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Composites of two-dimensional materials for energy storage

  1. Title statementComposites of two-dimensional materials for energy storage [rukopis] / Smita Talande
    Additional Variant TitlesComposites of two-dimensional materials for energy storage
    Personal name Talande, Smita, (dissertant)
    Translated titleComposites of two-dimensional materials for energy storage
    Issue data2020
    Phys.des.88 : grafy, tab.
    NoteVed. práce Aristeidis Bakandritsos
    Another responsib. Bakandritsos, Aristeidis, (školitel)
    Another responsib. Univerzita Palackého. Katedra experimentální fyziky (degree grantor)
    Keywords Supercapacitors * transition metal oxides/ sulfides * functionalized graphene * non-aqueous electrolyte * energy density * Supercapacitors * transition metal oxides/ sulfides * functionalized graphene * non-aqueous electrolyte * energy density
    Form, Genre disertace dissertations
    UDC (043.3)
    CountryČesko
    Languageangličtina
    Document kindPUBLIKAČNÍ ČINNOST
    TitlePh.D.
    Degree programDoktorský
    Degree programPhysics
    Degreee disciplineApplied Physics
    book

    book

    Kvalifikační práceDownloadedSizedatum zpřístupnění
    00222734-330751503.pdf425 MB12.11.2020
    PosudekTyp posudku
    00222734-opon-712181275.pdfPosudek oponenta
    00222734-ved-981582287.pdfPosudek vedoucího
    00222734-opon-430624611.pdfPosudek oponenta
    Průběh obhajobydatum zadánídatum odevzdánídatum obhajobypřidělená hodnocenítyp hodnocení
    00222734-prubeh-781753980.pdf07.09.201612.11.202016.02.2021S2
    Ostatní přílohySizePopis
    00222734-other-590956210.pdf6.2 MB

    The constant increase in energy demand combined with our non-renewable fossil fuelbased civilization producing a negative environmental impact (CO2 emission) calls for the development of sustainable energy conversion and storage with a small environmental footprint. Electrochemical technologies such as supercapacitors (SCs) and batteries are emerging as important energy storage devices for electronics, electric vehicles, and smart grids. SCs display remarkable advantages over batteries, such as ultrafast charging, high power dissipation, and extralong cyclelife. Furthermore, they are a cheaper and far more sustainable energy storage technology, since they are carbon-based, not requiring lowabundance elements as batteries do (i.e. lithium, cobalt, or nickel). However, stateoftheart SCs materials are lagging behind Li-ion batteries in energy content by order of magnitude. A lot of research effort is thus focused on increasing the energy content of SCs in order to exploit their advantages in applications requiring energy supply for more extended periods. For this purpose, we have studied methods in order to increase the performance of SCs electrode materials via developing hybrids by combining the densely functionalized graphene derivative (Cyanographene, GCN) with ultra-small nanoparticles of -FeOOH and Fe3S4.The constant increase in energy demand combined with our non-renewable fossil fuelbased civilization producing a negative environmental impact (CO2 emission) calls for the development of sustainable energy conversion and storage with a small environmental footprint. Electrochemical technologies such as supercapacitors (SCs) and batteries are emerging as important energy storage devices for electronics, electric vehicles, and smart grids. SCs display remarkable advantages over batteries, such as ultrafast charging, high power dissipation, and extralong cyclelife. Furthermore, they are a cheaper and far more sustainable energy storage technology, since they are carbon-based, not requiring lowabundance elements as batteries do (i.e. lithium, cobalt, or nickel). However, stateoftheart SCs materials are lagging behind Li-ion batteries in energy content by order of magnitude. A lot of research effort is thus focused on increasing the energy content of SCs in order to exploit their advantages in applications requiring energy supply for more extended periods. For this purpose, we have studied methods in order to increase the performance of SCs electrode materials via developing hybrids by combining the densely functionalized graphene derivative (Cyanographene, GCN) with ultra-small nanoparticles of -FeOOH and Fe3S4.

Number of the records: 1  

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