Electrolyte gating of complex oxides enables investigation of electronic phase boundaries and collective response to strong electric fields. The origin of large conductance modulations and associated emergent properties in such field effect structures is a matter of intense study due to competing contributions from electrostatic (charge accumulation) and electrochemical (crystal chemistry changes) effects. Vanadium dioxide (VO<sub>2</sub>) is a prototypical correlated insulator that shows an insulator-to-metal transition at ∼67 °C and recent studies have noted a vast range of electronic effects in electric double-layer transistors (EDLT). In this study, we demonstrate that the response of electrolyte gated VO<sub>2</sub> devices can be dete...
Strongly correlated vanadium dioxide (VO<sub>2</sub>) is one of the most promising materials that ex...
The following dissertation examines the tunability of two types of proof-of-concept devices centerin...
The metal-insulator transition (MIT) in strongly correlated oxides has attracted considerable attent...
Electrolyte gating of complex oxides enables investigation of electronic phase boundaries and collec...
In this work we study the metal-insulator transition in vanadium dioxide and samarium nickelate and ...
Electrolyte gating with ionic liquids is a powerful tool for inducing novel conducting phases in cor...
Two-dimensional electron systems offer enormous opportunities for science discoveries and technologi...
The metal-insulator transition in correlated materials is usually coupled to a symmetry-lowering str...
The development of new phases of matter at oxide interfaces and surfaces by extrinsic electric field...
The use of gate bias to control electronic phases in VO2, an archetypical correlated oxide, offers a...
The development of new materials and electronic devices which exhibit unique physical properties wil...
Two-dimensional electron systems offer enormous opportunities for science discoveries and technologi...
Electrostatic control of the metal-insulator transition (MIT) in an oxide semiconductor could potent...
The metal-insulator transition in correlated materials is usually coupled to a symmetry-lowering str...
Strongly correlated vanadium dioxide (VO2) is one of the most promising materials that exhibits a te...
Strongly correlated vanadium dioxide (VO<sub>2</sub>) is one of the most promising materials that ex...
The following dissertation examines the tunability of two types of proof-of-concept devices centerin...
The metal-insulator transition (MIT) in strongly correlated oxides has attracted considerable attent...
Electrolyte gating of complex oxides enables investigation of electronic phase boundaries and collec...
In this work we study the metal-insulator transition in vanadium dioxide and samarium nickelate and ...
Electrolyte gating with ionic liquids is a powerful tool for inducing novel conducting phases in cor...
Two-dimensional electron systems offer enormous opportunities for science discoveries and technologi...
The metal-insulator transition in correlated materials is usually coupled to a symmetry-lowering str...
The development of new phases of matter at oxide interfaces and surfaces by extrinsic electric field...
The use of gate bias to control electronic phases in VO2, an archetypical correlated oxide, offers a...
The development of new materials and electronic devices which exhibit unique physical properties wil...
Two-dimensional electron systems offer enormous opportunities for science discoveries and technologi...
Electrostatic control of the metal-insulator transition (MIT) in an oxide semiconductor could potent...
The metal-insulator transition in correlated materials is usually coupled to a symmetry-lowering str...
Strongly correlated vanadium dioxide (VO2) is one of the most promising materials that exhibits a te...
Strongly correlated vanadium dioxide (VO<sub>2</sub>) is one of the most promising materials that ex...
The following dissertation examines the tunability of two types of proof-of-concept devices centerin...
The metal-insulator transition (MIT) in strongly correlated oxides has attracted considerable attent...