Hyperbranched β-Cyclodextrin Polymer as an Effective Multidimensional Binder for Silicon Anodes in Lithium Rechargeable Batteries

被引:298
作者
Jeong, You Kyeong [1 ]
Kwon, Tae-woo [1 ]
Lee, Inhwa [2 ]
Kim, Taek-Soo [2 ,4 ]
Coskun, Ali [1 ,3 ,4 ]
Choi, Jang Wook [1 ,4 ]
机构
[1] Korea Adv Inst Sci & Technol, Grad Sch EEWS, Taejon 305701, South Korea
[2] Korea Adv Inst Sci & Technol, Dept Mech Engn, Taejon 305701, South Korea
[3] Korea Adv Inst Sci & Technol, Dept Chem, Taejon 305701, South Korea
[4] Korea Adv Inst Sci & Technol, KAIST Inst NanoCentury, Ctr Nat Inspired Technol CNiT, Taejon 305701, South Korea
基金
新加坡国家研究基金会;
关键词
Binder; cyclodextrin; cycle life; lithium ion battery; self-healing; silicon anode; LI-ION BATTERIES; NEGATIVE ELECTRODES; SI ANODE;
D O I
10.1021/nl404237j
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Polymeric binders play an important role in electrochemical performance of high-capacity silicon (Si) anodes that usually suffer from severe capacity fading due to unparalleled volume change of Si during cycling. In an effort to find efficient polymeric binders that could mitigate such capacity fading, herein, we introduce polymerized beta-cyclodextrin (beta-CDp) binder for Si nanoparticle anodes. Unlike one-dimensional binders, hyperbranched network structure of beta-CDp presents multidimensional hydrogen-bonding interactions with Si particles and therefore offers robust contacts between both components. Even the Si nanoparticles that lost the original contacts with the binder during cycling recover within multidimensional binder network, thus creating a self-healing effect. Utilizing these advantageous features, beta-CDp-based Si electrode shows markedly improved cycling performance compared to those of other well-known binder cases, especially when combined with linear polymers at an appropriate ratio to form hybrid binders.
引用
收藏
页码:864 / 870
页数:7
相关论文
共 40 条
[1]   Building better batteries [J].
Armand, M. ;
Tarascon, J. -M. .
NATURE, 2008, 451 (7179) :652-657
[2]   Enzymatic production of cyclodextrins [J].
Biwer, A ;
Antranikian, G ;
Heinzle, E .
APPLIED MICROBIOLOGY AND BIOTECHNOLOGY, 2002, 59 (06) :609-617
[3]   ALL-SOLID LITHIUM ELECTRODES WITH MIXED-CONDUCTOR MATRIX [J].
BOUKAMP, BA ;
LESH, GC ;
HUGGINS, RA .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 1981, 128 (04) :725-729
[4]   Key Parameters Governing the Reversibility of Si/Carbon/CMC Electrodes for Li-Ion Batteries [J].
Bridel, J. -S. ;
Azais, T. ;
Morcrette, M. ;
Tarascon, J. -M. ;
Larcher, D. .
CHEMISTRY OF MATERIALS, 2010, 22 (03) :1229-1241
[5]  
Bruce P., 2005, NAT MATER, V4, P366
[6]   High-performance lithium battery anodes using silicon nanowires [J].
Chan, Candace K. ;
Peng, Hailin ;
Liu, Gao ;
McIlwrath, Kevin ;
Zhang, Xiao Feng ;
Huggins, Robert A. ;
Cui, Yi .
NATURE NANOTECHNOLOGY, 2008, 3 (01) :31-35
[7]   Large-volume-change electrodes for Li-ion batteries of amorphous alloy particles held by elastomeric tethers [J].
Chen, ZH ;
Christensen, L ;
Dahn, JR .
ELECTROCHEMISTRY COMMUNICATIONS, 2003, 5 (11) :919-923
[8]   Stepwise Nanopore Evolution in One-Dimensional Nanostructures [J].
Choi, Jang Wook ;
McDonough, James ;
Jeong, Sangmoo ;
Yoo, Jee Soo ;
Chan, Candace K. ;
Cui, Yi .
NANO LETTERS, 2010, 10 (04) :1409-1413
[9]   Stress generation in silicon particles during lithium insertion [J].
Golmon, Stephanie ;
Maute, Kurt ;
Lee, Se-Hee ;
Dunn, Martin L. .
APPLIED PHYSICS LETTERS, 2010, 97 (03)
[10]   In situ XRD and electrochemical study of the reaction of lithium with amorphous silicon [J].
Hatchard, TD ;
Dahn, JR .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2004, 151 (06) :A838-A842