TY - JOUR
T1 - Three-Dimensional Multilayered Interconnected Network of Conjugated Carbon Nanofibers Encapsulated Silicon/Graphene Oxide for Lithium Storage
AU - Chen, Wanzheng
AU - Chen, Yangshen
AU - Cheng, Yuanyuan
AU - Zhang, Wenhui
AU - Shao, Meng
AU - Shen, Yu
AU - Wu, Peng
AU - Zheng, Bing
AU - Li, Sheng
AU - Zhang, Weina
AU - Wu, Jiansheng
N1 - Publisher Copyright:
© 2019, Springer Science+Business Media, LLC, part of Springer Nature.
PY - 2020/3/1
Y1 - 2020/3/1
N2 - Construction of three-dimensional (3D) conductive interconnected network architecture is an effective strategy to improve the performance of lithium-ion storage capability. Currently, the main challenges faced by silicon (Si) electrodes are volume change and low intrinsic electrical conductivity since the former will lead to severe particle pulverization and the latter will result in poor cycle performance. Herein, a 3D multilayer composite material featuring interconnected network structure was designed using electrospinning technique and low temperature heat treatment method. The unique structure was alternately composed of Si-encapsulated conjugated carbon nanofibers and graphene oxide (GO) layers. The conjugated carbon nanofibers network formed by polyacrylonitrile can not only shorten the ion transport path, but also alleviate volume expansion of Si during lithium ion insertion/extraction due to its well-maintained polymer elasticity. The addition of GO in the multilayer of carbon nanofibers network effectively enhanced the conductivity of the whole electrode, and greatly reduced the direct contact between Si and electrolyte. As a result, the binderless and free-standing Si-based composite electrode with maintained structural integrity effectively improved the capacity and initial Coulombic efficiency of Si anode. The composite electrode was prepared through a facile and high-yield process, showing potential commercial application value.
AB - Construction of three-dimensional (3D) conductive interconnected network architecture is an effective strategy to improve the performance of lithium-ion storage capability. Currently, the main challenges faced by silicon (Si) electrodes are volume change and low intrinsic electrical conductivity since the former will lead to severe particle pulverization and the latter will result in poor cycle performance. Herein, a 3D multilayer composite material featuring interconnected network structure was designed using electrospinning technique and low temperature heat treatment method. The unique structure was alternately composed of Si-encapsulated conjugated carbon nanofibers and graphene oxide (GO) layers. The conjugated carbon nanofibers network formed by polyacrylonitrile can not only shorten the ion transport path, but also alleviate volume expansion of Si during lithium ion insertion/extraction due to its well-maintained polymer elasticity. The addition of GO in the multilayer of carbon nanofibers network effectively enhanced the conductivity of the whole electrode, and greatly reduced the direct contact between Si and electrolyte. As a result, the binderless and free-standing Si-based composite electrode with maintained structural integrity effectively improved the capacity and initial Coulombic efficiency of Si anode. The composite electrode was prepared through a facile and high-yield process, showing potential commercial application value.
KW - 3D interconnected network
KW - Conjugated carbon nanofibers
KW - GO
KW - Lithium-ion batteries
KW - Silicon anode
UR - http://www.scopus.com/inward/record.url?scp=85068166947&partnerID=8YFLogxK
U2 - 10.1007/s10904-019-01246-5
DO - 10.1007/s10904-019-01246-5
M3 - 文章
AN - SCOPUS:85068166947
SN - 1574-1443
VL - 30
SP - 801
EP - 807
JO - Journal of Inorganic and Organometallic Polymers and Materials
JF - Journal of Inorganic and Organometallic Polymers and Materials
IS - 3
ER -