Electrical oscillation generation with current-induced resistivity switching in VO2 micro-channel devices

We report large amplitude modulation waveforms as large as ~ 10 V using vanadium dioxide micro-channel devices operating under current-controlled conditions. The self-sustained electrical oscillations were generated by controlling the applied current in the negative differential resistance region of...

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Main Authors: Milinda Pattanayak, Md Nadim F Hoque, Zhaoyang Fan, Ayrton A. Bernussi
Format: Article
Language:English
Published: Taylor & Francis Group 2018-12-01
Series:Science and Technology of Advanced Materials
Subjects:
VO2
Online Access:http://dx.doi.org/10.1080/14686996.2018.1521249
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spelling doaj-014776554aec4c19ac7b94c77c6654fd2020-11-25T02:15:40ZengTaylor & Francis GroupScience and Technology of Advanced Materials1468-69961878-55142018-12-0119169370110.1080/14686996.2018.15212491521249Electrical oscillation generation with current-induced resistivity switching in VO2 micro-channel devicesMilinda Pattanayak0Md Nadim F Hoque1Zhaoyang Fan2Ayrton A. Bernussi3Texas Tech UniversityTexas Tech UniversityTexas Tech UniversityTexas Tech UniversityWe report large amplitude modulation waveforms as large as ~ 10 V using vanadium dioxide micro-channel devices operating under current-controlled conditions. The self-sustained electrical oscillations were generated by controlling the applied current in the negative differential resistance region of the investigated devices. An appropriate value of internal capacitance was achieved as parasitic capacitance in the device structure to stabilize the electrical oscillations. This eliminates the need of an external pulsed source or any external passive component connected to the micro-channel devices. Amplitude and frequency of the oscillation were tuned by illuminating the device micro-channel with an external laser. An equivalent circuit model was developed to simulate the waveforms. A good agreement between experiment and simulation was verified.http://dx.doi.org/10.1080/14686996.2018.1521249VO2 insulator to metal transitionmicro-channel devicevoltage-controlled modecurrent-controlled modemicro-fabricationnegative differential resistanceelectrical oscillator
collection DOAJ
language English
format Article
sources DOAJ
author Milinda Pattanayak
Md Nadim F Hoque
Zhaoyang Fan
Ayrton A. Bernussi
spellingShingle Milinda Pattanayak
Md Nadim F Hoque
Zhaoyang Fan
Ayrton A. Bernussi
Electrical oscillation generation with current-induced resistivity switching in VO2 micro-channel devices
Science and Technology of Advanced Materials
VO2
insulator to metal transition
micro-channel device
voltage-controlled mode
current-controlled mode
micro-fabrication
negative differential resistance
electrical oscillator
author_facet Milinda Pattanayak
Md Nadim F Hoque
Zhaoyang Fan
Ayrton A. Bernussi
author_sort Milinda Pattanayak
title Electrical oscillation generation with current-induced resistivity switching in VO2 micro-channel devices
title_short Electrical oscillation generation with current-induced resistivity switching in VO2 micro-channel devices
title_full Electrical oscillation generation with current-induced resistivity switching in VO2 micro-channel devices
title_fullStr Electrical oscillation generation with current-induced resistivity switching in VO2 micro-channel devices
title_full_unstemmed Electrical oscillation generation with current-induced resistivity switching in VO2 micro-channel devices
title_sort electrical oscillation generation with current-induced resistivity switching in vo2 micro-channel devices
publisher Taylor & Francis Group
series Science and Technology of Advanced Materials
issn 1468-6996
1878-5514
publishDate 2018-12-01
description We report large amplitude modulation waveforms as large as ~ 10 V using vanadium dioxide micro-channel devices operating under current-controlled conditions. The self-sustained electrical oscillations were generated by controlling the applied current in the negative differential resistance region of the investigated devices. An appropriate value of internal capacitance was achieved as parasitic capacitance in the device structure to stabilize the electrical oscillations. This eliminates the need of an external pulsed source or any external passive component connected to the micro-channel devices. Amplitude and frequency of the oscillation were tuned by illuminating the device micro-channel with an external laser. An equivalent circuit model was developed to simulate the waveforms. A good agreement between experiment and simulation was verified.
topic VO2
insulator to metal transition
micro-channel device
voltage-controlled mode
current-controlled mode
micro-fabrication
negative differential resistance
electrical oscillator
url http://dx.doi.org/10.1080/14686996.2018.1521249
work_keys_str_mv AT milindapattanayak electricaloscillationgenerationwithcurrentinducedresistivityswitchinginvo2microchanneldevices
AT mdnadimfhoque electricaloscillationgenerationwithcurrentinducedresistivityswitchinginvo2microchanneldevices
AT zhaoyangfan electricaloscillationgenerationwithcurrentinducedresistivityswitchinginvo2microchanneldevices
AT ayrtonabernussi electricaloscillationgenerationwithcurrentinducedresistivityswitchinginvo2microchanneldevices
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