Light fields can induce controllable time-dependent temperatures in electrodes to generate and detect charge-neutral heat pulses in mesoscopic conductors.
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Replica Keldysh analysis shows monitored 1D free fermions exhibit area-law entanglement beyond an exponentially large scale ln(l_φ,*) ~ J/[γ cos(φ)], with no genuine measurement- or unraveling-induced entanglement transitions.
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Generation of heat pulses in mesoscopic conductors using light fields
Light fields can induce controllable time-dependent temperatures in electrodes to generate and detect charge-neutral heat pulses in mesoscopic conductors.
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Absence of measurement- and unraveling-induced entanglement transitions in continuously monitored one-dimensional free fermions
Replica Keldysh analysis shows monitored 1D free fermions exhibit area-law entanglement beyond an exponentially large scale ln(l_φ,*) ~ J/[γ cos(φ)], with no genuine measurement- or unraveling-induced entanglement transitions.