Xinyan Jiao
Nanjing University of Science and Technology
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Publication
Featured researches published by Xinyan Jiao.
ACS Applied Materials & Interfaces | 2018
Yu Ouyang; Xifeng Xia; Haitao Ye; Liang Wang; Xinyan Jiao; Wu Lei; Qingli Hao
In this work, we synthesized the hierarchical ZnO@C@NiO core-shell nanorods arrays (CSNAs) grown on a carbon cloth (CC) conductive substrate by a three-step method involving hydrothermal and chemical bath methods. The morphology and chemical structure of the hybrid nanoarrays were characterized in detail. The combination and formation mechanism was proposed. The conducting carbon layer between ZnO and NiO layers can efficiently enhance the electric conductivity of the integrated electrodes, and also protect the corrosion of ZnO in an alkaline solution. Compared with ZnO@NiO nanorods arrays (NAs), the NiO in CC/ZnO@C@NiO electrodes, which possess a unique multilevel core-shell nanostructure exhibits a higher specific capacity (677 C/g at 1.43 A/g) and an enhanced cycling stability (capacity remain 71% after 5000 cycles), on account of the protection of carbon layer derived from glucose. Additionally, a flexible all-solid-state supercapacitor is readily constructed by coating the PVA/KOH gel electrolyte between the ZnO@C@NiO CSNAs and commercial graphene. The energy density of this all-solid-state device decreases from 35.7 to 16.0 Wh/kg as the power density increases from 380.9 to 2704.2 W/kg with an excellent cycling stability (87.5% of the initial capacitance after 10000 cycles). Thereby, the CC/ ZnO@C@NiO CSNAs of three-dimensional hierarchical structure is promising electrode materials for flexible all-solid-state supercapacitors.
Nanotechnology | 2017
Xinyan Jiao; Xifeng Xia; Peng Liu; Wu Lei; Yu Ouyang; Qingli Hao
Strongly coupled boron and nitrogen co-doped graphene (BN-G) hybrids with nickel cobaltite (NiCo2O4) nanosheets (NCO/BN-G) were fabricated by a facile soft-chemical method for asymmetric supercapacitors with high-performance. The strong interaction between BN-G and NiCo2O4 nanosheets are explored by various techniques. The effect of heteroatom doping on electrochemical properties of the hybrids is systematically investigated. The strong synergistic effect between NiCo2O4 and BN-G leads to a specific capacitance of 106.5 mA h g-1 at the current density of 0.5 A g-1 and capacitance retention of 96.8% after 10 000 cycles at 5 A g-1, much better than those of the pure NiCo2O4 and its hybrid with N-doped graphene. Moreover, an asymmetric supercapacitor device, assembled with NCO/BN-G and activated carbon (NCO/BN-G//AC), exhibits a maximum energy density of 45.6 Wh kg-1 and an excellent cycling stability. The improved electrochemical performance of the NCO/BN-G hybrid is attributed to the good conductivity of BN-G and the synergistic effect between NiCo2O4 nanosheets and BN-G combined together through a plane-to-plane contact mode.
Chemsuschem | 2018
Xinyan Jiao; Qingli Hao; Xifeng Xia; Wu Lei; Yu Ouyang; Haitao Ye; Daniel Mandler
The incorporation of spacers between graphene sheets has been investigated as an effective method to improve the electrochemical performance of graphene papers (GPs) for supercapacitors. Here, we report the design of free-standing GP@NiO and GP@Ni hybrid GPs in which NiO nanoclusters and Ni nanoparticles are encapsulated into graphene sheets through electrostatic assembly and subsequent vacuum filtration. The encapsulated NiO nanoclusters and Ni nanoparticles can mitigate the restacking of graphene sheets, providing sufficient spaces for high-speed ion diffusion and electron transport. In addition, the spacers strongly bind to graphene sheets, which can efficiently improve the electrochemical stability. Therefore, at a current density of 0.5 A g-1 , the GP@NiO and GP@Ni electrodes exhibit higher specific capacitances of 306.9 and 246.1 F g-1 than the GP electrode (185.7 F g-1 ). The GP@NiO and GP@Ni electrodes exhibit capacitance retention of 98.7 % and 95.6 % after 10000 cycles, demonstrating an outstanding cycling stability. Additionally, the GP@NiO∥GP@Ni delivers excellent cycling stability (93.7 % after 10 000 cycles) and high energy density. These free-standing encapsulated hybrid GPs have great potential as electrode for high-performance supercapacitors.
Applied Surface Science | 2018
Liang Wang; Xinyan Jiao; Peng Liu; Yu Ouyang; Xifeng Xia; Wu Lei; Qingli Hao
Chemical Engineering Journal | 2018
Liang Wang; Yu Ouyang; Xinyan Jiao; Xifeng Xia; Wu Lei; Qingli Hao
Chemical Engineering Journal | 2019
Yu Ouyang; Rongjiao Huang; Xifeng Xia; Haitao Ye; Xinyan Jiao; Liang Wang; Wu Lei; Qingli Hao
Industrial & Engineering Chemistry Research | 2018
Di Yao; Yu Ouyang; Xinyan Jiao; Haitao Ye; Wu Lei; Xifeng Xia; Lei Lu; Qingli Hao
Applied Surface Science | 2018
Peng Liu; Xifeng Xia; Wu Lei; Xinyan Jiao; Lei Lu; Yu Ouyang; Qingli Hao
Materials Letters | 2019
Cheng Zhang; Liang Wang; Wu Lei; Yuting Wu; Caiwei Li; Muhammad Asim Khan; Yu Ouyang; Xinyan Jiao; Haitao Ye; Sadaf Mutahir; Qingli Hao
Electrochimica Acta | 2018
Liang Wang; Chengxin Wang; Haifei Wang; Xinyan Jiao; Yu Ouyang; Xifeng Xia; Wu Lei; Qingli Hao