Measurements of fracture properties of MWCNTs modified LiNi0.5Mn0.3Co0.2O2 electrodes by a modified shear lag model
暂无分享,去创建一个
D. Fang | Junan Pan | Yong Pan | C. Dai | Xi Chen | Huiyu Huang | W. Mao | Xiaoxue Zhu | Zhouqing Zhang
[1] D. Fang,et al. In situ characterizations of mechanical behaviors of freestanding (Gd0.9Yb0.1)2Zr2O7 coatings by bending tests under different temperatures based on digital image correlation , 2020 .
[2] Xiangbiao Liao,et al. Effects of cycle times and C-rate on mechanical properties of copper foil and adhesive strength of electrodes in commercial LiCoO2 LIBs , 2019, Engineering Failure Analysis.
[3] A. Zhu,et al. A novel modification of carbon nanotubes for improving the electrical and mechanical properties of polyethylene composites , 2019, Polymer Testing.
[4] Bai-Xiang Xu,et al. A review on modeling of electro-chemo-mechanics in lithium-ion batteries , 2019, Journal of Power Sources.
[5] D. Fang,et al. A multilayer structure shear lag model applied in the tensile fracture characteristics of supersonic plasma sprayed thermal barrier coating systems based on digital image correlation , 2018, Surface and Coatings Technology.
[6] Elham Sahraei,et al. Investigation of the deformation mechanisms of lithium-ion battery components using in-situ micro tests , 2018, Applied Energy.
[7] C. Zhang,et al. Mechanical characterization and modeling for anodes and cathodes in lithium-ion batteries , 2018, Journal of Power Sources.
[8] Xingcheng Xiao,et al. Mechanical Property Evolution of Silicon Composite Electrodes Studied by Environmental Nanoindentation , 2018 .
[9] Yi Cui,et al. Design of Complex Nanomaterials for Energy Storage: Past Success and Future Opportunity. , 2017, Accounts of chemical research.
[10] Ting Zhu,et al. Electrochemomechanical degradation of high-capacity battery electrode materials , 2017 .
[11] Chao Zhang,et al. Constitutive behavior and progressive mechanical failure of electrodes in lithium-ion batteries , 2017 .
[12] R. Ghodssi,et al. A platform for in situ Raman and stress characterizations of V 2 O 5 cathode using MEMS device , 2017 .
[13] Edgar Dutra Zanotto,et al. Microstructure and mechanical properties of nucleant-free Li2O-CaO-SiO2 glass-ceramics , 2017 .
[14] Yan Xu,et al. Liquid‐Phase Electrochemical Scanning Electron Microscopy for In Situ Investigation of Lithium Dendrite Growth and Dissolution , 2017, Advanced materials.
[15] Yan Wang,et al. Softening by electrochemical reaction-induced dislocations in lithium-ion batteries , 2017 .
[16] D. Fang,et al. In-situ measurements of mechanical and volume change of LiCoO 2 lithium-ion batteries during repeated charge–discharge cycling by using digital image correlation , 2016 .
[17] Jianlin Li,et al. Grid indentation analysis of mechanical properties of composite electrodes in Li-ion batteries , 2016 .
[18] Nancy R. Sottos,et al. Electrochemical stiffness in lithium-ion batteries. , 2016, Nature materials.
[19] M. Ishikawa,et al. In situ Scanning Electron Microscopy of Silicon Anode Reactions in Lithium-Ion Batteries during Charge/Discharge Processes , 2016, Scientific Reports.
[20] Elham Sahraei,et al. Microscale failure mechanisms leading to internal short circuit in Li-ion batteries under complex loading scenarios , 2016 .
[21] Simon V. Erhard,et al. Multi-scale investigation of thickness changes in a commercial pouch type lithium-ion battery , 2016 .
[22] Qing Zhou,et al. Mechanical Behavior of Lithium-Ion Battery Component Materials and Error Sources Analysis for Test Results , 2016 .
[23] M. R. Palacín,et al. Why do batteries fail? , 2016, Science.
[24] D. Mohr,et al. Anisotropic viscoplasticity and fracture of fine grained metallic aluminum foil used in Li-ion batteries , 2016 .
[25] Feixiang Wu,et al. Li-ion battery materials: present and future , 2015 .
[26] Yi Cui,et al. Understanding Phase Transformation in Crystalline Ge Anodes for Li- Ion Batteries , 2014 .
[27] Nancy R. Sottos,et al. In Situ Measurements of Strains in Composite Battery Electrodes during Electrochemical Cycling , 2014 .
[28] W. Lai,et al. Mechanical behavior of representative volume elements of lithium-ion battery modules under various loading conditions , 2014 .
[29] Y. Zhang,et al. Fracture characteristics of freestanding 8 wt% Y2O3–ZrO2 coatings by single edge notched beam and Vickers indentation tests , 2013 .
[30] M. Kanatzidis,et al. High-temperature elastic moduli of thermoelectric SnTe1±x – y SiC nanoparticulate composites , 2013, Journal of Materials Science.
[31] Michael F Toney,et al. In situ X-ray diffraction studies of (de)lithiation mechanism in silicon nanowire anodes. , 2012, ACS nano.
[32] T. Wierzbicki,et al. Calibration and finite element simulation of pouch lithium-ion batteries for mechanical integrity , 2012 .
[33] John P. Sullivan,et al. In Situ Observation of the Electrochemical Lithiation of a Single SnO2 Nanowire Electrode , 2010, Science.
[34] V. Srinivasan,et al. In situ measurements of stress evolution in silicon thin films during electrochemical lithiation and delithiation , 2010, 1108.0647.
[35] R. Spolenak,et al. The relationship between thin film fragmentation and buckle formation: Synchrotron-based in situ studies and two-dimensional stress analysis , 2009 .
[36] M. Armand,et al. Building better batteries , 2008, Nature.
[37] S. Suresh,et al. Strength, strain-rate sensitivity and ductility of copper with nanoscale twins , 2006 .
[38] J. Duh,et al. Effect of Mn Content on the Microstructure and Electrochemical Performance of LiNi0.75 − x Co0.25Mn x O2 Cathode Materials , 2005 .
[39] J. Duh,et al. Microstructure and electrochemical performance of LiNi0.6Co0.4−xMnxO2 cathode materials , 2005 .
[40] H. Bei,et al. Theoretical strength and the onset of plasticity in bulk metallic glasses investigated by nanoindentation with a spherical indenter. , 2004, Physical review letters.
[41] M. Armand,et al. Issues and challenges facing rechargeable lithium batteries , 2001, Nature.
[42] G. Pharr,et al. Indentation of elastically anisotropic half-spaces by cones and parabolae of revolution , 2001 .
[43] G. Pharr,et al. An improved technique for determining hardness and elastic modulus using load and displacement sensing indentation experiments , 1992 .
[44] Warren C. Oliver,et al. A new method for analyzing data from continuous depth-sensing microindentation tests , 1990 .
[45] S. Xia,et al. Fracture Toughness Characterization of Lithiated Germanium as an Anode Material for Lithium-Ion Batteries , 2016 .
[46] N. Yao,et al. Advances in sealed liquid cells for in-situ TEM electrochemial investigation of lithium-ion battery , 2015 .
[47] J. Tarascon,et al. Towards greener and more sustainable batteries for electrical energy storage. , 2015, Nature chemistry.
[48] C. Hsueh,et al. Multiple film cracking in film/substrate systems with residual stresses and unidirectional loading , 2003 .
[49] D. Kwon,et al. Evaluation of the adhesion strength in DLC film-coated systems using the film-cracking technique , 1998 .