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复合材料CPM-200-InMn@S/ppy作为高性能锂硫电池新型正极材料的研究

Study on the CPM-200-InMn@S/ppy composite material as new cathode material for high performance lithium sulfur battery
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摘要 为了解决锂硫电池的穿梭效应、体积膨胀等问题,制备了复合材料CPM-200-InMn@S/ppy作为锂硫电池的正极材料。实验表明,其在0.1C倍率下首次放电比容量可达952.42mAh/g,循环100圈后容量保持率可达38.56%。CPM-200-InMn@S/ppy同时结合了CPM-200-InMn和ppy的双重优点,不仅具有ppy的高导电性,而且还具有CPM-200-InMn的结构特征和大比表面积,从而可以通过物理吸附和化学催化抑制穿梭效应和体积膨胀。与CPM-200-InMn@S正极材料相比,CPM-200-InMn@S/ppy表现出了高的可逆容量和优异的倍率性能。 In order to solve the problems of the shuttle effect and volume expansion of lithium-sulfur batteries,the CPM-200-InMn@S/ppy composite material was prepared as the cathode material,and it showed excellent electrochemical performance.The specific discharge capacity can reach 952.42 mAh/g for the first time at 0.1 C,and the capacity retention rate can reach 38.56% after 100 cycles.CPM-200-InMn@S/ppy combined the dual advantages of CPM-200-InMn and polypyrrole(ppy)at the same time,not only had the high conductivity of ppy,but also had the structural characteristics and large specific surface area of CPM-200-InMn,so that the shuttle effect and volume expansion can be suppressed by physical adsorption and chemical catalysis.Compared with CPM-200-InMn@S cathode material,CPM-200-InMn@S/ppy shown a higher reversible capacity and more excellent rate performance.
作者 张咪 姚佳 韩国栋 王娟 Zhang Mi;YaoJia;Han Guodong;Wang Juan(School of Mechanical and Electrical Engineering,Xi'anKey Laboratory of Clean Energy,Xi'an University of Architecture and Technology,Xi'an 710055)
出处 《化工新型材料》 CAS CSCD 北大核心 2021年第8期116-120,共5页 New Chemical Materials
关键词 锂硫电池 双金属有机骨架材料 正极材料 聚吡咯 穿梭效应 lithium-sulfur battery bimetallic MOF cathode material polypyrrole shuttle effect
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  • 1Bruce P.G.,Solid State Ionics,2008,179(21),752-760. 被引量:1
  • 2Marmorstein D.,Yu T.H.,Striebel K.A.,McLarnon F.R.,Hou J.,Cairns E.J.,J.Power Sources,2000,89(2),219-226. 被引量:1
  • 3Scrosati B.,Hassoun J.,Sun Y.K.,Energy Environ.Sci.,2011,4(9),3287-3295. 被引量:1
  • 4Mikhaylik Y.V.,Akridge J.R.,J.Electrochem.Soc.,2004,151(11),A1969-A1976. 被引量:1
  • 5Yang S.J.,Kim T.,Im J.H.,Kim Y.S.,Lee K.,Jung H.,Park C.R.,Chem.Mater.,2012,24(3),464-470. 被引量:1
  • 6Li W.,Zhao D.Y.,Chem.Commun.,2013,49(10),943-946. 被引量:1
  • 7Bruce P.G.,Freunberger S.A.,Hardwick L.J.,Tarascon J.M.,Nat.Mater.,2012,11(1),19-29. 被引量:1
  • 8Rauh R.D.,Abraham K.M.,Pearson G.F.,Surprenant J.K.,Brummer S.B.,J.Electrochem.Soc.,1979,126(4),523-527. 被引量:1
  • 9Rauh R.D.,Shuker F.S.,Marston J.M.,Brummer S.B.,J.Inorg.Nucl.Chem.,1977,39(10),1761-1766. 被引量:1
  • 10Cheon S.E.,Ko K.S.,Cho J.H.,Kim S.W.,Chin E.Y.,Kim H.T.,J.Electrochem.Soc.,2003,150(6),A800-A805. 被引量:1

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