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We introduce an effective theory for quantum critical points (QCPs) in heavy fermion systems, involving a change in carrier density without symmetry breaking.
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2003
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J. Custers, P. Gegenwart, H. Wilhelm, K. Neumaier, Y. Tokiwa, O. Trovarelli, C. Geibel, F. Steglich, C. Pépin, and P. Coleman, The break-up of heavy electrons at a quantum critical point, Nature 424
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S. Paschen, T. Lühmann, S. Wirth, P. Gegenwart, O. Trovarelli, C. Geibel, F. Steglich, P. Coleman, and Q. Si, Hall-effect evolution across a heavy-fermion quantum critical point, Nature 432
2004
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T. Senthil, M. Vojta, and S. Sachdev, Weak magnetism and non-Fermi liquids near heavy-fermion critical points, Physical Review B 69
2004
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2004
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H. Shishido, R. Settai, H. Harima, and Y. Ōnuki, A drastic change of the Fermi surface at a critical pressure in CeRhIn 5 : dHvA study under pressure, Journal of the Physical Society of Japan 74
2005
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A. A. Patel and S. Sachdev, DC resistivity at the onset of spin density wave order in two-dimensional metals, Phys. Rev. B 90
2014
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J. Maldacena and D. Stanford, Remarks on the Sachdev-Ye-Kitaev model, Phys. Rev. D 94
2016
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Z. Bi, C.-M. Jian, Y.-Z. You, K. A. Pawlak, and C. Xu, Instability of the non-Fermi-liquid state of the Sachdev-Ye-Kitaev model, Phys. Rev. B 95
2017
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A. A. Patel and S. Sachdev, Critical strange metal from fluctuating gauge fields in a solvable random model, Phys. Rev. B 98
2018
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P. Coleman, I. Paul, and J. Rech, Sum rules and Ward identities in the Kondo lattice, Phys. Rev. B 72
2005
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W. X. Gang, Quantum Field Theory of Many-Body Systems: From the Origin of Sound to an Origin of Light and Electrons (Oxford University Press, 2007)
2007
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I. Paul, C. Pépin, and M. R. Norman, Kondo breakdown and hybridization fluctuations in the kondo-heisenberg lattice, Phys. Rev. Lett. 98
2007
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I. Paul, C. Pépin, and M. R. Norman, Multiscale fluctuations near a Kondo breakdown quantum critical point, Phys. Rev. B 78
2008
Cited alongside, same era.
S.-S. Lee, Low-energy effective theory of Fermi surface coupled with U(1) gauge field in 2 + 1 2+1 dimensions, Phys. Rev. B 80
2009
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Q. Si and F. Steglich, Heavy fermions and quantum phase transitions, Science 329
2010
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S. Friedemann, N. Oeschler, S. Wirth, C. Krellner, C. Geibel, F. Steglich, S. Paschen, S. Kirchner, and Q. Si, Fermi-surface collapse and dynamical scaling near a quantum-critical point, Proceedings of the National Academy of Sciences 107
2010
Cited alongside, same era.
M. A. Metlitski and S. Sachdev, Quantum phase transitions of metals in two spatial dimensions. I. Ising-nematic order, Phys. Rev. B 82
2010
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2018
Later among the works it cites.
S. A. Hartnoll, A. Lucas, and S. Sachdev, Holographic quantum matter (MIT press, 2018)
2018
Later among the works it cites.
E. Marcus and S. Vandoren, A new class of SYK-like models with maximal chaos, Journal of High Energy Physics 2019
2019
Later among the works it cites.
I. Esterlis and J. Schmalian, Cooper pairing of incoherent electrons: An electron-phonon version of the Sachdev-Ye-Kitaev model, Phys. Rev. B 100
2019
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A. A. Patel and S. Sachdev, Theory of a Planckian metal, Phys. Rev. Lett. 123
2019
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C. Proust and L. Taillefer, The remarkable underlying ground states of cuprate superconductors, Annual Review of Condensed Matter Physics 10
2019
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Y. Wang, Solvable strong-coupling quantum-dot model with a non-Fermi-liquid pairing transition, Phys. Rev. Lett. 124
2020
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J. Kim, X. Cao, and E. Altman, Low-rank Sachdev-Ye-Kitaev models, Phys. Rev. B 101
2020
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Y. Cao, D. Chowdhury, D. Rodan-Legrain, O. Rubies-Bigorda, K. Watanabe, T. Taniguchi, T. Senthil, and P. Jarillo-Herrero, Strange metal in magic-angle graphene with near Planckian dissipation, Phys. Rev. Lett. 124
2020
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2020
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C. Collignon, A. Ataei, A. Gourgout, S. Badoux, M. Lizaire, A. Legros, S. Licciardello, S. Wiedmann, J.-Q. Yan, J.-S. Zhou, Q. Ma, B. D. Gaulin, N. Doiron-Leyraud, and L. Taillefer, Thermopower across the phase diagram of the cuprate la 1.6 − x nd 0.4 sr x cuo 4 {\mathrm{la}}_{1.6-x}{\mathrm{nd}}_{0.4}{\mathrm{sr}}_{x}{\mathrm{cuo}}_{4} : Signatures of the pseudogap and charge density wave phases, Phys. Rev. B 103
2021
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