Variation in Crystalline Phases: Controlling the Selectivity between Silicon and Silicon Carbide via Magnesiothermic Reduction using Silica/Carbon Composites

被引:57
作者
Ahn, Jihoon [1 ]
Kim, Hee Soo [2 ]
Pyo, Jung [1 ]
Lee, Jin-Kyu [3 ]
Yoo, Won Cheol [2 ]
机构
[1] Seoul Natl Univ, Dept Chem, 1 Gwanak Ro, Seoul 151747, South Korea
[2] Hanyang Univ, Dept Appl Chem, Ansan 426791, South Korea
[3] LG Chem, 188 Munji Ro, Daejeon 305738, South Korea
基金
新加坡国家研究基金会;
关键词
MESOPOROUS SILICON; REVERSIBLE STORAGE; ANODE MATERIALS; LITHIUM; CARBON; PERFORMANCE; NANOCOMPOSITE; NANOCRYSTALS; MICROSPHERES; NANOSPHERES;
D O I
10.1021/acs.chemmater.5b05037
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Magnesiothermic reduction of various types of silica/carbon (SiO2/C) composites has been frequently used to synthesize silicon/carbon (Si/C) composites and silicon carbide (SiC) materials, which are of great interest in the research areas of lithium-ion batteries (LIBs) and nonmetal oxide ceramics, respectively. Up to now, however, it has not been comprehensively understood how totally different crystal phases of Si or SiC can result from the compositionally identical parent materials (SiO2/C) via magnesiothermic reduction. In this article, we propose a formation mechanism of Si and SiC by magnesiothermic reduction of SiO2/C; SiC is formed at the interface between SiO2 and carbon when silicon intermediates, mainly in situ-formed Mg2Si, encounter carbon through diffusion. Otherwise, Si is formed, which is supported by an ex situ reaction between Mg2Si and carbon nanosphere that results in SiC. In addition, the resultant crystalline phase ratio between Si and SiC can be controlled by manipulating the synthesis parameters such as the contact areas between silica and carbon of parent materials, reaction temperatures, heating rates, and amount of the reactant mixtures used. The reasons for the dependence on these synthesis parameters could be attributed to the modulated chance of an encounter between silicon intermediates and carbon, which determines the destination of silicon intermediates, namely, either thermodynamically preferred SiC or kinetic product of Si as a final product. Such a finding was applied to design and synthesize the hollow mesoporous shell (ca. 3-4 nm pore) SiC, which is particularly of interest as a catalyst support under harsh environments.
引用
收藏
页码:1526 / 1536
页数:11
相关论文
共 49 条
[21]   Core-Shell Si/C Nanospheres Embedded in Bubble Sheet-like Carbon Film with Enhanced Performance as Lithium Ion Battery Anodes [J].
Li, Wenyue ;
Tang, Yongbing ;
Kang, Wenpei ;
Zhang, Zhenyu ;
Yang, Xia ;
Zhu, Yu ;
Zhang, Wenjun ;
Lee, Chun-Sing .
SMALL, 2015, 11 (11) :1345-1351
[22]   Hollow nanospheres of loosely packed Si/SiOx nanoparticles encapsulated in carbon shells with enhanced performance as lithium ion battery anodes [J].
Li, Wenyue ;
Li, Zhangpeng ;
Kang, Wenpei ;
Tang, Yongbing ;
Zhang, Zhenyu ;
Yang, Xia ;
Xue, Hongtao ;
Lee, Chun-Sing .
JOURNAL OF MATERIALS CHEMISTRY A, 2014, 2 (31) :12289-12295
[23]   Managing voids of Si anodes in lithium ion batteries [J].
Li, Xianglong ;
Zhi, Linjie .
NANOSCALE, 2013, 5 (19) :8864-8873
[24]   Facile preparation of silicon hollow spheres and their use in electrochemical capacitive energy storage [J].
Liu, Mei-Pin ;
Li, Cheng-Hui ;
Du, Hong-Bin ;
You, Xiao-Zeng .
CHEMICAL COMMUNICATIONS, 2012, 48 (41) :4950-4952
[25]   Rice husks as a sustainable source of nanostructured silicon for high performance Li-ion battery anodes [J].
Liu, Nian ;
Huo, Kaifu ;
McDowell, Matthew T. ;
Zhao, Jie ;
Cui, Yi .
SCIENTIFIC REPORTS, 2013, 3
[26]   Triconstituent Co-assembly to ordered mesostructured polymer-silica and carbon-silica nanocomposites and large-pore mesoporous carbons with high surface areas [J].
Liu, Ruili ;
Shi, Yifeng ;
Wan, Ying ;
Meng, Yan ;
Zhang, Fuqiang ;
Gu, Dong ;
Chen, Zhenxia ;
Tu, Bo ;
Zhao, Dongyuan .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2006, 128 (35) :11652-11662
[27]   Low-temperature formation of nanocrystalline β-SiC with high surface area and mesoporosity via reaction of mesoporous carbon and silicon powder [J].
Liu, ZC ;
Shen, WH ;
Bu, WB ;
Chen, HR ;
Hua, ZL ;
Zhang, LX ;
Li, L ;
Shi, JL ;
Tan, SH .
MICROPOROUS AND MESOPOROUS MATERIALS, 2005, 82 (1-2) :137-145
[28]   Synthesis of Discrete and Dispersible Hollow Carbon Nanospheres with High Uniformity by Using Confined Nanospace Pyrolysis [J].
Lu, An-Hui ;
Sun, Tao ;
Li, Wen-Cui ;
Sun, Qiang ;
Han, Fei ;
Liu, Dong-Hai ;
Guo, Yue .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2011, 50 (49) :11765-11768
[29]   LARGE-BAND-GAP SIC, III-V NITRIDE, AND II-VI ZNSE-BASED SEMICONDUCTOR-DEVICE TECHNOLOGIES [J].
MORKOC, H ;
STRITE, S ;
GAO, GB ;
LIN, ME ;
SVERDLOV, B ;
BURNS, M .
JOURNAL OF APPLIED PHYSICS, 1994, 76 (03) :1363-1398
[30]   Direct magnesiothermic reduction of titanium dioxide to titanium powder through combustion synthesis [J].
Nersisyan, H. H. ;
Won, H. I. ;
Won, C. W. ;
Jo, A. ;
Kim, J. H. .
CHEMICAL ENGINEERING JOURNAL, 2014, 235 :67-74