论文标题
使用虚拟Qubits简化多级热机的设计
Simplifying the design of multilevel thermal machines using virtual qubits
论文作者
论文摘要
量子热力学通常处理与大而复杂的环境相连的小量子机的动力学。虚拟量子位,碰撞模型和重置主方程已成为预测二维目标系统的定性行为的非常有用的工具。尽管已知所有可能的物理系统的简化模型参数在匹配的简化模型参数方面几乎没有成功,但无论实施如何,定性预测仍然允许量子机的一般设计。我们通过引入多个竞争性虚拟量子位来概括这些工具,以建模多维系统与更大且更复杂的机器结合使用。通过模拟具有三个维度的目标的完整物理动力学,我们发现了可以用作“拨号”的重置模型的一般属性,以正确预测现实设置中物理变化的定性特征,从而在几码中设计了自动量量子机。然后,我们提出了一个与多Qubit机器耦合的任意维系统的重置模型的一般分析解决方案。最后,我们展示了改进的三级激光器,作为我们结果的示例应用。
Quantum thermodynamics often deals with the dynamics of small quantum machines interfacing with a large and complex environment. Virtual qubits, collisional models and reset master equations have become highly useful tools for predicting the qualitative behaviour of two-dimensional target systems coupled to few-qubit machines and a thermal environment. While few successes in matching the simplified model parameters for all possible physical systems are known, the qualitative predictions still allow for a general design of quantum machines irrespective of the implementation. We generalise these tools by introducing multiple competing virtual qubits for modelling multi-dimensional systems coupled to larger and more complex machines. By simulating the full physical dynamics for targets with three dimensions, we uncover general properties of reset models that can be used as `dials' to correctly predict the qualitative features of physical changes in a realistic setup and thus design autonomous quantum machines beyond a few qubits. We then present a general analytic solution of the reset model for arbitrary-dimensional systems coupled to multi-qubit machines. Finally, we showcase an improved three-level laser as an exemplary application of our results.