Qingfu Wang
Chinese Academy of Sciences
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Featured researches published by Qingfu Wang.
Scientific Reports | 2015
Jianjun Zhang; Liping Yue; Qingshan Kong; Zhihong Liu; Xinhong Zhou; Chuanjian Zhang; Quan Xu; Bo Zhang; Guoliang Ding; Bingsheng Qin; Yulong Duan; Qingfu Wang; Jianhua Yao; Guanglei Cui; Liquan Chen
A sustainable, heat-resistant and flame-retardant cellulose-based composite nonwoven has been successfully fabricated and explored its potential application for promising separator of high-performance lithium ion battery. It was demonstrated that this flame-retardant cellulose-based composite separator possessed good flame retardancy, superior heat tolerance and proper mechanical strength. As compared to the commercialized polypropylene (PP) separator, such composite separator presented improved electrolyte uptake, better interface stability and enhanced ionic conductivity. In addition, the lithium cobalt oxide (LiCoO2)/graphite cell using this composite separator exhibited better rate capability and cycling retention than that for PP separator owing to its facile ion transport and excellent interfacial compatibility. Furthermore, the lithium iron phosphate (LiFePO4)/lithium cell with such composite separator delivered stable cycling performance and thermal dimensional stability even at an elevated temperature of 120°C. All these fascinating characteristics would boost the application of this composite separator for high-performance lithium ion battery.
Scientific Reports | 2015
Jianjun Zhang; Liping Yue; Pu Hu; Zhihong Liu; Bingsheng Qin; Bo Zhang; Qingfu Wang; Guoliang Ding; Chuanjian Zhang; Xinhong Zhou; Jianhua Yao; Guanglei Cui; Liquan Chen
Inspired by Taichi, we proposed rigid-flexible coupling concept and herein developed a highly promising solid polymer electrolyte comprised of poly (ethylene oxide), poly (cyano acrylate), lithium bis(oxalate)borate and robust cellulose nonwoven. Our investigation revealed that this new class solid polymer electrolyte possessed comprehensive properties in high mechanical integrity strength, sufficient ionic conductivity (3 × 10−4 S cm−1) at 60°C and improved dimensional thermostability (up to 160°C). In addition, the lithium iron phosphate (LiFePO4)/lithium (Li) cell using such solid polymer electrolyte displayed superior rate capacity (up to 6 C) and stable cycle performance at 80°C. Furthermore, the LiFePO4/Li battery could also operate very well even at an elevated temperature of 160°C, thus improving enhanced safety performance of lithium batteries. The use of this solid polymer electrolyte mitigates the safety risk and widens the operation temperature range of lithium batteries. Thus, this fascinating study demonstrates a proof of concept of the use of rigid-flexible coupling solid polymer electrolyte toward practical lithium battery applications with improved reliability and safety.
ACS Applied Materials & Interfaces | 2015
Pu Hu; Yulong Duan; Deping Hu; Bingsheng Qin; Jianjun Zhang; Qingfu Wang; Zhihong Liu; Guanglei Cui; Liquan Chen
LiMn2O4-based batteries exhibit severe capacity fading during cycling or storage in LiPF6-based liquid electrolytes, especially at elevated temperatures. Herein, a novel rigid-flexible gel polymer electrolyte is introduced to enhance the cyclability of LiMn2O4/graphite battery at elevated temperature. The polymer electrolyte consists of a robust natural cellulose skeletal incorporated with soft segment poly(ethyl α-cyanoacrylate). The introduction of the cellulose effectively overcomes the drawback of poor mechanical integrity of the gel polymer electrolyte. Density functional theory (DFT) calculation demonstrates that the poly(ethyl α-cyanoacrylate) matrices effectively dissociate the lithium salt to facilitate ionic transport and thus has a higher ionic conductivity at room temperature. Ionic conductivity of the gel polymer electrolyte is 3.3 × 10(-3) S cm(-1) at room temperature. The gel polymer electrolyte remarkably improves the cycling performance of LiMn2O4-based batteries, especially at elevated temperatures. The capacity retention after the 100th cycle is 82% at 55 °C, which is much higher than that of liquid electrolyte (1 M LiPF6 in carbonate solvents). The polymer electrolyte can significantly suppress the dissolution of Mn(2+) from surface of LiMn2O4 because of strong interaction energy of Mn(2+) with PECA, which was investigated by DFT calculation.
Small | 2017
Jianjun Zhang; Huijie Wen; Liping Yue; Jingchao Chai; Jun Ma; Pu Hu; Guoliang Ding; Qingfu Wang; Zhihong Liu; Guanglei Cui; Liquan Chen
Sodium ion battery is one of the promising rechargeable batteries due to the low-cost and abundant sodium sources. In this work, a monolithic sodium ion battery based on a Na3 V2 (PO4 )3 cathode, MoS2 layered anode, and polyether-based polymer electrolyte is reported. In addition, a new kind of polysulfonamide-supported poly(ethylene glycol) divinyl ether based polymer electrolyte is also demonstrated for monolithic sodium ion battery via in situ preparation. The resultant polymer electrolyte exhibits relatively high ionic conductivity (1.2 mS cm-1 ) at ambient temperature, wide electrochemical window (4.7 V), and favorable mechanical strength (25 MPa). Moreover, such a monolithic Na3 V2 (PO4 )3 /MoS2 sodium ion battery using this polymer electrolyte delivers outstanding rate capability (up to 10 C) and superior cyclic stability (84%) after 1000 cycles at 0.5 C. What is more essential, such a polymer electrolyte based soft-package monolithic sodium ion cell can still power a red light emitting diode lamp and run finite times without suffering from any internal short-circuit failures, even in the case of a bended and wrinkled state. Considering these aspects, this work no doubt provides a new approach for the design of a high-performance polymer electrolyte toward monolithic sodium ion battery with exceptional rate capability and high safety.
Advanced Energy Materials | 2015
Jianjun Zhang; Jianghui Zhao; Liping Yue; Qingfu Wang; Jingchao Chai; Zhihong Liu; Xinhong Zhou; Hong Li; Yu-Guo Guo; Guanglei Cui; Liquan Chen
Coordination Chemistry Reviews | 2015
Zhihong Liu; Jingchao Chai; Gaojie Xu; Qingfu Wang; Guanglei Cui
Nano Energy | 2014
Bo Zhang; Qingfu Wang; Jianjun Zhang; Guoliang Ding; Gaojie Xu; Zhihong Liu; Guanglei Cui
Electrochimica Acta | 2015
Qingfu Wang; Bo Zhang; Jianjun Zhang; Yong Yu; Pu Hu; Chuanjian Zhang; Guoliang Ding; Zhihong Liu; Chengzhong Zong; Guanglei Cui
Journal of Power Sources | 2016
Qingfu Wang; Yong Yu; Jun Ma; Ning Zhang; Jianjun Zhang; Zhihong Liu; Guanglei Cui
Electrochimica Acta | 2016
Kailiang Liu; Meng Liu; Junmei Cheng; Shanmu Dong; Chengdong Wang; Qingfu Wang; Xinhong Zhou; Hongguang Sun; Xiao Chen; Guanglei Cui