nontoxic, which has potential for industrial production.
doi_str_mv 10.1021/acsami.9b13750
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The results indicate that the silicon–carbon anode can achieve high cycling performances with enhanced delithiation reversibility of the formed crystalline Li15Si4 alloy by restricting size of SiNPs and decoration of carbon materials, which are discussed systematically. 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Mater. Interfaces</addtitle><date>2019-10-02</date><risdate>2019</risdate><volume>11</volume><issue>39</issue><spage>35809</spage><epage>35819</epage><pages>35809-35819</pages><issn>1944-8244</issn><eissn>1944-8252</eissn><abstract>Silicon nanoparticles (SiNPs) with a median size of 51 nm are prepared by the sand mill from waste silicon, and then carbon-interweaved SiNPs/graphite anode materials are designed. Because of the size of SiNPs is restricted below a critical fracture size of 150 nm as well as the rational decoration of carbon and graphite, fracture of SiNPs, and volume deformation of active materials are highly alleviated, leading to low impedance, enhanced electrochemical reaction kinetics, and good electronic connection between active materials and current collector. Furthermore, delithiation reversibility of the formed crystalline Li15Si4 alloy is enhanced. As a result, the anode with 10.5 wt % content of Si (including SiO x ) delivers a properly high initial reversible capacity of 505 mA h g–1, high cycling stability with capacity retentions of 86.3%, and 91.5% at 0.1 and 1 A g–1 after 500 cycles, respectively. After cycling at a series of higher current densities, the reversible capacity recovers to the original level completely (100% recovery) when the current density is set back to the original value, exhibiting outstanding rate performance. The results indicate that the silicon–carbon anode can achieve high cycling performances with enhanced delithiation reversibility of the formed crystalline Li15Si4 alloy by restricting size of SiNPs and decoration of carbon materials, which are discussed systematically. 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