Aifer Maxwell, Thingna Juzar, Deffner Sebastian
Department of Physics, <a href="https://ror.org/02qskvh78">University of Maryland</a>, Baltimore County, Baltimore, Maryland 21250, USA.
Department of Physics and Applied Physics, <a href="https://ror.org/03hamhx47">University of Massachusetts</a>, Lowell, Massachusetts 01854, USA.
Phys Rev Lett. 2024 Jul 12;133(2):020401. doi: 10.1103/PhysRevLett.133.020401.
Quantum synchronization is crucial for understanding complex dynamics and holds potential applications in quantum computing and communication. Therefore, assessing the thermodynamic resources required for finite-time synchronization in continuous-variable systems is a critical challenge. In the present work, we find these resources to be extensive for large systems. We also bound the speed of quantum and classical synchronization in coupled damped oscillators with non-Hermitian anti-PT-symmetric interactions, and show that the speed of synchronization is limited by the interaction strength relative to the damping. Compared to the classical limit, we find that quantum synchronization is slowed by the noncommutativity of the Hermitian and anti-Hermitian terms. Our general results could be tested experimentally, and we suggest an implementation in photonic systems.
量子同步对于理解复杂动力学至关重要,并且在量子计算和通信中具有潜在应用。因此,评估连续变量系统中有限时间同步所需的热力学资源是一项关键挑战。在本工作中,我们发现对于大型系统,这些资源是广泛的。我们还限制了具有非厄米反PT对称相互作用的耦合阻尼振荡器中量子和经典同步的速度,并表明同步速度受到相对于阻尼的相互作用强度的限制。与经典极限相比,我们发现量子同步因厄米和反厄米项的非对易性而减慢。我们这些一般性结果可以通过实验进行检验,并且我们建议在光子系统中实现。