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Publications

Sachdev-Ye-Kitaev models and beyond: Window into non-Fermi liquids

Cornell Affiliated Author(s)
Author
Debanjan Chowdhury
A. Georges
O. Parcollet
S. Sachdev
Abstract

This is a review of the Sachdev-Ye-Kitaev (SYK) model of compressible quantum many-body systems without quasiparticle excitations, and its connections to various theoretical studies of non-Fermi liquids in condensed matter physics. The review is placed in the context of numerous experimental observations on correlated electron materials. Strong correlations in metals are often associated with their proximity to a Mott transition to an insulator created by the local Coulomb repulsion between the electrons.

Journal
Reviews of Modern Physics
Date Published
Funding Source
DMR-2002850
DE-SC0019030
DMR-2002850
651440
Group (Lab)
Debanjan Chowdhury Group

On the electron pairing mechanism of copper-oxide high temperature superconductivity

Cornell Affiliated Author(s)
Author
S.M. O’Mahony
W. Ren
W. Chen
Y.X. Chong
X. Liu
H. Eisaki
S. Uchida
M.H. Hamidian
J.C.S. Davis
Abstract

The elementary CuO2 plane sustaining cuprate high-temperature superconductivity occurs typically at the base of a periodic array of edge-sharing CuO5 pyramids. Virtual transitions of electrons between adjacent planar Cu and O atoms, occurring at a rate t/̄h and across the charge-transfer energy gap ℇ, generate “superexchange†spin–spin interactions of energy J ≈ 4t4=ℇ3 in an antiferromagnetic correlated-insulator state. However, hole doping this CuO2 plane converts this into a very-high-temperature superconducting state whose electron pairing is exceptional.

Journal
Proceedings of the National Academy of Sciences of the United States of America
Date Published
Group (Lab)
J.C. Seamus Davis Group

The Chromium Dimer: Closing a Chapter of Quantum Chemistry

Cornell Affiliated Author(s)
Author
Henrik Larsson
Huanchen Zhai
C. Umrigar
Garnet Chan
Abstract

The complex electronic structure and unusual potential energy curve of the chromium dimer have fascinated scientists for decades, with agreement between theory and experiment so far elusive. Here, we present a new ab initio simulation of the potential energy curve and vibrational spectrum that significantly improves on all earlier estimates. Our data support a shift in earlier experimental assignments of a cluster of vibrational frequencies by one quantum number.

Journal
Journal of the American Chemical Society
Date Published
Group (Lab)
Cyrus Umrigar Group

Dissipation by surface states in superconducting radio-frequency cavities

Author
S. Deyo
M. Kelley
N. Sitaraman
T. Oseroff
D.B. Liarte
Tomas Arias
M. Liepe
J.P. Sethna
Abstract

Recent experiments on superconducting cavities have found that under large rf electromagnetic fields the quality factor can improve with increasing field amplitude, a so-called "anti-Q slope."Linear theories of dissipation break down under these extreme conditions and are unable to explain this behavior. We numerically solve the Bogoliubov-de Gennes equations at the surface of a superconductor in a parallel AC magnetic field, finding that at large fields there are quasiparticle surface states with energies below the bulk value of the superconducting gap.

Journal
Physical Review B
Date Published
Funding Source
PHY-1549132
Group (Lab)
James Sethna Group
Tomas Arias Group

Hydroelastomers: soft, tough, highly swelling composites

Cornell Affiliated Author(s)
Author
S. Moser
Y. Feng
O. Yasa
S. Heyden
M. Kessler
E. Amstad
E.R. Dufresne
R.K. Katzschmann
R.W. Style
Abstract

Inspired by the cellular design of plant tissue, we present an approach to make versatile, tough, highly water-swelling composites. We embed highly swelling hydrogel particles inside tough, water-permeable, elastomeric matrices. The resulting composites, which we call hydroelastomers, combine the properties of their parent phases. From their hydrogel component, the composites inherit the ability to highly swell in water. From the elastomeric component, the composites inherit excellent stretchability and fracture toughness, while showing little softening as they swell.

