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Synthesis and electrochemical properties of polyradical cathode material for lithium second batteries
引用本文:DENG,Ling-feng(邓凌峰),LI,Xin-hai(李新海),XIAO,Li-xin(肖立新),ZHANG,Yun-he(张云河). Synthesis and electrochemical properties of polyradical cathode material for lithium second batteries[J]. 中南工业大学学报(英文版), 2003, 10(3): 190-194. DOI: 10.1007/s11771-003-0006-x
作者姓名:DENG  Ling-feng(邓凌峰)  LI  Xin-hai(李新海)  XIAO  Li-xin(肖立新)  ZHANG  Yun-he(张云河)
作者单位:School of Metallurgical Science and Engineering,Central South University,Changsha 410083,China,School of Metallurgical Science and Engineering,Central South University,Changsha 410083,China,School of Metallurgical Science and Engineering,Central South University,Changsha 410083,China,School of Metallurgical Science and Engineering,Central South University,Changsha 410083,China
摘    要:A stable polyradical, poly (2 ,2,6,6-tetramethylpiperidinyloxy methacrylate)(PTMA) , was synthesized, and its structure was determined by infrared, ultraviolet-visible, and ESR spectroscopy. Cyclic voltammograms of the PTMA polyradical electrodes were obtained by using a three-electrode cell at a scan rate of 5 mV/s within a potential range of 3. 2-4. 0 V. The results show that the shape of oxidation peak is very similar to that of reduction peak, and oxidation peak current is equal to the corresponding reduction peak current, which suggest that PTMA possesses an excellent reversibility. The difference of the anodic peak potential (Ea,p = 3. 66 V, vs Li/Li+) and ca-thodic peak potential(Ec,p = 3. 58 V, vs Li/Li+ ) is estimated at 80 mV, which is extremely less than that of the other organic positive materials in lithium second batteries such as organosulfide compounds, leading to a capability for high current capability in the charging and discharging process of the battery. The maximum discharge specif

收稿时间:2002-12-25
修稿时间:2003-03-12

Synthesis and electrochemical properties of polyradical cathode material for lithium second batteries
Deng Ling-feng , Li Xin-hai , Xiao Li-xin and Zhang Yun-he. Synthesis and electrochemical properties of polyradical cathode material for lithium second batteries[J]. Journal of Central South University of Technology, 2003, 10(3): 190-194. DOI: 10.1007/s11771-003-0006-x
Authors:Deng Ling-feng    Li Xin-hai    Xiao Li-xin   Zhang Yun-he
Affiliation:(1) School of Metallurgical Science and Engineering, Central South University, 410083 Changsha, China
Abstract:A stable polyradical, poly (2,2,6,6-tetramethylpiperidinyloxy methacrylate)(PTMA), was synthesized, and its structure was determined by infrared, ultraviolet-visible, and ESR spectroscopy. Cyclic voltammograms of the PTMA polyradical electrodes were obtained by using a three-electrode cell at a scan rate of 5 mV/s within a potential range of 3.2–4.0 V. The results show that the shape of oxidation peak is very similar to that of reduction peak, and oxidation peak current is equal to the corresponding reduction peak current, which suggest that PTMA possesses an excellent reversibility. The difference of the anodic peak potential (E a,p=3.66 V, vs Li/Li+) and cathodic peak potential(E c,p=3.58 V, vs Li/Li+) is estimated at 80 mV, which is extremely less than that of the other organic positive materials in lithium second batteries such as organosulfide compounds, leading to a capability for high current capability in the charging and discharging process of the battery. The maximum discharge specific capacity of PTMA is 78.4 mA · h/g at the constant discharge current of 0.3 mA (0.2 C rate), the coulombic efficiency is about 95%, and the charging and discharging curves of the batteries have an obvious plateau at 3.65 V and 3.56 V, respectively. The discharging specific capacity of the battery decreased is about 2% after 100 cycles. The PTMA/Li button batteries exhibite an excellent stability.
Keywords:polymer  radical  synthesis  lithium second battery  electrochemical property
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