A Database for Comparative Electrochemical Performance of Commercial 18650-Format Lithium-Ion Cells
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Armando Fresquez | Babu R. Chalamala | H. Barkholtz | B. Chalamala | Summer R. Ferreira | A. Fresquez | Heather M. Barkholtz | Summer Rhodes Ferreira
[1] Daniel P. Abraham,et al. Differential voltage analyses of high-power lithium-ion cells. 4. Cells containing NMC , 2010 .
[2] M. Whittingham,et al. Lithium batteries and cathode materials. , 2004, Chemical reviews.
[3] Jianqiu Li,et al. A review on the key issues for lithium-ion battery management in electric vehicles , 2013 .
[4] J. Shim,et al. Electrochemical analysis for cycle performance and capacity fading of a lithium-ion battery cycled at elevated temperature , 2002 .
[5] Jeffrey W. Fergus,et al. Recent developments in cathode materials for lithium ion batteries , 2010 .
[6] Siqi Shi,et al. Improving the rate performance of LiFePO4 by Fe-site doping , 2005 .
[7] P. Bruce,et al. Nanostructured materials for advanced energy conversion and storage devices , 2005, Nature materials.
[8] M. Dubarry,et al. Incremental Capacity Analysis and Close-to-Equilibrium OCV Measurements to Quantify Capacity Fade in Commercial Rechargeable Lithium Batteries , 2006 .
[9] Wenquan Lu,et al. Silicon‐Based Nanomaterials for Lithium‐Ion Batteries: A Review , 2014 .
[10] Jun Liu,et al. Electrochemical energy storage for green grid. , 2011, Chemical reviews.
[11] M. Wohlfahrt‐Mehrens,et al. Ageing mechanisms in lithium-ion batteries , 2005 .
[12] Tatsuo Horiba,et al. Capacity-fading prediction of lithium-ion batteries based on discharge curves analysis , 2011 .
[13] F. Larsson,et al. Abuse by External Heating, Overcharge and Short Circuiting of Commercial Lithium-Ion Battery Cells , 2014 .
[14] Vojtech Svoboda,et al. Capacity and power fading mechanism identification from a commercial cell evaluation , 2007 .
[15] Michael A. Danzer,et al. Lithium plating in a commercial lithium-ion battery - A low-temperature aging study , 2015 .
[16] T. Horiba,et al. State Analysis of Lithium-Ion Batteries Using Discharge Curves , 2008 .
[17] Matthieu Dubarry,et al. Identify capacity fading mechanism in a commercial LiFePO4 cell , 2009 .
[18] Zhan Lin,et al. Recent developments in nanostructured anode materials for rechargeable lithium-ion batteries , 2011 .
[19] Wei-Jun Zhang. A review of the electrochemical performance of alloy anodes for lithium-ion batteries , 2011 .
[20] Christopher M Wolverton,et al. Electrical energy storage for transportation—approaching the limits of, and going beyond, lithium-ion batteries , 2012 .
[21] B. Dunn,et al. Electrical Energy Storage for the Grid: A Battery of Choices , 2011, Science.
[22] John B Goodenough,et al. The Li-ion rechargeable battery: a perspective. , 2013, Journal of the American Chemical Society.
[23] Kevin L. Gering,et al. Differential voltage analyses of high-power lithium-ion cells: 2. Applications , 2005 .
[24] D. Aurbach,et al. A review of advanced and practical lithium battery materials , 2011 .
[25] Kevin L. Gering,et al. Differential voltage analyses of high-power lithium-ion cells: 3. Another anode phenomenon , 2005 .
[26] Zhe Li,et al. A comparative study of commercial lithium ion battery cycle life in electrical vehicle: Aging mechanism identification , 2014 .
[27] Doron Aurbach,et al. Design of electrolyte solutions for Li and Li-ion batteries: a review , 2004 .
[28] M. Armand,et al. Issues and challenges facing rechargeable lithium batteries , 2001, Nature.
[29] I. Bloom,et al. Differential voltage analyses of high-power, lithium-ion cells: 1. Technique and application , 2005 .
[30] Matthieu Dubarry,et al. Evaluation of commercial lithium-ion cells based on composite positive electrode for plug-in hybrid electric vehicle applications. Part I: Initial characterizations , 2011 .
[31] Linda Nazar,et al. Surface Chemistry of LiFePO4 Studied by Mössbauer and X-Ray Photoelectron Spectroscopy and Its Effect on Electrochemical Properties , 2007 .
[32] Yoji Sakurai,et al. Confirmation of Long-Term Cyclability and High Thermal Stability of LiFePO4 in Prismatic Lithium-Ion Cells , 2005 .
[33] Anders Hammer Strømman,et al. Life cycle environmental assessment of lithium-ion and nickel metal hydride batteries for plug-in hybrid and battery electric vehicles. , 2011, Environmental science & technology.
[34] Kristina Edström,et al. Chemical Composition and Morphology of the Elevated Temperature SEI on Graphite , 2001 .
[35] Valentin Muenzel,et al. A Comparative Testing Study of Commercial 18650-Format Lithium-Ion Battery Cells , 2015 .
[36] Zhen Zhou,et al. Improved high-rate charge/discharge performances of LiFePO4/C via V-doping , 2009 .
[37] Doron Aurbach,et al. Challenges in the development of advanced Li-ion batteries: a review , 2011 .
[38] Mitch Jacoby,et al. BURNING BATTERIES: Hazardous failures of lithium-ion batteries are uncommon, yet researchers strive to MINIMIZE DANGERS , 2007 .
[39] Elena M. Krieger,et al. A comparison of lead-acid and lithium-based battery behavior and capacity fade in off-grid renewable charging applications , 2013 .
[40] M. Broussely,et al. Aging mechanism in Li ion cells and calendar life predictions , 2001 .
[41] Vojtech Svoboda,et al. A roadmap to understand battery performance in electric and hybrid vehicle operation , 2007 .
[42] Matthieu Dubarry,et al. Evaluation of commercial lithium-ion cells based on composite positive electrode for plug-in hybrid electric vehicle applications. Part II. Degradation mechanism under 2 C cycle aging , 2011 .
[43] Kang Xu,et al. Nonaqueous liquid electrolytes for lithium-based rechargeable batteries. , 2004, Chemical reviews.
[44] Boucar Diouf,et al. Potential of lithium-ion batteries in renewable energy , 2015 .
[45] Byoungwoo Kang,et al. Battery materials for ultrafast charging and discharging , 2009, Nature.