Award Abstract # 0805073
RUI: Optical Studies Of Magnetic, Charge And Orbital Ordering In Lone-Pair Compounds And Magnetite

NSF Org: DMR
Division Of Materials Research
Recipient: UNIVERSITY OF NORTH FLORIDA
Initial Amendment Date: June 17, 2008
Latest Amendment Date: March 1, 2012
Award Number: 0805073
Award Instrument: Continuing Grant
Program Manager: Guebre Tessema
gtessema@nsf.gov
 (703)292-4935
DMR
 Division Of Materials Research
MPS
 Directorate for Mathematical and Physical Sciences
Start Date: June 1, 2008
End Date: May 31, 2013 (Estimated)
Total Intended Award Amount: $158,737.00
Total Awarded Amount to Date: $173,237.00
Funds Obligated to Date: FY 2008 = $36,112.00
FY 2009 = $67,172.00

FY 2010 = $62,453.00

FY 2012 = $7,500.00
History of Investigator:
  • Lev Gasparov (Principal Investigator)
    lgasprov@unf.edu
Recipient Sponsored Research Office: University of North Florida
1 UNF DR
JACKSONVILLE
FL  US  32224-7699
(904)620-2455
Sponsor Congressional District: 05
Primary Place of Performance: University of North Florida
1 UNF DR
JACKSONVILLE
FL  US  32224-7699
Primary Place of Performance
Congressional District:
05
Unique Entity Identifier (UEI): MHM6MGJFANE7
Parent UEI:
NSF Program(s): CONDENSED MATTER PHYSICS
Primary Program Source: 01000809DB NSF RESEARCH & RELATED ACTIVIT
01000910DB NSF RESEARCH & RELATED ACTIVIT

01001011DB NSF RESEARCH & RELATED ACTIVIT

01001213DB NSF RESEARCH & RELATED ACTIVIT
Program Reference Code(s): 7504, 9161, 9178, 9229, 9251, AMPP, SMET
Program Element Code(s): 171000
Award Agency Code: 4900
Fund Agency Code: 4900
Assistance Listing Number(s): 47.049

ABSTRACT

NON-TECHNICAL ABSTRACT

The idea of ordering is an important one in physics. Charge, magnetic and orbital order are good examples of the ordering processes that may take place in materials. The basic idea is that when conditions are right the electric charge in a compound will organize itself in a certain fashion. The electron "spin" is another electronic property that may result in ordering. One can think of an electron spin as a small permanent magnet carried by an electron. The magnetic strength and orientation of this magnet is called its magnetic moment. Sometimes these magnetic moments order in a particular fashion resulting in magnetic (spin) ordering. Yet another type of ordering is associated with the way electrons orbit the nucleus of the atom. There are different types of electron "orbitals" that can be distinguished by their shapes (spherical versus dumbbell like for example). It is believed that in some compounds orientation of the orbitals may result in orbital ordering. Any type of ordering results in new properties of the compound. For instance charge ordering my lead to a compound with less electrical conductivity. Spin and orbital ordering may result in a compound that is a stronger magnet. Understanding how ordering happens therefore will lead to better materials engineering. This project uses optical spectroscopy to study and understand different types of ordering in two types of materials. Magnetite is the first magnetic material known to mankind and the physics of charge ordering in magnetite has been a puzzle since its discovery in 1939. Transition metal tellurite halides Co5(TeO3)4Br2, Co7(TeO3)4Br6 display a rich magnetic phase diagram indicating intricate magnetic and possibly orbital ordering and therefore are good candidates to study spin and orbital ordering. Students will be actively involved in this project and benefit significantly from the state-of-the-art equipment and from the collaboration with some of the nation's leading scientific laboratories. High school students will have a chance to work on some aspects of this project.


