Fluorination of Li-Rich Lithium-Ion-Battery Cathode Materials by Fluorine Gas: Chemistry, Characterization, and Electrochemical Performance in Half Cells

被引:39
作者
Breddemann, Ulf [1 ,2 ]
Erickson, Evan M. [3 ]
Davis, Victoria [1 ,2 ]
Schipper, Florian [3 ]
Ellwanger, Mathias [1 ,2 ]
Daub, Michael [1 ,2 ]
Hoffmann, Anke [1 ,2 ]
Erk, Christoph [4 ]
Markovsky, Boris [3 ]
Aurbach, Doron [3 ]
Krossing, Ingo [1 ,2 ]
机构
[1] Univ Freiburg, FMF, Albertstr 21, D-79104 Freiburg, Germany
[2] Univ Freiburg, Inst Anorgan & Analyt Chem, Albertstr 21, D-79104 Freiburg, Germany
[3] Bar Ilan Univ, Dept Chem, IL-5290002 Ramat Gan, Israel
[4] BASF SE, Carl Bosch Str 38, D-67056 Ludwigshafen, Germany
关键词
lithium-ion batteries; Li-rich cathode materials; surface fluorination; fluorine gas; electrochemical testing; POSITIVE-ELECTRODE MATERIAL; ENHANCED RATE CAPABILITY; NICKEL MANGANESE OXIDES; HIGH-VOLTAGE SPINEL; LAYERED OXIDES; MN-RICH; SURFACE MODIFICATION; HIGH-CAPACITY; CYCLING STABILITY; IN-SITU;
D O I
10.1002/celc.201900733
中图分类号
O646 [电化学、电解、磁化学];
学科分类号
081704 ;
摘要
Mild fluorination of high-energy nickel-cobalt-manganese (HE-NCM) materials with low pressures of elementary fluorine gas (F-2) at room temperature was systematically studied. The fluorinated HE-NCM samples were analysed by ion chromatography, inductively coupled plasma mass spectrometry, FT-IR spectroscopy, powder X-ray diffraction, magic angle spinning NMR spectroscopy, scanning electron microscopy, thermo-gravimetric analysis, differential thermal analysis, electrochemical testing, and X-ray photoelectron spectroscopy. The treatment of the cathode materials with low pressures (a few hundred mbar) of elementary fluorine gas at room temperature led to the elimination of the basic surface film (LiOH, Li2CO3, Li2O, etc.), and the resulting thin amorphous LiF film led to increased capacity and long-term stability of the battery. Impedance built-up was greatly reduced for these systems throughout cycling. Fluorination with F-2 only causes the formation of O-Me-F bonds (Me=Transition Metal), when treated with F-2 at higher pressures. If O-Me-F bonds are formed, it may be detrimental to the electrode surface film resistance and cycle stability of the electrodes. However, it may be that the LiF surface content, which can expand as long as the LiMeO2 structure can be oxidized and Li+ can be extracted, has become too large and thus detrimental. Considering the evolution of differential capacity plots and taking into account the thermodynamic driving force of the F-2 treatment, it is likely that the same activation processes that occur electrochemically in Li-rich materials also occur chemically, when the material is exposed to F-2. Differential capacity plots show enhanced Mn4+ reduction peaks upon lithiation, when the material was exposed to F-2, only possible after activation of the Li2MnO3 phase. For this reason, we believe fluorination promotes to some extent an activation of this phase.
引用
收藏
页码:3337 / 3349
页数:13
相关论文
共 164 条
[51]   Fluorination Induced the Surface Segregation of High Voltage Spinel on Lithium-Rich Layered Cathodes for Enhanced Rate Capability in Lithium Ion Batteries [J].
Jin, Yi-Chun ;
Duh, Jenq-Gong .
ACS APPLIED MATERIALS & INTERFACES, 2016, 8 (06) :3883-3891
[52]   Development and utility of manganese oxides as cathodes in lithium batteries [J].
Johnson, Christopher S. .
JOURNAL OF POWER SOURCES, 2007, 165 (02) :559-565
[53]   The significance of the Li2MnO3 component in 'composite' xLi2MnO3 • (1-x)LiMn0.5Ni0.5O2 electrodes [J].
Johnson, CS ;
Kim, JS ;
Lefief, C ;
Li, N ;
Vaughey, JT ;
Thackeray, MM .
ELECTROCHEMISTRY COMMUNICATIONS, 2004, 6 (10) :1085-1091
[54]   Effects of Atomic Layer Deposition of Al2O3 on the Li[Li0.20Mn0.54Ni0.13Co0.13]O2 Cathode for Lithium-Ion Batteries [J].
Jung, Yoon Seok ;
Cavanagh, Andrew S. ;
Yan, Yanfa ;
George, Steven M. ;
Manthiram, Arumugam .
JOURNAL OF THE ELECTROCHEMICAL SOCIETY, 2011, 158 (12) :A1298-A1302
[55]   Improving the Cycling Performance and Thermal Stability of LiNi0.6Co0.2Mn0.2O2 Cathode Materials by Nb-doping and Surface Modification [J].
Kaneda, Haruki ;
Koshika, Yuki ;
Nakamura, Takuma ;
Nagata, Hiroaki ;
Ushio, Ryozo ;
Mori, Kensaku .
INTERNATIONAL JOURNAL OF ELECTROCHEMICAL SCIENCE, 2017, 12 (06) :4640-4653
[56]   Nano- and bulk-silicon-based insertion anodes for lithium-ion secondary cells [J].
Kasavajjula, Uday ;
Wang, Chunsheng ;
Appleby, A. John .
JOURNAL OF POWER SOURCES, 2007, 163 (02) :1003-1039
[57]   Fast-Rate Capable Electrode Material with Higher Energy Density than LiFePO4: 4.2V LiVPO4F Synthesized by Scalable Single-Step Solid-State Reaction [J].
Kim, Minkyung ;
Lee, Seongsu ;
Kang, Byoungwoo .
ADVANCED SCIENCE, 2016, 3 (03)
[58]   Effects of the Fluorine-Substitution and Acid Treatment on the Electrochemical Performances of 0.3Li2MnO3•0.7LiMn0.60Ni0.25Co0.15O2 Cathode Material for Li-Ion Battery [J].
Kim, Seon-Min ;
Jin, Bong-Soo ;
Lee, Sang-Min ;
Kim, Hyun-Soo .
ELECTROCHIMICA ACTA, 2015, 171 :35-41
[59]   Electrochemical Performances of the Fluorine-Substituted on the 0.3Li2MnO3•0.7LiMn0.60Ni0.25Co0.15O2 Cathode Material [J].
Kim, Seon-Min ;
Jin, Bong-Soo ;
Park, Gum-Jae ;
Kim, Hyun-Soo .
JOURNAL OF ELECTROCHEMICAL SCIENCE AND TECHNOLOGY, 2014, 5 (03) :87-93
[60]   Highly stable TiO2 coated Li2MnO3 cathode materials for lithium-ion batteries [J].
Kim, Si-Jin ;
Kim, Min-Cheol ;
Kwak, Da-Hee ;
Kim, Da-Mi ;
Lee, Gyu-Ho ;
Choe, Hui-Seon ;
Park, Kyung-Won .
JOURNAL OF POWER SOURCES, 2016, 304 :119-127