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- W4362470912 endingPage "118703" @default.
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- W4362470912 abstract "The surface active sites and electron conductivity are crucial to the electrochemical properties of carbon materials, while it is challenging to improve them simultaneously by simple carbonization. In the present work, amorphous carbons with abundant electrochemical active sites and ordered carbon with enhanced electron conductivity are fabricated simultaneously, in the graphene modified classical biomass derived carbon. Systematic characterization techniques confirm that graphene could accelerate the oxygen transfer between interlayers and on the surface of precursor during carbonization. Accordingly, areal capacity of 3.1 mAh cm−2 is obtained in this free-standing carbon when utilized as a sodium ion battery (SIB) anode, which is higher than that of other biomass-derived carbons. Comparably, carbon nanotubes show lower influence on the oxygen transfer, physico-chemical structures and hence electrochemical performances. This finding is beneficial in regulating the structures of carbon materials and thus will boost their electrochemical applications." @default.
- W4362470912 created "2023-04-05" @default.
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- W4362470912 date "2023-06-01" @default.
- W4362470912 modified "2023-09-30" @default.
- W4362470912 title "Simultaneous promotion of surface active sites and electron conductivity in carbon by interfacial engineered oxygen transfer for sodium storage" @default.
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- W4362470912 doi "https://doi.org/10.1016/j.ces.2023.118703" @default.
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