We measure the magnetotransport properties of individual 71 degrees domain walls in multiferroic BiFeO3 by means of conductive-atomic force microscopy (C-AFM) in the presence of magnetic fields up to one Tesla. The results suggest anisotropic magnetoresistance at room temperature, with the sign of the magnetoresistance depending on the relative orientation between the magnetic field and the domain wall plane. A consequence of this finding is that macroscopically averaged magnetoresistance measurements for domain wall bunches are likely to underestimate the magnetoresistance of each individual domain wall.</p
Among all multiferroics, BiFeO3 is a material of choice because its two ordering temperatures are we...
There is growing evidence that domain walls in ferroics can possess emergent properties that are abs...
Multiferroics, defined as materials with coexistence of at least two of the electric, elastic, and m...
We measure the magnetotransport properties of individual 71 degrees domain walls in multiferroic BiF...
We measure the magnetotransport properties of individual 71° domain walls in multiferroic BiFeO₃ by ...
Local conduction at domains and domain walls is investigated in BiFeO3 thin films containing mostly ...
This dissertation focuses on the thorough characterization of nanoscale interface regions - so-calle...
Domain walls in multiferroics can exhibit intriguing behaviors that are significantly different from...
Domain walls in multiferroics can exhibit intriguing behaviors that are significantly different from...
Anisotropic magnetoresistance at the BiFeO3 domain walls has been observed thanks to the realization...
BiFeO3 thin films epitaxially grown on SrRuO3-buffered (001)-oriented SrTiO3 substrates show orthogo...
Electronic conduction along individual domain walls (DWs) is reported in BiFeO3 (BFO) and other nomi...
We investigate ferroelectric resistive switching in BiFeO3 thin films by performing local conductivi...
Intrinsic and extrinsic properties of ferroelectric materials are known to have strong dependencies ...
Among all multiferroics, BiFeO3 is a material of choice because its two ordering temperatures are we...
There is growing evidence that domain walls in ferroics can possess emergent properties that are abs...
Multiferroics, defined as materials with coexistence of at least two of the electric, elastic, and m...
We measure the magnetotransport properties of individual 71 degrees domain walls in multiferroic BiF...
We measure the magnetotransport properties of individual 71° domain walls in multiferroic BiFeO₃ by ...
Local conduction at domains and domain walls is investigated in BiFeO3 thin films containing mostly ...
This dissertation focuses on the thorough characterization of nanoscale interface regions - so-calle...
Domain walls in multiferroics can exhibit intriguing behaviors that are significantly different from...
Domain walls in multiferroics can exhibit intriguing behaviors that are significantly different from...
Anisotropic magnetoresistance at the BiFeO3 domain walls has been observed thanks to the realization...
BiFeO3 thin films epitaxially grown on SrRuO3-buffered (001)-oriented SrTiO3 substrates show orthogo...
Electronic conduction along individual domain walls (DWs) is reported in BiFeO3 (BFO) and other nomi...
We investigate ferroelectric resistive switching in BiFeO3 thin films by performing local conductivi...
Intrinsic and extrinsic properties of ferroelectric materials are known to have strong dependencies ...
Among all multiferroics, BiFeO3 is a material of choice because its two ordering temperatures are we...
There is growing evidence that domain walls in ferroics can possess emergent properties that are abs...
Multiferroics, defined as materials with coexistence of at least two of the electric, elastic, and m...