Award Abstract # 1028547
Frequency Agile Devices Based on Stimuli-Active Magnetic Nanowire Composites

NSF Org: ECCS
Division of Electrical, Communications and Cyber Systems
Recipient: UNIVERSITY OF NEW ORLEANS
Initial Amendment Date: August 25, 2010
Latest Amendment Date: May 15, 2013
Award Number: 1028547
Award Instrument: Standard Grant
Program Manager: Usha Varshney
ECCS
 Division of Electrical, Communications and Cyber Systems
ENG
 Directorate for Engineering
Start Date: September 1, 2010
End Date: August 31, 2014 (Estimated)
Total Intended Award Amount: $345,000.00
Total Awarded Amount to Date: $370,261.00
Funds Obligated to Date: FY 2010 = $345,000.00
FY 2013 = $25,261.00
History of Investigator:
  • Leonard Spinu (Principal Investigator)
    LSpinu@uno.edu
  • John Wiley (Co-Principal Investigator)
Recipient Sponsored Research Office: University of New Orleans
2000 LAKESHORE DR
NEW ORLEANS
LA  US  70148-3520
(504)280-6836
Sponsor Congressional District: 02
Primary Place of Performance: University of New Orleans
2000 LAKESHORE DR
NEW ORLEANS
LA  US  70148-3520
Primary Place of Performance
Congressional District:
02
Unique Entity Identifier (UEI): CL8JHK1LN291
Parent UEI:
NSF Program(s): EPMD-ElectrnPhoton&MagnDevices
Primary Program Source: 01001011DB NSF RESEARCH & RELATED ACTIVIT
01001314DB NSF RESEARCH & RELATED ACTIVIT
Program Reference Code(s): 101E, 107E, 7237, 9102, 9150, 9251
Program Element Code(s): 151700
Award Agency Code: 4900
Fund Agency Code: 4900
Assistance Listing Number(s): 47.041

ABSTRACT

The objective of this research is to develop novel frequency agile reciprocal (tunable filters) and non-reciprocal (isolator and circulator) microwave devices based on stimuli-responsive magnetic nanowires composites. In the modern world when wireless connectivity guarantees to provide voice, video and data access to ?everyone, anywhere, and anytime? there is a constant need for remotely tunable microwave devices. The proposed research will integrate fabrication of magnetic nanowires, frequency agile microwave device design, characterization and modeling.

Intellectual Merit. For more than half a century the ferrites were the ?workhorse? of the microwave devices, especially for nonreciprocal applications. The main advantage of ferrites is the fact that they provide an extremely high electrical resistivity with reasonable good magnetic properties, which is very important at high frequencies view the eddy?current loss. However, their average magnetic properties impacts negatively the size and weight of ferrite based microwave devices. The stimuli-responsive magnetic nanowires composites will combine the advantages provided by superior electromagnetic properties of magnetic nanowires with the ability of the active polymer matrix to provide a remote tuning of these electromagnetic properties. Piezoelectric and light active polymers will be used to couple magnetic nanowires in planar structures. In the case of a piezoelectric matrix, an electric field applied across the device?s plane will determine a variation in its planar dimensions which will change the average distance between the magnetic nanowires. For light active polymers, besides a variation of the average interwire distance, a change in the angular texture of the wires can be triggered as the planarity of the polymer film changes under the action of an optical stimulus. Both of these coupling mechanisms between magnetic nanowires and stimuli responsive matrices will affect the frequency response of the composite material, as the ferromagnetic resonance frequency is strongly dependent on interwire interactions and orientation of the wires.

Broader Impact. The findings gained from this project will contribute to the basic understanding of the nanoscale physical phenomena, specifically nanomagnetism, providing insights into the dynamic properties of mesoscopic magnetic structures. The immediate benefit for the society comes from the big impact of the proposed activity on rf and microwave technologies. Also, this project will provide important training for graduate and undergraduate students in Physics, Chemistry and Nanomaterials Science. Students will be involved in all aspects of this program gaining important experience in processing and characterization of these materials. Further, this program will serve to expand nanotechnology education in Louisiana by exposing undergraduates students, especially minorities, to the latest research developments.

