The negative capacitance operation of a ferroelectric material is not only an intriguing material science topic, but also a property with important technological applications in nanoscale electron devices. Despite the growing interest for possible applications, the very existence of negative capacitance is still actively debated, even because experimental results for ferroelectric capacitors with or without a metal interlayer led to quite contradicting indications. Here we present a comprehensive analysis of the NC operation in ferroelectric capacitorsandprovidenewinsightsaboutthediscrepanciesobservedinexperiments. Our models duly account for the three-dimensional nature of the problem and show a good agreement with several aspects of recen...
Because of the thermal distribution of electrons in a semiconductor, modern transistors cannot be tu...
Owing to the fundamental physics of the Boltzmann distribution, the ever-increasing power dissipatio...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/98681/1/ApplPhysLett_99_113501.pd
The negative capacitance (NC) operation of ferroelectric materials has been originally proposed base...
We present a revised analysis of Negative Capacitance (NC) in ferroelectric-insulator capacitors, an...
The stability of spontaneous electrical polarization in ferroelectrics is fundamental to many of the...
Recently, the proposal to use voltage amplification from ferroelectric negative capacitance (NC) to ...
Recently, the proposal to use voltage amplification from ferroelectric negative capacitance (NC) to ...
The use of ferroelectric negative capacitance (NC) has been proposed as a promising way to reduce th...
The use of ferroelectric negative capacitance (NC) has been proposed as a promising way to reduce th...
The use of ferroelectric negative capacitance (NC) has been proposed as a promising way to reduce th...
International audienceA pressing quest for overcoming Boltzmann tyranny in low-power nanoscale elect...
International audienceA pressing quest for overcoming Boltzmann tyranny in low-power nanoscale elect...
The stability of spontaneous electrical polarization in ferroelectrics is fundamental to many of the...
학위논문 (박사)-- 서울대학교 대학원 : 재료공학부, 2016. 8. 황철성.The capacitor is an essential component in many electron...
Because of the thermal distribution of electrons in a semiconductor, modern transistors cannot be tu...
Owing to the fundamental physics of the Boltzmann distribution, the ever-increasing power dissipatio...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/98681/1/ApplPhysLett_99_113501.pd
The negative capacitance (NC) operation of ferroelectric materials has been originally proposed base...
We present a revised analysis of Negative Capacitance (NC) in ferroelectric-insulator capacitors, an...
The stability of spontaneous electrical polarization in ferroelectrics is fundamental to many of the...
Recently, the proposal to use voltage amplification from ferroelectric negative capacitance (NC) to ...
Recently, the proposal to use voltage amplification from ferroelectric negative capacitance (NC) to ...
The use of ferroelectric negative capacitance (NC) has been proposed as a promising way to reduce th...
The use of ferroelectric negative capacitance (NC) has been proposed as a promising way to reduce th...
The use of ferroelectric negative capacitance (NC) has been proposed as a promising way to reduce th...
International audienceA pressing quest for overcoming Boltzmann tyranny in low-power nanoscale elect...
International audienceA pressing quest for overcoming Boltzmann tyranny in low-power nanoscale elect...
The stability of spontaneous electrical polarization in ferroelectrics is fundamental to many of the...
학위논문 (박사)-- 서울대학교 대학원 : 재료공학부, 2016. 8. 황철성.The capacitor is an essential component in many electron...
Because of the thermal distribution of electrons in a semiconductor, modern transistors cannot be tu...
Owing to the fundamental physics of the Boltzmann distribution, the ever-increasing power dissipatio...
Peer Reviewedhttp://deepblue.lib.umich.edu/bitstream/2027.42/98681/1/ApplPhysLett_99_113501.pd