Ultrathin freestanding membranes with a pronounced metal-insulator transition (MIT) have huge potential for future flexible electronic applications as well as provide a unique aspect for the study of lattice-electron interplay. However, the reduction of the thickness to an ultrathin region (a few nm) is typically detrimental to the MIT in epitaxial films, and even catastrophic for their freestanding form. Here, we report an enhanced MIT in VO2-based freestanding membranes, with a lateral size up to millimeters and the VO2 thickness down to 5 nm. The VO2 membranes were detached by dissolving a Sr3Al2O6 sacrificial layer between the VO2 thin film and the c-Al2O3(0001) substrate, allowing the transfer onto arbitrary surfaces. Furthermore, the ...
Free-standing ultrathin (∼2 nm) films of several oxides (Al2O3,TiO2, and others) have been developed...
Nanoscale morphology of vanadium dioxide (VO2) films can be controlled to realize smooth ultrathin (...
Nanoscale morphology of vanadium dioxide (VO2) films can be controlled to realize smooth ultrathin (...
Ultrathin freestanding membranes with a pronounced metal-insulator transition (MIT) have huge potent...
Metal-insulator transition (MIT), an intriguing correlated phenomenon induced by the subtle competit...
Self-supported freestanding membranes are films that are devoid of any underlying supporting layers....
Phase transitions in correlated materials can be manipulated at the nanoscale to yield emergent func...
Metal-insulator transitions (MIT),an intriguing correlated phenomenon induced by the subtle competi...
International audienceOne of the emerging fields in nano-electronics is the adaptive electronics bas...
International audienceOne of the emerging fields in nano-electronics is the adaptive electronics bas...
International audienceOne of the emerging fields in nano-electronics is the adaptive electronics bas...
Free-standing ultrathin (∼2 nm) films of several oxides (Al2O3,TiO2, and others) have been developed...
A Metal-insulator transition (MIT) is the ability of some materials to change between metal and insu...
Nanoscale morphology of vanadium dioxide (VO2) films can be controlled to realize smooth ultrathin (...
Strongly correlated vanadium dioxide (VO2) is one of the most promising materials that exhibits a te...
Free-standing ultrathin (∼2 nm) films of several oxides (Al2O3,TiO2, and others) have been developed...
Nanoscale morphology of vanadium dioxide (VO2) films can be controlled to realize smooth ultrathin (...
Nanoscale morphology of vanadium dioxide (VO2) films can be controlled to realize smooth ultrathin (...
Ultrathin freestanding membranes with a pronounced metal-insulator transition (MIT) have huge potent...
Metal-insulator transition (MIT), an intriguing correlated phenomenon induced by the subtle competit...
Self-supported freestanding membranes are films that are devoid of any underlying supporting layers....
Phase transitions in correlated materials can be manipulated at the nanoscale to yield emergent func...
Metal-insulator transitions (MIT),an intriguing correlated phenomenon induced by the subtle competi...
International audienceOne of the emerging fields in nano-electronics is the adaptive electronics bas...
International audienceOne of the emerging fields in nano-electronics is the adaptive electronics bas...
International audienceOne of the emerging fields in nano-electronics is the adaptive electronics bas...
Free-standing ultrathin (∼2 nm) films of several oxides (Al2O3,TiO2, and others) have been developed...
A Metal-insulator transition (MIT) is the ability of some materials to change between metal and insu...
Nanoscale morphology of vanadium dioxide (VO2) films can be controlled to realize smooth ultrathin (...
Strongly correlated vanadium dioxide (VO2) is one of the most promising materials that exhibits a te...
Free-standing ultrathin (∼2 nm) films of several oxides (Al2O3,TiO2, and others) have been developed...
Nanoscale morphology of vanadium dioxide (VO2) films can be controlled to realize smooth ultrathin (...
Nanoscale morphology of vanadium dioxide (VO2) films can be controlled to realize smooth ultrathin (...