Award Abstract # 1807451
Quantum Spin Liquids in Correlated f-Electron Compounds

NSF Org: DMR
Division Of Materials Research
Recipient: TEXAS A & M UNIVERSITY
Initial Amendment Date: August 5, 2018
Latest Amendment Date: June 29, 2020
Award Number: 1807451
Award Instrument: Continuing Grant
Program Manager: Elizabeth Mann
elmann@nsf.gov
 (703)292-2655
DMR
 Division Of Materials Research
MPS
 Directorate for Mathematical and Physical Sciences
Start Date: August 15, 2018
End Date: July 31, 2023 (Estimated)
Total Intended Award Amount: $560,536.00
Total Awarded Amount to Date: $560,536.00
Funds Obligated to Date: FY 2018 = $351,016.00
FY 2019 = $109,520.00

FY 2020 = $100,000.00
History of Investigator:
  • Joseph Ross, Jr. (Principal Investigator)
    jhross@tamu.edu
  • Meigan Aronson (Co-Principal Investigator)
  • Meigan Aronson (Former Principal Investigator)
  • Joseph Ross, Jr. (Former Co-Principal Investigator)
Recipient Sponsored Research Office: Texas A&M University
400 HARVEY MITCHELL PKY S STE 300
COLLEGE STATION
TX  US  77845-4375
(979)862-6777
Sponsor Congressional District: 10
Primary Place of Performance: Texas A&M University Main Campus
4242 TAMU
College Station
TX  US  77843-4242
Primary Place of Performance
Congressional District:
10
Unique Entity Identifier (UEI): JF6XLNB4CDJ5
Parent UEI:
NSF Program(s): CONDENSED MATTER PHYSICS,
SOLID STATE & MATERIALS CHEMIS
Primary Program Source: 01001819DB NSF RESEARCH & RELATED ACTIVIT
01001920DB NSF RESEARCH & RELATED ACTIVIT

01002021DB NSF RESEARCH & RELATED ACTIVIT
Program Reference Code(s): 053Z
Program Element Code(s): 171000, 176200
Award Agency Code: 4900
Fund Agency Code: 4900
Assistance Listing Number(s): 47.049

ABSTRACT

Nontechnical Abstract: Almost all materials will ultimately settle into an ordered state at the lowest temperatures. The situation would be much different in a universe that is one- or two dimensional, and where the exotic quantum spin liquid state may emerge. Understanding the ways in which the transport of heat and charge occurs in such a state is just beginning, and controlling it to create practical devices and sensors has emerged as a central challenge. This project will identify and synthesize new materials in search for a metallic quantum spin liquid. Neutron scattering experiments will be carried out at national facilities at Oak Ridge National Laboratory and at the National Institute of Standards and Technology. Both undergraduate and graduate students participate in all aspects of these experiments, receiving thorough training and broad experience in measurement techniques and applications that will prepare them to become effective future users of these national facilities.

Technical Abstract: Quantum Spin Liquids (QSL) occur when magnetic order is overwhelmed by strong quantum fluctuations, giving rise to massively entangled ground states with unusual excitations, often with topological character. While metallic QSLs are expected to have a much richer range of phase behaviors, the few QSL systems discovered so far are all insulating. The discovery of intrinsically metallic QSLs where frustrated moments are coupled to itinerant conduction electrons has the potential to realize and to test theoretical predictions of exotic states and phases like unconventional superconductivity, ferromagnetism, and Dirac metals where excitations have photon-like dispersions. This project seeks to find the first examples of metallic QSLs among the f-electron based heavy fermions, and to explicate how the breakdown of conventional magnetic order or alternatively the formation of magnetic moments via the collapse of the Fermi surface can be generic routes to QSL formation in metals. The experimental program is based on the metallic R2T2X (R=Ce,Yb) compounds, where strong quantum fluctuations arise from competition between dimerization and magnetic order in both planar and chainlike morphologies. The high quality single crystals required to support this experimental program will be grown in our lab from metallic fluxes. Neutron diffraction, magnetometry, heat capacity, and electrical transport measurements will be primary tools for explicating the underlying magnetic and electronic phase diagrams, supplemented by inelastic neutron scattering measurements that will assess the corresponding development of magnetic fluctuations and correlations.

This award reflects NSF's statutory mission and has been deemed worthy of support through evaluation using the Foundation's intellectual merit and broader impacts review criteria.

PUBLICATIONS PRODUCED AS A RESULT OF THIS RESEARCH

Note:  When clicking on a Digital Object Identifier (DOI) number, you will be taken to an external site maintained by the publisher. Some full text articles may not yet be available without a charge during the embargo (administrative interval).

Some links on this page may take you to non-federal websites. Their policies may differ from this site.

Gannon, W. J. and Chen, K. and Sundermann, M. and Strigari, F. and Utsumi, Y. and Tsuei, K.-D. and Rueff, J.-P. and Bencok, P. and Tanaka, A. and Severing, A. and Aronson, M. C. "Intermediate valence in single crystalline Yb2Si2Al" Physical Review B , v.98 , 2018 10.1103/PhysRevB.98.075101 Citation Details
Gannon, W. J. and Zaliznyak, I. A. and Wu, L. S. and Feiguin, A. E. and Tsvelik, A. M. and Demmel, F. and Qiu, Y. and Copley, J. R. and Kim, M. S. and Aronson, M. C. "Spinon confinement and a sharp longitudinal mode in Yb2Pt2Pb in magnetic fields" Nature Communications , v.10 , 2019 10.1038/s41467-019-08715-y Citation Details
Li, X. Y. and Reig-i-Plessis, D. and Liu, P. F. and Wu, S. and Wanf, B. T. and Hallas, A. M. and Stone, M. B. and Aronson, M. C. "Neutron Scattering Study of the kagome metal Sc3Mn3Al7Si5" Physical review , v.104 , 2021 Citation Details
Li, X Y and Reig-i-Plessis, D and Liu, P F and Wu, S and Wang, B T and Hallas, A M and Stone, M B and Broholm, C and Aronson, M C "Neutron scattering study of the kagome metal Sc3Mn3Al7Si5" Physical review , v.104 , 2021 Citation Details
Maiwald, J and Mazin, I I and Gurevich, A and Aronson, M C "Superconductivity in La2Ni2In" Physical review , v.102 , 2020 https://doi.org/10.1103/PhysRevB.102.165125 Citation Details
Maiwald, J and Mazin, I. I. and Gurevich, A and Aronson, M. C. "Superconductivity in La2Ni2In" Physical review , v.102 , 2020 Citation Details
Maiwald, Jannis and Aronson, M. C. "Physical and one-dimensional properties of single-crystalline La5AgPb3" Physical Review B , v.105 , 2022 https://doi.org/10.1103/PhysRevB.105.155116 Citation Details
Pandey, A and Miao, P and Klemm, M and He, H and Wang, X and Lynn, J and Aronson, M "Correlations and incipient antiferromagnetic order within the linear Mn chains of metallic Ti4MnBi2" Physical review , v.102 , 2020 Citation Details
Umana, J. C. and Baccarella, A. M. and Steinke, L and Geritano, A and Janssen, Y. and Aronson, M. C and Simonson, J. W. "The disordered and correlated insulator Bi2CrAl3O9" PRB , v.100 , 2019 https://doi-org.ezproxy.library.ubc.ca/10.1103/PhysRevB.100.104425 Citation Details

Please report errors in award information by writing to: awardsearch@nsf.gov.

Print this page

Back to Top of page