Ultrahigh rate performance of active particles used in lithium-ion battery electrodes has been revealed by single-particle measurements, which indicates a huge potential for developing high-power batteries. However, the charging/discharging behaviors of single particles at ultrahigh C-rates can no longer be described by the traditional electrochemical kinetics in such ion-intercalation active materials. In the meantime, regular kinetic measuring methods meet a challenge due to the coupling of interface reaction and solid-state diffusion processes of active particles. Here, we decouple the reaction and diffusion kinetics via time-resolved potential measurements with an interval of 1 ms, revealing that the classical Butler-Volmer equation dev...
In this work we discuss the modeling procedure and validation of a non-porous intercalation half-cel...
In this work we discuss the modeling procedure and validation of a non-porous intercalation half-cel...
In this work we discuss the modeling procedure and validation of a non-porous intercalation half-cel...
During the operation of a rechargeable battery, the electrochemical reactions occur at the interface...
Identifying overpotential components of electrochemical systems enables quantitative analysis of pol...
A mathematical model is presented for the lithium intercalation of a single spinel particle as a mic...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mathematics, 2015.Cataloged fro...
Batteries based on a electrochemical lithium intercalation reaction are widely used and have many ap...
Polycrystalline Li(Ni,Mn,Co)O2 (NMC) secondary particles are the most common cathode materials for L...
Li ion batteries, which are based on a electrochemical lithium intercalation reaction, are the most ...
[[abstract]]Lithium intercalated graphites have taken the place of metallic lithium as anodes for se...
An in-depth understanding of electrode reactions is essential to achieve a breakthrough in lithium-i...
A microscopic model of a lithium battery is developed, which accounts for lithium diffusion within p...
Many battery electrodes contain ensembles of nanoparticles that phase-separate on (de)intercalation....
In this work we discuss the modeling procedure and validation of a non-porous intercalation half-cel...
In this work we discuss the modeling procedure and validation of a non-porous intercalation half-cel...
In this work we discuss the modeling procedure and validation of a non-porous intercalation half-cel...
In this work we discuss the modeling procedure and validation of a non-porous intercalation half-cel...
During the operation of a rechargeable battery, the electrochemical reactions occur at the interface...
Identifying overpotential components of electrochemical systems enables quantitative analysis of pol...
A mathematical model is presented for the lithium intercalation of a single spinel particle as a mic...
Thesis: Ph. D., Massachusetts Institute of Technology, Department of Mathematics, 2015.Cataloged fro...
Batteries based on a electrochemical lithium intercalation reaction are widely used and have many ap...
Polycrystalline Li(Ni,Mn,Co)O2 (NMC) secondary particles are the most common cathode materials for L...
Li ion batteries, which are based on a electrochemical lithium intercalation reaction, are the most ...
[[abstract]]Lithium intercalated graphites have taken the place of metallic lithium as anodes for se...
An in-depth understanding of electrode reactions is essential to achieve a breakthrough in lithium-i...
A microscopic model of a lithium battery is developed, which accounts for lithium diffusion within p...
Many battery electrodes contain ensembles of nanoparticles that phase-separate on (de)intercalation....
In this work we discuss the modeling procedure and validation of a non-porous intercalation half-cel...
In this work we discuss the modeling procedure and validation of a non-porous intercalation half-cel...
In this work we discuss the modeling procedure and validation of a non-porous intercalation half-cel...
In this work we discuss the modeling procedure and validation of a non-porous intercalation half-cel...