论文标题

相干产生增强的低温量子温度计

Low-temperature quantum thermometry boosted by coherence generation

论文作者

Ullah, Asghar, Naseem, M. Tahir, Müstecaplıoğlu, Özgür E.

论文摘要

低温的精确测量对于对物理过程和技术应用的基本了解都很重要。在这项工作中,我们提出了一种低温测量的方法,该方法通过在温度计探针中产生量子相干性来改善热范围和灵敏度。通常,在温度测量中,探针进行热元,并测量样品。但是,我们使用两级量子系统或Qubit作为探测器,并通过引入一组Ancilla Qubits作为接口,以防止直接探测样品。我们使用全局主方程描述了探针的开放系统动力学,并证明,尽管Ancilla-probe系统用样品热拟光,但由于非局部耗散通道,探针\ textIt {pens {pen eNE}将其演变为非热稳态。这种稳态的种群和连贯性取决于样品温度,从而可以进行精确和大范围的低温估计。我们使用量子Fisher信息表征了该方法的温度性性能,并表明量子Fisher信息可以在不同的低温下显示出多个和更高的峰,并且量子相干性的增加和Ancilla Qubits的数量。我们的分析表明,使用的非热量量子温度计探针具有由温度依赖性量子相干性产生的,由热样品和探测量置量的多个量子界面产生,可以增强温度估计的敏感性并扩大可测量的低温范围。

The precise measurement of low temperatures is significant for both the fundamental understanding of physical processes and technological applications. In this work, we present a method for low-temperature measurement that improves thermal range and sensitivity by generating quantum coherence in a thermometer probe. Typically, in temperature measurements, the probes thermalize with the sample being measured. However, we use a two-level quantum system, or qubit, as our probe and prevent direct probe access to the sample by introducing a set of ancilla qubits as an interface. We describe the open system dynamics of the probe using a global master equation and demonstrate that while the ancilla-probe system thermalizes with the sample, the probe \textit{per se} evolves into a nonthermal steady state due to nonlocal dissipation channels. The populations and coherences of this steady state depend on the sample temperature, allowing for precise and wide-range low-temperature estimation. We characterize the thermometric performance of the method using quantum Fisher information and show that the quantum Fisher information can exhibit multiple and higher peaks at different low temperatures with increasing quantum coherence and the number of ancilla qubits. Our analysis reveals that the proposed approach, using a nonthermal qubit thermometer probe with temperature-dependent quantum coherence generated by a multiple qubit interface between a thermal sample and the probe qubit, can enhance the sensitivity of temperature estimation and broaden the measurable low-temperature range.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源