During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles with external electric fields. Favorably oriented dipolar regions (domains) grow at the expense of those in unfavorable orientations and this is manifested in a predictable field-induced motion of the walls that separate one domain from the next. Here, the discovery that specific charged 90°domain walls in copper–chlorine boracite move in the opposite direction to that expected, increasing the size of the domain in which polarization is anti-aligned with the applied field, is reported. Polarization–field (P–E) hysteresis loops, inferred from optical imaging, show negative gradients and on-transient negative capacitance, throughout the...
The stability of spontaneous electrical polarization in ferroelectrics is fundamental to many of the...
The negative capacitance (NC) operation of ferroelectric materials has been originally proposed base...
Materials belonging to the boracite family with the chemical formula M3B7O13X, where M is a metal an...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
The stability of spontaneous electrical polarization in ferroelectrics is fundamental to many of the...
We report in situ transmission electron microscopy observations of the 180 degrees polarization swit...
The stability of spontaneous electrical polarization in ferroelectrics is fundamental to many of the...
The negative capacitance (NC) operation of ferroelectric materials has been originally proposed base...
Materials belonging to the boracite family with the chemical formula M3B7O13X, where M is a metal an...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
During switching, the microstructure of a ferroelectric normally adapts to align internal dipoles wi...
The stability of spontaneous electrical polarization in ferroelectrics is fundamental to many of the...
We report in situ transmission electron microscopy observations of the 180 degrees polarization swit...
The stability of spontaneous electrical polarization in ferroelectrics is fundamental to many of the...
The negative capacitance (NC) operation of ferroelectric materials has been originally proposed base...
Materials belonging to the boracite family with the chemical formula M3B7O13X, where M is a metal an...