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Dive into the research topics where Kimberly Modic is active.

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Featured researches published by Kimberly Modic.


Nature Communications | 2014

Realization of a three-dimensional spin–anisotropic harmonic honeycomb iridate

Kimberly Modic; Tess Smidt; Itamar Kimchi; Nicholas Breznay; Alun Biffin; Sungkyun Choi; R. D. Johnson; R. Coldea; Pilanda Watkins-Curry; Gregory T. McCandless; Julia Y. Chan; Felipe Gándara; Zahirul Islam; Ashvin Vishwanath; Arkady Shekhter; Ross D. McDonald; James G. Analytis

The physics of Mott insulators underlies diverse phenomena ranging from high temperature superconductivity to exotic magnetism. Although both the electron spin and the structure of the local orbitals play a key role in this physics, in most systems these are connected only indirectly — via the Pauli exclusion principle and the Coulomb interaction. Iridium-based oxides (iridates) open a further dimension to this problem by introducing strong spin-orbit interactions, such that the Mott physics has a strong orbital character. In the layered honeycomb iridates this is thought to generate highly spin-anisotropic interactions, coupling the spin orientation to a given spatial direction of exchange and leading to strongly frustrated magnetism. The potential for new physics emerging from such interactions has driven much scientific excitement, most recently in the search for a new quantum spin liquid, first discussed by Kitaev [1]. Here we report a new iridate structure that has the same local connectivity as the layered honeycomb, but in a three-dimensional framework. The temperature dependence of the magnetic susceptibility exhibits a striking reordering of the magnetic anisotropy, giving evidence for highly spin-anisotropic exchange interactions. Furthermore, the basic structural units of this material suggest the possibility of a new family of structures, the ‘harmonic honeycomb’ iridates. This compound thus provides a unique and exciting glimpse into the physics of a new class of strongly spin-orbit coupled Mott insulators. ∗ These authors contributed equally to this work.Spin and orbital quantum numbers play a key role in the physics of Mott insulators, but in most systems they are connected only indirectly--via the Pauli exclusion principle and the Coulomb interaction. Iridium-based oxides (iridates) introduce strong spin-orbit coupling directly, such that these numbers become entwined together and the Mott physics attains a strong orbital character. In the layered honeycomb iridates this is thought to generate highly spin-anisotropic magnetic interactions, coupling the spin to a given spatial direction of exchange and leading to strongly frustrated magnetism. Here we report a new iridate structure that has the same local connectivity as the layered honeycomb and exhibits striking evidence for highly spin-anisotropic exchange. The basic structural units of this material suggest that a new family of three-dimensional structures could exist, the harmonic honeycomb iridates, of which the present compound is the first example.


arXiv: Strongly Correlated Electrons | 2016

Robust spin correlations at high magnetic fields in the honeycomb iridates

Kimberly Modic; B. J. Ramshaw; Nicholas Breznay; James G. Analytis; Ross D. McDonald; Arkady Shekhter


arXiv: Superconductivity | 2018

Unidirectional superconductivity in the three-dimensional metal CeIrIn5

Maja D. Bachmann; Tobias Meng; Carsten Putzke; Toni Helm; You-Sheng Li; Kimberly Modic; M. Nicklas; Markus Koenig; A. P. Mackenzie; F. Arnold; Elena Hassinger; Ross D. McDonald; Laurel Winter; Eric D. Bauer; F. Ronning; Philip J. W. Moll


arXiv: Superconductivity | 2018

Spatially modulated heavy-fermion superconductivity in CeIrIn5.

Maja D. Bachmann; George Ferguson; Florian Theuss; Tobias Meng; Carsten Putzke; Toni Helm; Kent Shirer; You-Sheng Li; Kimberly Modic; M. Nicklas; Markus Koenig; David Low; Sayak Ghosh; A. P. Mackenzie; F. Arnold; Elena Hassinger; Ross D. McDonald; Laurel Winter; Eric D. Bauer; F. Ronning; B. J. Ramshaw; Katja C. Nowack; Philip J. W. Moll


arXiv: Strongly Correlated Electrons | 2018

Uncovering Weyl Fermions in the Quantum Limit of NbP

Kimberly Modic; Tobias Meng; F. Ronning; Eric D. Bauer; Philip J. W. Moll; B. J. Ramshaw


arXiv: Strongly Correlated Electrons | 2017

Annihilation of Weyl nodes in the Extreme Quantum Limit of TaAs

B. J. Ramshaw; Kimberly Modic; Arkady Shekhter; Philip J. W. Moll; Mun Chan; J. B. Betts; Fedor Balakirev; Albert Migliori; N. J. Ghimire; E. D. Bauer; F. Ronning; Ross D. McDonald


arXiv: Strongly Correlated Electrons | 2017

Unmasking Weyl Fermions using Extreme Magnetic Fields

B. J. Ramshaw; Kimberly Modic; Arkady Shekhter; Yi Zhang; Eun-Ah Kim; Philip J. W. Moll; Maja D. Bachmann; Mun Chan; J. B. Betts; Fedor Balakirev; Albert Migliori; N. J. Ghimire; E. D. Bauer; F. Ronning; Ross D. McDonald


Bulletin of the American Physical Society | 2017

High-field magnetoconductivity study of a candidate Weyl semimetal

Kimberly Modic; B. J. Ramshaw; Ross D. McDonald; Philip Ronning; Arkady Shekhter; Toni Helm; Maja D. Bachmann; Philip J. W. Moll


Bulletin of the American Physical Society | 2017

Competing electronic orders within a multi-band reconstructed Fermi surface in the layered cuprate superconductor Pr

Nicholas Breznay; Ian Hayes; Sylvia K. Lewin; A. Frano; Toni Helm; James G. Analytis; Yoshiharu Krockenberger; Hideki Yamamoto; Zengwei Zhu; Kimberly Modic; Ross D. McDonald


Bulletin of the American Physical Society | 2017

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Arkady Shekhter; Paula Giraldo Gallo; Jose Augusto Galvis Echeverri; Zachary Stegen; Kimberly Modic; Fedor Balakirev; Jonathan B. Betts; Xiujun Lian; camila Moir; Scott Riggs; Xi He; J. Wu; A. T. Bollinger; Ivan Bozovic; B. J. Ramshaw; Ross D. McDonald; Greg Boebinger

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Ross D. McDonald

Los Alamos National Laboratory

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B. J. Ramshaw

Los Alamos National Laboratory

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F. Ronning

Los Alamos National Laboratory

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Nicholas Breznay

Lawrence Berkeley National Laboratory

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Eric D. Bauer

Los Alamos National Laboratory

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Fedor Balakirev

Los Alamos National Laboratory

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