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This high performance is attributed to the composite material's hollow spindle structure, which facilitates the electrolyte infiltration, resulting in an increased solid-liquid interface.
Additionally, the higher CA/CF transition of [90/0]2s laminate compared to [0/90]2s laminate irrespective of defect geometry could be attributed to the composite architecture or lay up sequences in these laminates.
In comparison with pure Co3O4, the specific capacity and redox performance of the as-made Co3O4/rGONS composites have been significantly improved, which are mainly attributed to the composite structure with high porosity formed due to the interaction of Co3O4 and reduced graphene oxide nanosheets during the fabrication process of the Co3O4/rGONS nanocomposites.
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The superior electrochemical performances of the composites could be attributed to the robust composite structure and superior conductivity, large surface area and good flexibility of WS2-Gr composites.
The low H c is attributed to the finest composite structure.
Impedance measurements revealed that the significantly enhanced efficiency was attributed to the RGO/TiOx composite films with efficient electron transport.
The superior catalytic activity is attributed to the special composite structure of nanoscale deposition particles on the framework with plenty of nano pores and nano copper and few copper oxidation particles distributed or wrapped into the amorphous porous carbon phase.
Surface characterization results demonstrate that the performance improvement was attributed to the CB/Fe3O4 composite layer formed onto the surface of the SSM, which protected the biofilms from being poisoned by the Cr component in the SSM and ensured a rapid electron transfer from biofilms to the SSM surface.
The improved performance of the composite sensor was attributed to the porous surface of the composite film.
The excellent electrochemical performance is attributed to the unique porous composite architecture with fast transportation of ion/electron and good strain accommodation during the lithiation/delithiation reaction.
The resistance switch was possibly attributed to the reaction in composite filamentary paths which were formed inside the Cu–TaOx layer.
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