Discovery of an Unconventional Quantum Echo by Interference of Higgs Coherence

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Hauptverfasser: Huang, C., Mootz, M., Luo, L., Cheng, D., Park, J. M., Kim, R. H. J., Qiang, Y., Quito, V. L., Yao, Yongxin, Orth, P. P., Perakis, I. E., Wang, J.
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Veröffentlicht: 2023
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author Huang, C.
Mootz, M.
Luo, L.
Cheng, D.
Park, J. M.
Kim, R. H. J.
Qiang, Y.
Quito, V. L.
Yao, Yongxin
Orth, P. P.
Perakis, I. E.
Wang, J.
author_facet Huang, C.
Mootz, M.
Luo, L.
Cheng, D.
Park, J. M.
Kim, R. H. J.
Qiang, Y.
Quito, V. L.
Yao, Yongxin
Orth, P. P.
Perakis, I. E.
Wang, J.
contents Nonlinearities in quantum systems are fundamentally characterized by the interplay of phase coherences, their interference, and state transition amplitudes. Yet the question of how quantum coherence and interference manifest in transient, massive Higgs excitations, prevalent within both the quantum vacuum and superconductors, remains elusive. One hallmark example is photon echo, enabled by the generation, preservation, and retrieval of phase coherences amid multiple excitations. Here we reveal an unconventional quantum echo arising from the Higgs coherence in superconductors, and identify distinctive signatures attributed to Higgs anharmonicity. A terahertz pulse-pair modulation of the superconducting gap generates a "time grating" of coherent Higgs population, which scatters echo signals distinct from conventional spin- and photon-echoes in atoms and semiconductors. These manifestations appear as Higgs echo spectral peaks occurring at frequencies forbidden by equilibrium particle-hole symmetry, an asymmetric delay in the echo formation from the dynamics of the "reactive" superconducting state, and negative time signals arising from Higgs-quasiparticle anharmonic coupling. The Higgs interference and anharmonicity control the decoherence of driven superconductivity and may enable applications in quantum memory and entanglement.
format Preprint
id arxiv_https___arxiv_org_abs_2312_10912
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle Discovery of an Unconventional Quantum Echo by Interference of Higgs Coherence
Huang, C.
Mootz, M.
Luo, L.
Cheng, D.
Park, J. M.
Kim, R. H. J.
Qiang, Y.
Quito, V. L.
Yao, Yongxin
Orth, P. P.
Perakis, I. E.
Wang, J.
Strongly Correlated Electrons
Superconductivity
Quantum Physics
Nonlinearities in quantum systems are fundamentally characterized by the interplay of phase coherences, their interference, and state transition amplitudes. Yet the question of how quantum coherence and interference manifest in transient, massive Higgs excitations, prevalent within both the quantum vacuum and superconductors, remains elusive. One hallmark example is photon echo, enabled by the generation, preservation, and retrieval of phase coherences amid multiple excitations. Here we reveal an unconventional quantum echo arising from the Higgs coherence in superconductors, and identify distinctive signatures attributed to Higgs anharmonicity. A terahertz pulse-pair modulation of the superconducting gap generates a "time grating" of coherent Higgs population, which scatters echo signals distinct from conventional spin- and photon-echoes in atoms and semiconductors. These manifestations appear as Higgs echo spectral peaks occurring at frequencies forbidden by equilibrium particle-hole symmetry, an asymmetric delay in the echo formation from the dynamics of the "reactive" superconducting state, and negative time signals arising from Higgs-quasiparticle anharmonic coupling. The Higgs interference and anharmonicity control the decoherence of driven superconductivity and may enable applications in quantum memory and entanglement.
title Discovery of an Unconventional Quantum Echo by Interference of Higgs Coherence
topic Strongly Correlated Electrons
Superconductivity
Quantum Physics
url https://arxiv.org/abs/2312.10912