锂电池百篇论文点评(2014.12.1-2015.1.31)

第2期詹元杰等:锂电池百篇论文点评(2014.12.1—2015.1.31)

213

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储能科学与技术

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【jOO】Dix“H,Zbou

锂电池百篇论文点评(2014.12.1-2015.1.31)

作者:作者单位:刊名:英文刊名:年,卷(期):

詹元杰, 陈宇阳, 胡飞, 陈彬, 闫勇, 林明翔, 徐凯琪, 王昊, 贲留斌中国科学院物理研究所,北京,100190储能科学与技术

Energy Storage Science and Technology2015,4(2)

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50. Liao X L;Huang Q M;Mai S W Self-discharge suppression of 4.9 V LiNi0 5Mn1 5O4 cathode by using tris(trimethylsilyl) borate as an electrolyte additive 2014

51. Yang X L;Xing J L;Liu X Performance improvement and failure mechanism of LiNi0.5Mn1 5O4/graphite cells withbiphenyl additive 2014(44)

52. Jankowsky S;Hiller M M;Stolina R Performance of polyphosphazene based gel polymer electrolytes in combinationwith lithium metal anodes 2015

53. Wang D Y;Xiao A;Wells L Effect of mixtures of lithium hexafluorophosphate (LiPF6) and lithium bis(fluorosulfonyl) imide (LiFSI) as salts in LiNi1/3Mn1/3Co1/3O2/graphite pouch cells 2015(1)

54. Matsumoto K;Martinez M;Gutel T Stability of trimethyl phosphate non-flammable based electrolyte on the highvoltage cathode (LiNi0.5Mn1 5O4) 2015

55. Li B;Wang Y;Tu W Improving cyclic stability of lithium nickel manganese oxide cathode for high voltage lithiumion battery by modifying electrode/electrolyte interface with electrolyte additive 2014

56. Adams B D;Black R;Williams Z Towards a stable organic electrolyte for the lithium oxygen battery 2015(1)57. Ganapathy S;Adams B D;Stenou G Nature of Li2O2 oxidation in a LiO2 battery revealed by operando X-raydiffraction 2014(46)

58. Johnson L;Li C M;Liu Z The role of LiO2 solubility in O2 reduction in aprotic solvents and its consequences forLiO2 batteries 2014(12)

59. Balaish M;Peled E;Golodnitsky D Liquid-free lithium-oxygen batteries 2015(2)

60. Hu J J;Long G K;Liu S A LiFSI-LiTFSI binary-salt electrolyte to achieve high capacity and cycle stability for aLi-S battery 2014(93)

61. Zu C X;Klein M;Manthiram A Activated Li2S as a high-performancc cathode for rechargeable lithium-sulfurbatteries 2014(22)

62. Moy D;Manivannan A;Narayanan S R Direct measurement of polysulfide shuttle current:A window into understanding

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63. Wu F;Lee J T;Nitta N Lithium iodide as a promising electrolyte additive for lithium-sulfur batteries:Mechanismsof performance enhancement 2015(1)

64. Zu C;Manthiram A High-performance Li/dissolved polysulfide batteries with an advanced cathode structure and highsulfur content 2014

65. Ma L;Zhuang H;Lu Y Tethered molecular sorbents:Enabling metal-sulfur battery cathodes 2014

66. Sarasketa-Zabala E;Gandiaga I;Rodriguez-Martinez L M Calendar ageing analysis of a LiFePO4/graphite cell withdynamic model validations:Towards realistic lifetime predictions 2014

67. Waldmann T;Wohlfahrt-Mehrens M In-operando measurement of temperature gradients in cylindrical lithium-ion cellsduring high-current discharge 2015(1)

68. Como M;Bhatt N;Savaresi S M Electrochemical model-based state of charge estimation for Li-ion cells 2015(1)69. Jaeshin Y;Jeongbin L;Chee Burm S Modeling of the transient behaviors of a lithium-ion battery during dyuamiccycling 2015

70. Meng X;Song Y C Impedance model of lithium ion polymer battery considering temperature effects based onelectrochemical principle:Part Ⅰ for high frequency 2015

71. Petzl M;Kasper M;Danzer M A Lithium plating in a commercial lithium-ion battery:A low-temperature aging study2015

72. SidhuA;IzadianA;AnwarS Adaptivenonlinearmodel-based fault diagnosis of Li-ion batteries 2015(2)

73. Feng Xuinng;Sun Jing;Ouyang Minggao Characterization of penetration induced thermal runaway propagation processwithin a large format lithium ion battery module 2015

74. Lohmann N;Wesskamp P;Haussmann P Electrochemical impedance spectroscopy for lithium-ion cells:Test equipment andprocedures for aging and fast characterization in time and frequency domain 2015

