Exact Fredholm determinant representation for current FCS in dephasing tight-binding chain yields diffusive scaling in long-time cumulants.
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A carbon nanotube microtoroid platform with Tomonaga-Luttinger liquid protection achieves chiral spin-momentum locking for nonreciprocal spin-photon interfaces with cooperativities above 100 and chiral contrast over 20 dB.
Different unravelings of open quantum systems cannot be distinguished by any protocol without prior knowledge of the measurement scheme, since access to unraveling-dependent nonlinear statistics would violate relativistic causality.
Fractional linear conformal maps unify unitary, non-unitary linear, and non-linear discrete-time dynamics for qubit pure states and are characterized using the Leggett-Garg inequality with NSIT and AoT conditions.
citing papers explorer
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Exact Current Fluctuations in a Tight-Binding Chain with Dephasing Noise
Exact Fredholm determinant representation for current FCS in dephasing tight-binding chain yields diffusive scaling in long-time cumulants.
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A Universal Topological Platform for Nonreciprocal Spin-Photon Interface in Solid-State Quantum Networks
A carbon nanotube microtoroid platform with Tomonaga-Luttinger liquid protection achieves chiral spin-momentum locking for nonreciprocal spin-photon interfaces with cooperativities above 100 and chiral contrast over 20 dB.
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Theoretical Limits of Protocols for Distinguishing Different Unravelings
Different unravelings of open quantum systems cannot be distinguished by any protocol without prior knowledge of the measurement scheme, since access to unraveling-dependent nonlinear statistics would violate relativistic causality.
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Fractional Conformal Map, Qubit Dynamics and the Leggett-Garg Inequality
Fractional linear conformal maps unify unitary, non-unitary linear, and non-linear discrete-time dynamics for qubit pure states and are characterized using the Leggett-Garg inequality with NSIT and AoT conditions.