机构地区:[1]Qingdao Industrial Energy Storage Research Institute,Qingdao Institute of Bioenergy and Bioprocess Technology,Chinese Academy of Sciences,Qingdao 266101,China [2]College of Chemistry and Molecular Engineering,Qingdao University of Science&Technology,Qingdao 266042,China [3]Key Laboratory for Renewable Energy,Beijing Key Laboratory for New Energy Materials and Devices,Beijing National Laboratory for Condensed Matter Physics,Institute of Physics,Chinese Academy of Sciences,Beijing 100190,China
出 处:《Science China Chemistry》2021年第1期92-100,共9页中国科学(化学英文版)
基 金:the National Key R&D Program of China(2018YFB0104300);the Science Foundation for the Strategic Priority Research Program of the Chinese Academy of Sciences(XDA22010600);the Distinguished Young Scholars of China(51625204);the National Natural Science Foundation of China(U1706229,51803230,21975274);the Key Scientific and Technological Innovation Project of Shandong(2017CXZC0505)。
摘 要:LiNi0.5Mn1.5O4(LNMO)spinel is one of the most promising high voltage cathode candidates for lithium ion batteries(LIBs).However,owing to the instability for organic electrolytes at 5V high voltage,it exhibits continuous oxidation,leading to the formation of unstable interface and the notorious dissolution of transition metal,which prevents the successful commercialization of LNMO.Herein,on the basis of energy level simulation,we present a high voltage resistant binder shielding strategy to address the challenging interfacial issue of LiNi0.5Mn1.5O4cathode.Our strategy is to design a novel poly(γ-glutamic acid)-c-1H,1H,9H,9H-perfluoro-1,9-nonanediol(γ-PGFO)binder with superior transition metal chelating effect and well-matched energy level to guarantee fantastic interfacial compatibility.It is demonstrated that the dissolution of transition metal is significantly suppressed in the presence ofγ-PGFO binder,which excels in the literature.It is also noted that intramolecular hydrogen binding of the well-designed binder can generate powerful facial-contact binding,which is significant for a promising binder.By encapsulating this binder inside the cathode matrix,the Li Ni0.5Mn1.5O4electrode exhibits a capacity of 105.8 m Ah g^(-1)after 500cycles at 1 C with a capacity retention of 88.2%,which is significantly superior to that of polyvinylidene fluoride(PVDF)/Li Ni0.5Mn1.5O4electrode(a capacity of 82.9 m Ah g^(-1)and a capacity retention of 63.4%).The overall Coulombic efficiency ofγ-PGFO/Li Ni0.5Mn1.5O4electrode is prominently improved to be 99.1%,compared with 95.5%of PVDF counterpart.The presented results demonstrate a promising strategy of amino acid-based binder with strong transition metal chelating capability for boosting the rapid development of high voltage lithium ion battery.
关 键 词:LiNi0.5Mn1.5O4 cathode amino acid binder high voltage interfacial regulation
分 类 号:TM912[电气工程—电力电子与电力传动] TQ317[化学工程—高聚物工业]
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