Abstract Tungsten disulfide (WS2) nanotubes exhibit various unique properties depending on their structures, such as their diameter and wall number. The development of techniques to prepare WS2 nanotubes with the desired structure is crucial for understanding their basic properties. Notably, the synthesis and characterization of multi-walled WS2 nanotubes with small diameters are challenging. This study reports the synthesis and characterization of small-diameter WS2 nanotubes with an average inner diameter of 6 nm. The optical absorption and photoluminescence (PL) spectra of the as-prepared nanotubes indicate that a decrease in the nanotube diameter induces a red-shift in the PL, suggesting that the band gap narrowed due to a curvature eff...
WS2 nanotubes were synthesized by sintering amorphous WS3 at high temperature under flowing hydrogen...
This study was supported by the EC ERA.Net RUS Plus project No. 237 WATERSPLIT as well as Russian Ba...
© The Author(s) 2010. This article is published with open access at Springerlink.com WS2 nanotubes h...
Single-and double-walled WS2 nanotubes of small diameter (<10 nm) and few layers (<4) have been synt...
Layered transition metal dichalcogenides contain a number of crystal defects which significantly cha...
Transition metal dichalcogenides can exhibit as 2-dimensional layers, 1-dimensional nanotubes or 0-d...
The layered chalcogenides, having structures analogous to graphite, are known to be unstable toward ...
WS2 nanotubes present many new technologies under development, including reinforced biocompatible po...
Inorganic nanotubes (NT), such as WS2NT, have unique properties making them promising candidates for...
Nanotubes of transition metal dichalcogenides such as WS2 and MoS2 offer unique quasi-1D properties ...
Tungsten disulfide (WS2) nanotubes are cylindrical, multiwall nanotubes with various diameters and w...
We report on the photoresponse characteristics of tungsten disulfide (WS2) nanotubes. Field effect t...
peer-reviewedThe full text of this article will not be available in ULIR until the embargo expires o...
Nanotubes of transition metal dichalcogenides such as WS2 and MoS2 offer unique quasi-1D properties ...
WS2 nanoribbons have been synthesized by chemical unzipping of WS2 nanotubes. Lithium atoms are inte...
WS2 nanotubes were synthesized by sintering amorphous WS3 at high temperature under flowing hydrogen...
This study was supported by the EC ERA.Net RUS Plus project No. 237 WATERSPLIT as well as Russian Ba...
© The Author(s) 2010. This article is published with open access at Springerlink.com WS2 nanotubes h...
Single-and double-walled WS2 nanotubes of small diameter (<10 nm) and few layers (<4) have been synt...
Layered transition metal dichalcogenides contain a number of crystal defects which significantly cha...
Transition metal dichalcogenides can exhibit as 2-dimensional layers, 1-dimensional nanotubes or 0-d...
The layered chalcogenides, having structures analogous to graphite, are known to be unstable toward ...
WS2 nanotubes present many new technologies under development, including reinforced biocompatible po...
Inorganic nanotubes (NT), such as WS2NT, have unique properties making them promising candidates for...
Nanotubes of transition metal dichalcogenides such as WS2 and MoS2 offer unique quasi-1D properties ...
Tungsten disulfide (WS2) nanotubes are cylindrical, multiwall nanotubes with various diameters and w...
We report on the photoresponse characteristics of tungsten disulfide (WS2) nanotubes. Field effect t...
peer-reviewedThe full text of this article will not be available in ULIR until the embargo expires o...
Nanotubes of transition metal dichalcogenides such as WS2 and MoS2 offer unique quasi-1D properties ...
WS2 nanoribbons have been synthesized by chemical unzipping of WS2 nanotubes. Lithium atoms are inte...
WS2 nanotubes were synthesized by sintering amorphous WS3 at high temperature under flowing hydrogen...
This study was supported by the EC ERA.Net RUS Plus project No. 237 WATERSPLIT as well as Russian Ba...
© The Author(s) 2010. This article is published with open access at Springerlink.com WS2 nanotubes h...