Aqueous electrolytes can be used for electrical double-layer capacitors, pseudocapacitors, and intercalation-type batteries. These technologies may employ different electrode materials, most importantly high-surface-area nanoporous carbon, two-dimensional materials, and metal oxides. All of these materials also find more and more applications in electrochemical desalination devices. During the electrochemical operation of such electrode materials, charge storage and ion immobilization are accomplished by non-Faradaic ion electrosorption, Faradaic ion intercalation at specific crystallographic sites, or ion insertion between layers of two-dimensional materials. These processes may or may not be associated with a (partial) loss of the aqueous...
Cathode materials are usually active in the range of 2-4.3 V, but the decomposition of the electroly...
The performance of sodium-ion batteries largely depends on the presence and properties of passive fi...
Identifying and understanding charge storage mechanisms is important for advancing energy storage. W...
Electrochemical quartz crystal microbalance(EQCM) was used to study the mass changes on activated ca...
Three-electrode configurations allow targeted studies of reaction mechanisms, including charge stora...
Electrosorption involves the application of an electrical potential between carbon electrode pairs s...
International audienceConspectusThe recent discovery of "water-in-salt" electrolytes has spurred a r...
Aqueous electrolytes are considered as an alternative to flammable and toxic organic electrolytes, w...
It is often stated that formation of a functional solid electrolyte interphase (SEI) in sodium ion b...
Two chemically synthesized defective graphene materials with distinctly contrasting extended structu...
This study is focused on graphite as anode material for sodium-ion batteries (NIBs). Graphite electr...
Widely used conductive carbon is found to be a major capacity contributor towards the sodium storage...
International audienceAiming at a more comprehensive understanding of the solid electrolyte interpha...
Sodium-ion batteries are quickly becoming a promising, earth-abundant alternative to lithium-ion tec...
The composition, morphology and evolution of the solid electrolyte interphase (SEI) formed on hard c...
Cathode materials are usually active in the range of 2-4.3 V, but the decomposition of the electroly...
The performance of sodium-ion batteries largely depends on the presence and properties of passive fi...
Identifying and understanding charge storage mechanisms is important for advancing energy storage. W...
Electrochemical quartz crystal microbalance(EQCM) was used to study the mass changes on activated ca...
Three-electrode configurations allow targeted studies of reaction mechanisms, including charge stora...
Electrosorption involves the application of an electrical potential between carbon electrode pairs s...
International audienceConspectusThe recent discovery of "water-in-salt" electrolytes has spurred a r...
Aqueous electrolytes are considered as an alternative to flammable and toxic organic electrolytes, w...
It is often stated that formation of a functional solid electrolyte interphase (SEI) in sodium ion b...
Two chemically synthesized defective graphene materials with distinctly contrasting extended structu...
This study is focused on graphite as anode material for sodium-ion batteries (NIBs). Graphite electr...
Widely used conductive carbon is found to be a major capacity contributor towards the sodium storage...
International audienceAiming at a more comprehensive understanding of the solid electrolyte interpha...
Sodium-ion batteries are quickly becoming a promising, earth-abundant alternative to lithium-ion tec...
The composition, morphology and evolution of the solid electrolyte interphase (SEI) formed on hard c...
Cathode materials are usually active in the range of 2-4.3 V, but the decomposition of the electroly...
The performance of sodium-ion batteries largely depends on the presence and properties of passive fi...
Identifying and understanding charge storage mechanisms is important for advancing energy storage. W...