A physics-based side-reaction coupled electrochemical model for capacity fade of a graphite/LiMn2O4 cell is developed by including the key degradation mechanisms in both anode and cathode. The side reactions considered in this study include 1) solid electrolyte interphase (SEI) growth and manganese deposition on the anode and 2) manganese dissolution, electrolyte oxidation and salt decomposition on the cathode. Our study reveals three stages of capacity fade upon long term cycling: acceleration, stabilization, and saturation. In the acceleration stage, capacity fade is due mainly to the cyclable lithium loss induced by the anode SEI growth. In the stabilization stage, the anode SEI growth slows down as it gets thicker, the cathode Mn dissol...
Today, it is common knowledge, that materials science in the field of electrochemical energy storage...
Today, it is common knowledge, that materials science in the field of electrochemical energy storage...
Today, it is common knowledge, that materials science in the field of electrochemical energy storage...
For advancing lithium-ion battery (LIB) technologies, a detailed understanding of battery degradatio...
The capacity of a lithium-ion battery decreases during cycling. This capacity loss or fade occurs du...
For advancing lithium-ion battery (LIB) technologies, a detailed understanding of battery degradatio...
A mathematical model for the capacity fade of a LiMn2O4 (LMO) electrode is developed in this paper b...
A mathematical model for the capacity fade of a LiMn2O4 (LMO) electrode is developed in this paper b...
A mathematical model for the capacity fade of a LiMn2O4 (LMO) electrode is developed in this paper b...
A mathematical model based on formation and dissolution kinetics is formulated for the formation of ...
The further development of lithium ion batteries operating at high voltages requires basic understan...
Lithium-ion batteries are known to have performance degradation as repeated use and age of the batte...
In order to develop long-lifespan batteries, it is of utmost importance to identify the relevant agi...
The graphite anode in lithium-ion batteries is vulnerable to capacity fade due to several mechanisms...
Today, it is common knowledge, that materials science in the field of electrochemical energy storage...
Today, it is common knowledge, that materials science in the field of electrochemical energy storage...
Today, it is common knowledge, that materials science in the field of electrochemical energy storage...
Today, it is common knowledge, that materials science in the field of electrochemical energy storage...
For advancing lithium-ion battery (LIB) technologies, a detailed understanding of battery degradatio...
The capacity of a lithium-ion battery decreases during cycling. This capacity loss or fade occurs du...
For advancing lithium-ion battery (LIB) technologies, a detailed understanding of battery degradatio...
A mathematical model for the capacity fade of a LiMn2O4 (LMO) electrode is developed in this paper b...
A mathematical model for the capacity fade of a LiMn2O4 (LMO) electrode is developed in this paper b...
A mathematical model for the capacity fade of a LiMn2O4 (LMO) electrode is developed in this paper b...
A mathematical model based on formation and dissolution kinetics is formulated for the formation of ...
The further development of lithium ion batteries operating at high voltages requires basic understan...
Lithium-ion batteries are known to have performance degradation as repeated use and age of the batte...
In order to develop long-lifespan batteries, it is of utmost importance to identify the relevant agi...
The graphite anode in lithium-ion batteries is vulnerable to capacity fade due to several mechanisms...
Today, it is common knowledge, that materials science in the field of electrochemical energy storage...
Today, it is common knowledge, that materials science in the field of electrochemical energy storage...
Today, it is common knowledge, that materials science in the field of electrochemical energy storage...
Today, it is common knowledge, that materials science in the field of electrochemical energy storage...