TECHNICAL ABSTRACT

Correlated electron systems are known to display a number of different types of ordering resulting in a rich phase diagram. Understanding the complex nature of these ordering processes can be achieved by optical spectroscopy. This individual investigator award supports a systematic infrared and Raman spectroscopic study of the evolution of the electronic, orbital, spin and lattice excitations as the magnetite, and lone-pair transition metal tellurite halides, undergo structural and magnetic transitions. After more than six decades of research the nature of the structural transition (Verwey transition) in magnetite (Fe3O4) is still an open question. A number of magnetite samples with different Verwey transition temperature provide a basis for systematic studies of this compound. Lone-pair transition metal tellurite halides Co5(TeO3)4Br2, Co7(TeO3)4Br6 are novel materials with low dimensional arrangement of the Te4+ cations and magnetic properties controlled by the unfilled d-orbitals of the Co2+ ion with the spin 3/2. Both Co7(TeO3)4Br6 and Co5(TeO3)4Br2 possess a rich magnetic phase diagram indicating intricate magnetic and possibly orbital ordering. Spectroscopic measurements in these compounds will provide a critical experimental insight into the physics of correlated electron systems. The students employed in this research program will benefit significantly by working in a modern research environment and by developing vital problem-solving skills.

PUBLICATIONS PRODUCED AS A RESULT OF THIS RESEARCH

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Arenas, DJ; Gasparov, LV; Qiu, W; Nino, JC; Patterson, CH; Tanner, DB "Raman study of phonon modes in bismuth pyrochlores" PHYSICAL REVIEW B , v.82 , 2010 View record at Web of Science 10.1103/PhysRevB.82.21430
Arenas, D. J.; Jegorel, Theo; Knab, Chris; Gasparov, L. V.; Martin, C.; Pajerowski, Daniel M.; Kohno, Hideo; Lufaso, Michael W. "Raman spectroscopy evidence of inhomogeneous disorder in the bismuth-oxygen framework of Bi25InO39 and other sillenites" PHYSICAL REVIEW B , v.86 , 2012
Carrico, B; Saredy, J; Tracy, JL; Patel, NG; Garner, J; Gasparov, L "Measurement of the dc resistance of semiconductor thin film-gas systems: Comparison to several transport models" JOURNAL OF APPLIED PHYSICS , v.102 , 2007 View record at Web of Science 10.1063/1.280102
Dean, N; Petersen, JC; Fausti, D; Tobey, RI; Kaiser, S; Gasparov, LV; Berger, H; Cavalleri, A "Polaronic Conductivity in the Photoinduced Phase of 1T-TaS2" PHYSICAL REVIEW LETTERS , v.106 , 2011 View record at Web of Science 10.1103/PhysRevLett.106.01640
Gasparov, L.; Shirshikova, Z.; Pekarek, T. M.; Blackburn, J.; Struzhkin, V.; Gavriliuk, A.; Rueckamp, R.; Berger, H. "Raman study of the Verwey transition in magnetite at high-pressure and low-temperature: Effect of Al doping" JOURNAL OF APPLIED PHYSICS , v.112 , 2012
Gasparov, LV; Rush, A; Guntherodt, G; Berger, H "Electronic Raman scattering in magnetite: Spin versus charge gap" PHYSICAL REVIEW B , v.79 , 2009 View record at Web of Science 10.1103/PhysRevB.79.14430
Lev Gasparov, Andrew Rush, Thomas Pekarek, Nirmal Patel, Helmuth Berger "Raman studies of doped magnetite above and below the Verwey transition" Journal of Applied Physics , v.105 , 2009 , p.07E109 10.1063/1.3067858
L. Gasparov, A. Rush, T. Pekarek, N. Patel, H. Berger "Raman studies of doped magnetite above and below the Verwey transition" Journal of Applied Physics , v.105 , 2009 , p.09G108 10.1063/1.3067858
Rowan, AD; Patterson, CH; Gasparov, LV "Hybrid density functional theory applied to magnetite: Crystal structure, charge order, and phonons" PHYSICAL REVIEW B , v.79 , 2009 View record at Web of Science 10.1103/PhysRevB.79.20510

PROJECT OUTCOMES REPORT

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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.

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