Single-crystalline vanadium dioxide (VO2) nanostructures have attracted an intense research interest recently because of their unique single-domain metal-insulator phase transition property. Synthesis of these nanostructures in the past was limited in density, alignment, or single-crystallinity. The assembly of VO2 nanowires (NWs) is desirable for a “bottom-up” approach to the engineering of intricate structures using nanoscale building blocks. Here, we report the successful synthesis of horizontally aligned VO2 NWs with a dense growth mode in the [1-100]quartz direction of a polished x-cut quartz surface using a simple vapor transport method. Our strategy of controlled growth of VO2 NWs promisingly paves the way for designing novel metal-...
The remarkable electronic and mechanical properties of nanowires have great potential for fascinatin...
For practical applications, tuning the metal-insulator transition (MIT) behavior of high-quality van...
The remarkable electronic and mechanical properties of nanowires have great potential for fascinatin...
Recently, it was discovered that single-crystalline VO2 nanostructures exhibit unique, single-domain...
We have grown epitaxially orientation-controlled monoclinic VO2 nanowires without employing catalyst...
Single-crystalline vanadium dioxide nanowires (VO2 NWs) have attracted significant interest due to t...
Single-crystal VO2 nanowires were synthesized using atmospheric-pressure and physical vapor depositi...
The abrupt first-order metal-insulator phase transition in single-crystal vanadium dioxide nanowires...
International audienceVanadium dioxide (VO2) is a much‐discussed material for oxide electronics and ...
Monoclinic VO2(M) in nanostructure is a prototype material for interpreting correlation effects in s...
Vanadium dioxide (VO2), with the first-order metal-insulator phase transition at near room temperatu...
Vanadium dioxide (VO2) is a much-discussed material for oxide electronics and neuromorphic computing...
In the present article, the position-controlled and catalytic-free synthesis of vanadium dioxide (VO...
Vanadium dioxide (VO2) is a much-discussed material for oxide electronics and neuromorphic computing...
Vanadium dioxide (VO2) is a much-discussed material for oxide electronics and neuromorphic computing...
The remarkable electronic and mechanical properties of nanowires have great potential for fascinatin...
For practical applications, tuning the metal-insulator transition (MIT) behavior of high-quality van...
The remarkable electronic and mechanical properties of nanowires have great potential for fascinatin...
Recently, it was discovered that single-crystalline VO2 nanostructures exhibit unique, single-domain...
We have grown epitaxially orientation-controlled monoclinic VO2 nanowires without employing catalyst...
Single-crystalline vanadium dioxide nanowires (VO2 NWs) have attracted significant interest due to t...
Single-crystal VO2 nanowires were synthesized using atmospheric-pressure and physical vapor depositi...
The abrupt first-order metal-insulator phase transition in single-crystal vanadium dioxide nanowires...
International audienceVanadium dioxide (VO2) is a much‐discussed material for oxide electronics and ...
Monoclinic VO2(M) in nanostructure is a prototype material for interpreting correlation effects in s...
Vanadium dioxide (VO2), with the first-order metal-insulator phase transition at near room temperatu...
Vanadium dioxide (VO2) is a much-discussed material for oxide electronics and neuromorphic computing...
In the present article, the position-controlled and catalytic-free synthesis of vanadium dioxide (VO...
Vanadium dioxide (VO2) is a much-discussed material for oxide electronics and neuromorphic computing...
Vanadium dioxide (VO2) is a much-discussed material for oxide electronics and neuromorphic computing...
The remarkable electronic and mechanical properties of nanowires have great potential for fascinatin...
For practical applications, tuning the metal-insulator transition (MIT) behavior of high-quality van...
The remarkable electronic and mechanical properties of nanowires have great potential for fascinatin...