Kong Lingping, Zhang Chuanfang, Wang Jitong, Qiao Wenming, Ling Licheng, Long Donghui
State Key Laboratory of Chemical Engineering, East China University of Science and Technology, Shanghai 200237, China.
Key Laboratory of Specially Functional Polymeric Materials and Related Technology, East China University of Science and Technology, Shanghai 200237, China.
Sci Rep. 2016 Feb 16;6:21177. doi: 10.1038/srep21177.
Li-ion intercalation materials with extremely high rate capability will blur the distinction between batteries and supercapacitors. We construct a series of nanoarchitectured intercalation materials including orthorhombic (o-) Nb2O5 hollow microspheres, o-Nb2O5@carbon core-shell microspheres and tetragonal (t-) NbO2@carbon core-shell microspheres, through a one-pot hydrothermal method with different post-treatments. These nanoarchitectured materials consist of small nanocrystals with highly exposed active surface, and all of them demonstrate good Li(+) intercalation pseudocapacitive properties. In particular, o-Nb2O5 hollow microspheres can deliver the specific capacitance of 488.3 F g(-1), and good rate performance of 126.7 F g(-1) at 50 A g(-1). The o-Nb2O5@carbon core-shell microspheres show enhanced specific capacitance of 502.2 F g(-1) and much improved rate performance (213.4 F g(-1) at 50 A g(-1)). Furthermore, we demonstrate for the first time, t-NbO2 exhibits much higher rate capability than o-Nb2O5. For discharging time as fast as 5.9 s (50 A g(-1)), it still exhibits a very high specific capacitance of 245.8 F g(-1), which is 65.2% retention of the initial capacitance (377.0 F g(-1) at 1 A g(-1)). The unprecedented rate capability is an intrinsic feature of t-NbO2, which may be due to the conductive lithiated compounds.
具有极高倍率性能的锂离子插层材料将模糊电池和超级电容器之间的区别。我们通过一锅水热法并结合不同的后处理工艺,构建了一系列纳米结构插层材料,包括正交(o-)Nb2O5空心微球、o-Nb2O5@碳核壳微球和四方(t-)NbO2@碳核壳微球。这些纳米结构材料由具有高度暴露活性表面的小纳米晶体组成,并且它们都表现出良好的Li(+)插层赝电容特性。特别是,o-Nb2O5空心微球在50 A g(-1)时可提供488.3 F g(-1)的比电容,以及126.7 F g(-1)的良好倍率性能。o-Nb2O5@碳核壳微球表现出增强的比电容502.2 F g(-1),并且倍率性能有了很大提高(在50 A g(-1)时为213.4 F g(-1))。此外,我们首次证明,t-NbO₂的倍率性能比o-Nb₂O₅高得多。对于低至5.9 s(50 A g(-1))的放电时间,它仍表现出非常高的比电容245.8 F g(-1),这是初始电容(在1 A g(-1)时为377.0 F g(-1))的65.2%保留率。前所未有的倍率性能是t-NbO₂的固有特性,这可能归因于导电锂化化合物。