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After mesoporous carbon coating process, the composites have retained their original one-dimensional structure as pristine carbon nanofibers.
Pristine carbon nanotubes are inert to most chemicals and need to be grafted with surface functional groups to increase their chemical reactivity and add new properties.
Pristine carbon black was oxidized with poly phosphoric acid) to produce carboxyl groups.
The obtained CNFs exhibit improved electrochemical performance compared with pristine carbon nanofibers.
The shape dependence of the pristine carbon filaments on increasing the magnetic field is demonstrated.
It is found that the adsorption of gases on pristine carbon nanoscrolls is relatively low.
In FCNT (8,8) the water flux is increased to ∼215 H2O/ns which is 25% more than water flux in pristine carbon nanotubes.
Herein, the growth of ultrafine Pt nanoparticles on graphene oxide-dispersed pristine carbon nanotube (G-PCNT) supports has been achieved by a convenient and scalable approach.
According to the comparison with the pristine carbon nanotubes (CNTs), some excellent properties of NW@CNTs are revealed.
This simple method has been found to improve the electrical conductivity of the pristine carbon xerogel up to 90%.
Porous graphite-phase polymeric carbon nitride (GPPCN /TiO2 donor-acceptor heterojunction was facilely fabricated through the combination of a template technique with a co-calcination process, which exhibited much higher photoelectric activity compared to pristine carbon nitride and TiO2.
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