The superlithiation of organic anodes is a promising approach for developing the next generation of sustainable Li-ion batteries with high capacity. However, the lack of fundamental understanding hinders its faster development. Here, a systematic study of the lithiation processes in a set of dicarboxylate-based materials is carried out within the density functional theory formalism. It is demonstrated that a combined analysis of the Li insertion reaction thermodynamics and the conjugated-moiety charge derivative is able of establishing the experimentally observed maximum storage limits allowing also the assessment of the structure-function relationships
The intense increase in energy consumption around the world has prompted a great deal of research on...
We discuss the characteristic factors that determine the electrochemical potentials in a metal-organ...
This research analyzes the possibility of using lithiated benzenedipropiolate, an organic material, ...
The superlithiation of organic anodes is a promising approach for developing the next generation of ...
In this work, the Li-ion insertion mechanism in organic electrode materials is investigated through ...
The full realization of a renewable energy strategy hinges upon electrical energy storage (EES). EES...
AbstractRechargeable lithium batteries have achieved a rapid advancement and commercialization in th...
Charge-discharge rate capability is one of the most important properties of cathode materials for li...
The full realization of a renewable energy strategy hinges upon electrical energy storage (EES). EES...
Organic electroactive materials are promising candidates to be used as lithium insertion electrodes ...
Future lithium (Li) energy storage technologies, in particular solid-state configurations with a Li ...
The world’s ever-growing energy demand has evoked great interest in exploring renewable energy sourc...
Dilithium benzenedipropiolate was prepared and investigated as a potential negative electrode materi...
Organic materials have been considered a promising alternative as electrodes for rechargeable lithiu...
In the search for sustainable, eco-friendly energy storage technology, there is a demand for satisfa...
The intense increase in energy consumption around the world has prompted a great deal of research on...
We discuss the characteristic factors that determine the electrochemical potentials in a metal-organ...
This research analyzes the possibility of using lithiated benzenedipropiolate, an organic material, ...
The superlithiation of organic anodes is a promising approach for developing the next generation of ...
In this work, the Li-ion insertion mechanism in organic electrode materials is investigated through ...
The full realization of a renewable energy strategy hinges upon electrical energy storage (EES). EES...
AbstractRechargeable lithium batteries have achieved a rapid advancement and commercialization in th...
Charge-discharge rate capability is one of the most important properties of cathode materials for li...
The full realization of a renewable energy strategy hinges upon electrical energy storage (EES). EES...
Organic electroactive materials are promising candidates to be used as lithium insertion electrodes ...
Future lithium (Li) energy storage technologies, in particular solid-state configurations with a Li ...
The world’s ever-growing energy demand has evoked great interest in exploring renewable energy sourc...
Dilithium benzenedipropiolate was prepared and investigated as a potential negative electrode materi...
Organic materials have been considered a promising alternative as electrodes for rechargeable lithiu...
In the search for sustainable, eco-friendly energy storage technology, there is a demand for satisfa...
The intense increase in energy consumption around the world has prompted a great deal of research on...
We discuss the characteristic factors that determine the electrochemical potentials in a metal-organ...
This research analyzes the possibility of using lithiated benzenedipropiolate, an organic material, ...