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      Recent progress in rate and cycling performance modifications of vanadium oxides cathode for lithium-ion batteries

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      Journal of Energy Chemistry
      Elsevier BV

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          Building better batteries.

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            VESTA 3for three-dimensional visualization of crystal, volumetric and morphology data

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              Materials for electrochemical capacitors.

              Electrochemical capacitors, also called supercapacitors, store energy using either ion adsorption (electrochemical double layer capacitors) or fast surface redox reactions (pseudo-capacitors). They can complement or replace batteries in electrical energy storage and harvesting applications, when high power delivery or uptake is needed. A notable improvement in performance has been achieved through recent advances in understanding charge storage mechanisms and the development of advanced nanostructured materials. The discovery that ion desolvation occurs in pores smaller than the solvated ions has led to higher capacitance for electrochemical double layer capacitors using carbon electrodes with subnanometre pores, and opened the door to designing high-energy density devices using a variety of electrolytes. Combination of pseudo-capacitive nanomaterials, including oxides, nitrides and polymers, with the latest generation of nanostructured lithium electrodes has brought the energy density of electrochemical capacitors closer to that of batteries. The use of carbon nanotubes has further advanced micro-electrochemical capacitors, enabling flexible and adaptable devices to be made. Mathematical modelling and simulation will be the key to success in designing tomorrow's high-energy and high-power devices.
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                Author and article information

                Contributors
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                Journal
                Journal of Energy Chemistry
                Journal of Energy Chemistry
                Elsevier BV
                20954956
                August 2021
                August 2021
                : 59
                : 343-363
                Article
                10.1016/j.jechem.2020.11.022
                585b5c6e-31bc-4a74-8a3c-82141a0a265f
                © 2021

                https://www.elsevier.com/tdm/userlicense/1.0/

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