Title Caging Nb2O5 Nanowires in PECVD-Derived Graphene Capsules toward Bendable Sodium-Ion Hybrid Supercapacitors
Authors Wang, Xiangguo
Li, Qiucheng
Zhang, Li
Hu, Zhongli
Yu, Lianghao
Jiang, Tao
Lu, Chen
Yan, Chenglin
Sun, Jingyu
Liu, Zhongfan
Affiliation Soochow Univ, Key Lab Adv Carbon Mat & Wearable Energy Technol, Coll Phys, Soochow Inst Energy & Mat Innovat SIEMIS, Suzhou 215006, Peoples R China.
Peking Univ, Coll Chem & Mol Engn, Ctr Nanochem CNC, Beijing 100871, Peoples R China.
Keywords direct growth
graphene capsules
Nb2O5 nanowires
plasma-enhanced CVD
sodium-ion hybrid supercapacitors
ELECTROCHEMICAL ENERGY-STORAGE
CAPACITORS
PSEUDOCAPACITANCE
NANOSHEETS
BATTERIES
CATHODE
ELECTRODES
NANOTUBES
ULTRAFAST
LI
Issue Date 2018
Publisher ADVANCED MATERIALS
Citation ADVANCED MATERIALS. 2018, 30(26).
Abstract Sodium-ion hybrid supercapacitors (Na-HSCs) by virtue of synergizing the merits of batteries and supercapacitors have attracted considerable attention for high-energy and high-power energy-storage applications. Orthorhombic Nb2O5 (T-Nb2O5) has recently been recognized as a promising anode material for Na-HSCs due to its typical pseudocapacitive feature, but it suffers from intrinsically low electrical conductivity. Reasonably high electrochemical performance of T-Nb2O5-based electrodes could merely be gained to date when sufficient carbon content was introduced. In addition, flexible Na-HSC devices have scarcely been demonstrated by far. Herein, an in situ encapsulation strategy is devised to directly grow ultrathin graphene shells over T-Nb2O5 nanowires (denoted as Gr-Nb2O5 composites) by plasma-enhanced chemical vapor deposition, targeting a highly conductive anode material for Na-HSCs. The few-layered graphene capsules with ample topological defects would enable facile electron and Na+ ion transport, guaranteeing rapid pseudocapacitive processes at the Nb2O5/electrolyte interface. The Na-HSC full-cell comprising a Gr-Nb2O5 anode and an activated carbon cathode delivers high energy/power densities (112.9 Wh kg(-1)/80.1 W kg(-1) and 62.2 Wh kg(-1)/5330 W kg(-1)), outperforming those of recently reported Na-HSC counterparts. Proof-of-concept Na-HSC devices with favorable mechanical robustness manifest stable electrochemical performances under different bending conditions and after various bending-release cycles.
URI http://hdl.handle.net/20.500.11897/523586
ISSN 0935-9648
DOI 10.1002/adma.201800963
Indexed SCI(E)
EI
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