75. Bai G X;Wang P F;Hu C A generic model-free approach for lithium-ion battery health management 201476. Bandhauer T;Garimella S;Fuller T F Electrochemical-thermal modeling to cvaluate battery thermal managementstrategies Ⅰ side cooling 2015(1)

77. Thanh T V;Chen X;Shen W New charging strategy for lithium-ion batteries based on the integration of Taguchimethod and state of charge estimation 2015

78. Schmidt J P;Weber A;Ivers-Tiffee E A novel and fast method of characterizing the self-discharge behavior oflithium-ion cells using a pulse-measurement technique 2015

79. Seid K A;Badot J C;Perca C An in situ multiscale study of ion and electron motion in a lithium-ion batterycomposite electrode 2015

80. Ming H;Ming J;Oh S M High dispersion of TiO2 nanocrystals within porous carbon improves lithium storage capacityand can be applied batteries to LiNi0.5Mn1 5O4 2014(44)

81. Qi X;Blizanac B;DuPasquier A Investigation of PF6-and TFSI-anion intercalation into graphitized carbon blacksand its influence on high voltage lithium ion batteries 2014(46)

82. Elia G A;Nobili F;Tossici R Nanostructured tin-carbon/ LiNi0.5Mn1 5O4 lithium-ion battery operating at lowtemperature 2015

83. Hong J;Lee M;Lee B Biologically inspired pteridine redox centres for rechargeable batteries 2014

84. Takahashi Y;Kumatani A;Munakata H Nanoscale visualization of redox activity at lithium-ion battery cathodes 201485. Molina Piper D;Seoung-Bum S;Travis J J Mitigating irreversible capacity losses from carbon agents via surfacemodification 2015

86. Li J;Fang Q H;Liu F Analytical modeling of dislocation effect on diffusion induced stress in a cylindricallithium ion battery electrode 2014

87. Berkemeier F;Stockhoff T;Gallasch T Volume diffusion and interface transport in LiCoO2 measured byelectrochromic absorption 2014

88. Cho J H;Aykol M;Kim S Controlling the intercalation chemistry to design high-performance dual-salt hybridrechargeable batteries 2014(46)

89. Duan H;Li J;Chiang S W First-principles study of native defects in LiTi2O4 2015

90. Kalantarian M M;Oghbaei M;Asgari S Understanding non-ideal voltage behaviour of cathodes for lithium-ionbatteries 2014(45)

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92. Chen L;Liu Y;Ashuri M Li2S encapsulated by nitrogen-doped carbon for lithium sulfur batteries 2014(42)93. Taminato S;Hirayama M;Suzuki K Mechanistic studies on lithium intercalation in a lithium-rich layered materialusing Li2RuO3 epitaxial film electrodes and in situ surface X-ray analysis 2014(42)

94. Hoang K Understanding the electronic and ionic conduction and lithium over-stoichiometry in LiMn2O4 spinel2014(43)

95. Saubanere M;Ben Yahia M;Lebegue S An intuitive and efficient method for cell voltage prediction of lithium andsoditm-ion batteries 2014

96. Mees M J;Pourtois G;Rosciano F First-principles material modeling of solid-state electrolytes with the spinelstructure 2014(11)

97. Aykol M;Kirklin S;Wolverton C Thermodynamic aspects of cathode coatings for lithium-ion batteries 2014

98. Fchse M;Ben Yahia M;Monconduit L New insights on the reversible lithiation mechanism of TiO2 (B) by operando X-ray absorption spectroscopy and X-ray diffraction assisted by first-principles calculations 2014(47)99. Nakayama M;Taki H;Nakamura T Combined computational and experimental study of Li exchange reaction at thesurface of spinel LiMn2O4 as a rechargeable Li-ion battery cathode 2014(47)

100. Dixit H;Zhou W;Idrobo J C Facet-dependent disorder in pristine high-voltage lithium-manganese-rich cathodematerial 2014(12)

引用本文格式:詹元杰. 陈宇阳. 胡飞. 陈彬. 闫勇. 林明翔. 徐凯琪. 王昊. 贲留斌 锂电池百篇论文点评(2014.12.1-2015.1.31)[期刊论文]-储能科学与技术 2015(2)

第2期詹元杰等:锂电池百篇论文点评(2014.12.1—2015.1.31)

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锂电池百篇论文点评(2014.12.1-2015.1.31)

作者:作者单位:刊名:英文刊名:年,卷(期):

詹元杰, 陈宇阳, 胡飞, 陈彬, 闫勇, 林明翔, 徐凯琪, 王昊, 贲留斌中国科学院物理研究所,北京,100190储能科学与技术

Energy Storage Science and Technology2015,4(2)

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引用本文格式:詹元杰. 陈宇阳. 胡飞. 陈彬. 闫勇. 林明翔. 徐凯琪. 王昊. 贲留斌 锂电池百篇论文点评(2014.12.1-2015.1.31)[期刊论文]-储能科学与技术 2015(2)


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