A novel method has been developed for homogeneous dispersion of metal nanoparticles inside short carbon nanotubes (CNTs) with an inner diameter smaller than 10 nm. The process involves controlled cutting of pristine long nanotubes via oxidation catalyzed by Ag or Fe and introduction of metal nanoparticles inside the CNT channels using a wet chemistry method aided by ultrasonic treatment and extended stirring. The resulting metal particles are very uniform with sizes in the range of 2-4 nm. In addition, selective dispersion of such nanoparticles on the exterior surfaces of open CNTs has been achieved by temporary blocking of the channels with an organic solvent while decorating the CNT exterior surfaces with aqueous solution of the metal sal...
A controlled, material-independent and adaptable cold wet chemical procedure is described. It allows...
Carbon nanotubes (CNTs) are promising building blocks for nanodevices owing to their superior electr...
Pt and Au nanoparticles spontaneously form on the sidewalls of single-walled carbon nanotubes (SWNTs...
Selective, localized deposition of metal nanoparticles inside or outside carbon nanotubes (CNTs) wit...
A general method is described for the deposition of metal nanoparticles selectively either inside or...
A straightforward method is presented to produce catalyst particle-filled carbon nanotubes. Based on...
This invention relates generally to cutting single-wall carbon nanotubes (SWNT). In one embodiment, ...
This invention relates generally to cutting single-wall carbon nanotubes (SWNT). In one embodiment, ...
We present a facile and versatile method for introducing various non-precious metal nanoparticles (N...
We present a novel process methodology for the controlled cutting of nanotubes and other nanostructu...
This invention relates generally to cutting single-wall carbon nanotubes (SWNT). In one embodiment, ...
We describe a straight forward procedure that allows an easy purification, an efficient solubilisati...
A versatile wet chemistry method is developed for filling of subnanometer sized metal particles in c...
Carbon nanotubes (CNTs) were chemically modified to achieve strong binding strength with the attache...
A new method has been developed to precisely cut and to sharpen carbon nanotubes using a 'nanok...
A controlled, material-independent and adaptable cold wet chemical procedure is described. It allows...
Carbon nanotubes (CNTs) are promising building blocks for nanodevices owing to their superior electr...
Pt and Au nanoparticles spontaneously form on the sidewalls of single-walled carbon nanotubes (SWNTs...
Selective, localized deposition of metal nanoparticles inside or outside carbon nanotubes (CNTs) wit...
A general method is described for the deposition of metal nanoparticles selectively either inside or...
A straightforward method is presented to produce catalyst particle-filled carbon nanotubes. Based on...
This invention relates generally to cutting single-wall carbon nanotubes (SWNT). In one embodiment, ...
This invention relates generally to cutting single-wall carbon nanotubes (SWNT). In one embodiment, ...
We present a facile and versatile method for introducing various non-precious metal nanoparticles (N...
We present a novel process methodology for the controlled cutting of nanotubes and other nanostructu...
This invention relates generally to cutting single-wall carbon nanotubes (SWNT). In one embodiment, ...
We describe a straight forward procedure that allows an easy purification, an efficient solubilisati...
A versatile wet chemistry method is developed for filling of subnanometer sized metal particles in c...
Carbon nanotubes (CNTs) were chemically modified to achieve strong binding strength with the attache...
A new method has been developed to precisely cut and to sharpen carbon nanotubes using a 'nanok...
A controlled, material-independent and adaptable cold wet chemical procedure is described. It allows...
Carbon nanotubes (CNTs) are promising building blocks for nanodevices owing to their superior electr...
Pt and Au nanoparticles spontaneously form on the sidewalls of single-walled carbon nanotubes (SWNTs...