Journal
Soft Matter
Date Published
Group (Lab)
Eric Dufresne Group

Resonant enhancement of particle emission from a parametrically driven condensate in a one-dimensional lattice

Cornell Affiliated Author(s)
Author
L.Q. Lai
Y.B. Yu
E.J. Mueller
Abstract

Motivated by recent experiments, we investigate particle emission from a Bose-Einstein condensate in a one-dimensional lattice, where the interaction strength is periodically modulated. The modulated interactions parametrically excite a collective mode, leading to density oscillations. These collective oscillations in turn drive particle emission. This multistep process amplifies the drive, producing larger particle jets. We find that the amplitude dependence of the emission rate has a characteristic threshold behavior, as seen in experiments. © 2022 American Physical Society.

Journal
Physical Review A
Date Published
Funding Source
PHY-2110250
11675051
201906130092

A tunable bilayer Hubbard model in twisted WSe2

Cornell Affiliated Author(s)
Author
Y. Xu
K. Kang
K. Watanabe
T. Taniguchi
K.F. Mak
J. Shan
Abstract

Moiré materials with flat electronic bands provide a highly controllable quantum system for studies of strong-correlation physics and topology. In particular, angle-aligned heterobilayers of semiconducting transition metal dichalcogenides with large band offset realize the single-band Hubbard model. Introduction of a new layer degree of freedom is expected to foster richer interactions, enabling Hund’s physics, interlayer exciton condensation and new superconducting pairing mechanisms to name a few.

Journal
Nature Nanotechnology
Date Published
Funding Source
DMR-2114535
N00014-21-1-2471
DE-SC0019481
DE-SC0022058
NNCI-2025233
JPMJCR15F3
2021YFA1401300
Group (Lab)
Jie Shan Group
Kin Fai Mak Group

Deep-learning analysis of micropattern-based organoids enables high-throughput drug screening of Huntington's disease models

Cornell Affiliated Author(s)
Author
J.J. Metzger
C. Pereda
A. Adhikari
T. Haremaki
S. Galgoczi
E.D. Siggia
A.H. Brivanlou
F. Etoc
Abstract

Organoids are carrying the promise of modeling complex disease phenotypes and serving as a powerful basis for unbiased drug screens, potentially offering a more efficient drug-discovery route. However, unsolved technical bottlenecks of reproducibility and scalability have prevented the use of current organoids for high-throughput screening. Here, we present a method that overcomes these limitations by using deep-learning-driven analysis for phenotypic drug screens based on highly standardized micropattern-based neural organoids.

Journal
Cell Reports Methods
Date Published
Funding Source
1843570
DISC2-10182
A-9423
Research Area

Growth of PdCoO2films with controlled termination by molecular-beam epitaxy and determination of their electronic structure by angle-resolved photoemission spectroscopy

Cornell Affiliated Author(s)
Author
Q. Song
J. Sun
C.T. Parzyck
L. Miao
Q. Xu
F.V.E. Hensling
M.R. Barone
C. Hu
J. Kim
B.D. Faeth
H. Paik
P.D.C. King
K.M. Shen
D.G. Schlom
Abstract

Utilizing the powerful combination of molecular-beam epitaxy (MBE) and angle-resolved photoemission spectroscopy (ARPES), we produce and study the effect of different terminating layers on the electronic structure of the metallic delafossite PdCoO2. Attempts to introduce unpaired electrons and synthesize new antiferromagnetic metals akin to the isostructural compound PdCrO2 have been made by replacing cobalt with iron in PdCoO2 films grown by MBE. Using ARPES, we observe similar bulk bands in these PdCoO2 films with Pd-, CoO2-, and FeO2-termination.

Journal
APL Materials
Date Published
Funding Source
DMR-1719875
DMR-2104427
MRI DMR-1338010
FA9550-21-1-0168
DE-SC0002334
NNCI-2025233
714193
DMR-2150446
Group (Lab)
Kyle Shen Group

Piezomagnetic switching of the anomalous Hall effect in an antiferromagnet at room temperature

Cornell Affiliated Author(s)
Author
M. Ikhlas
S. Dasgupta
F. Theuss
T. Higo
Shunichiro Kittaka
B. Ramshaw
O. Tchernyshyov
C. Hicks
S. Nakatsuji
Abstract

Piezomagnetism couples strain linearly to magnetic order, implying that it can produce and control magnetization. However, unlike magnetostriction, which couples magnetization quadratically to strain, it enables bidirectional control of a net magnetic moment. If this effect becomes large at room temperature, it may be technologically relevant, similar to its electric analogue, piezoelectricity. However, current studies of the piezomagnetic effect have been primarily restricted to antiferromagnetic insulators at cryogenic temperatures.

Journal
Nature Physics
Date Published
Group (Lab)
Brad Ramshaw Group