PUBLICATIONS PRODUCED AS A RESULT OF THIS RESEARCH

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D. Cimpoesu, J. Ding, L. Stoleriu, A. Adeyeye, A. Stancu, and L. Spinu "Angular resonant absorption curves in magnetic nanowire arrays" Applied Physics Letters , v.102 , 2013 , p.232401 10.1063/1.4810758
Dorin Cimpoesu, Junjia Ding, Laurentiu Stoleriu, Adekunle Adeyeye, Alexandru Stancu, and Leonard Spinu "Angular resonant absorption curves in magnetic nanowire arrays" Applied Physics Letters , v.102 , 2013 , p.232401 doi: 10.1063/1.4810758
Jin-Hee Lim, Seong-Gi Min, Leszek Malkinski, and John B. Wiley "Iron Oxide Nanotubes Synthesized via Template-based Electrodeposition" Nanotechnology , v.6 , 2014 , p.5289 doi: 10.1039/c3nr06924a
J.L. Palma, C. Gallardo, L. Spinu, J.M. Vargas, L.S. Dorneles, J.C. Denardin, J. Escrig "Magnetic properties of Fe20 Ni80 antidots: Pore size and array disorder" Journal of Magnetism and Magnetic Materials , v.344 , 2013 , p.8 doi.org/10.1016/j.jmmm.2013.05.021
Leonard Spinu and John B. Wiley "Magnetic Multitudes" Magnetics Technology International , 2012 , p.4
Leonard Spinu and John B. Wiley "Magnetic Multitudes" Magnetics Technology International , 2012
Lim, J. H.;Rotaru, A.;Min, S. G.;Malkinski, L.;Wiley, J. B.; "Synthesis of mild-hard AAO templates for studying magnetic interactions between metal nanowires" Journal of Materials Chemistry , v.20 , 2010 , p.9246-9252
Rotaru, A; Lim, JH; Lenormand, D; Diaconu, A; Wiley, JB; Postolache, P; Stancu, A; Spinu, L "Interactions and reversal-field memory in complex magnetic nanowire arrays" PHYSICAL REVIEW B , v.84 , 2011 View record at Web of Science 10.1103/PhysRevB.84.13443
Shankar Khanal, Andrei Diaconu, Jose M Vargas,Denny R Lenormand, Carlos Garcia, C A Ross and Leonard Spinu "Exchange bias in (FeNi/IrMn)n multilayer films evaluated by static and dynamic techniques" Journal of Physics D: Applied Physics , v.47 , 2014 , p.255002 doi:10.1088/0022-3727/47/25/255002

PROJECT OUTCOMES REPORT

Disclaimer

This Project Outcomes Report for the General Public is displayed verbatim as submitted by the Principal Investigator (PI) for this award. Any opinions, findings, and conclusions or recommendations expressed in this Report are those of the PI and do not necessarily reflect the views of the National Science Foundation; NSF has not approved or endorsed its content.

In the modern world when wireless connectivity guarantees to provide voice, video and data access to “everyone, anywhere, and anytime” there is a constant need for remotely tunable microwave devices. The objective of this research was to develop novel frequency agile reciprocal (tunable filters) and non-reciprocal (isolator and circulator) microwave devices based on stimuli-responsive magnetic nanowires composites. The proposed research integrated fabrication of magnetic nanowires with various configuration, frequency agile microwave device design, and characterization and modeling.

Intellectual Merit. For more than half a century the ferrites were the “workhorse” of the microwave devices, especially for nonreciprocal applications. The main advantage of ferrites is the fact that they provide an extremely high electrical resistivity with reasonable good magnetic properties, which is very important at high frequencies view the eddy–current loss. However, their average magnetic properties impacts negatively the size and weight of ferrite based microwave devices. The stimuli-responsive magnetic nanowires composites combines the advantages provided by superior electromagnetic properties of magnetic nanowires with the ability of the active polymer matrix to provide a remote tuning of these electromagnetic properties. Piezoelectric and light active polymers were considered in this research project to couple magnetic nanowires in planar structures. The coupling between magnetic nanowires and stimuli responsive matrices affects the frequency response of the composite material.

During this research project we developed several methods for the fabrication of arrays of magnetic nanowires, mainly using a template based method.  As the quality of the templates can impact the properties of grown magnetic nanowires an important effort was devoted to designing and fabricating high quality templates. An example of alumina oxide (AAO) membrane we synthesized and used as a mold in fabrication of arrays of magnetic nanowires is shown in Fig. 1. High-quality arrays of magnetic nanowires with a good control of their morphology and configuration were accessible (See Fig. 1 and Fig. 2). A significant effort was devoted to integrate the magnetic nanowires in polymeric membranes. This process was achieved either by co-deposition of metal and polymer into the pores of an anodic alumina membrane or by replacing the AAO membrane of electrodeposited nanowires with a polymeric one. An example of the integration of polymeric membranes in sets of Ni nanowire is shown in Fig. 3. Extensive testing and measurements were carried out on the fabricated materials and structures, including structural, chemical and physical characterization. Magnetic and microwave measurements were carried out on the fabricated materials and structures. An example of the microwave response of sets of periodic magnetic nanowires fabricated by electron beam lithography is shown in Fig. 4. 

Broader Impact.  The findings gained from this project contribute to the basic understanding of the nanoscale physical phenomena, specifically nanomagnetism, providing insights into the dynamic properties of mesoscopic magnetic structures. The immediate benefit for the society comes from the big impact of the proposed activity on rf and microwave technologies. Also, this project provided important training for graduate and undergraduate students in Physics, Chemistry and Nanomaterials Science. Two graduate students (one female) involved in all aspects of this program gained important experience in processing and characterization of these materials. Further, this program served to expand nanotechnology education in Louisiana by exposing 3 undergraduates students (one female), to the latest research developments.

 

 


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