论文标题
在过渡频率调制下量子的量子性和加速度极限
Quantumness and speedup limit of a qubit under transition frequency modulation
论文作者
论文摘要
控制和维护开放量子系统沿其进化的量子特性对于基本目标和技术目标都是必不可少的。我们评估嵌入在漏水腔中的频率调节量子的能力,以增强其动力量子特征。量子跃迁频率是通过外部驾驶场调节的正弦频率。我们表明,正确优化的量子证人有效地标识了由于频率调制而导致的量子相干保护,而标准量子证人失败了。我们还通过正确操纵驾驶场的调制参数来找到量子量的演变加速。重要的是,通过引入新的功绩RG图,我们发现量子速度限制时间(QSLT)和非马克维亚性之间的关系取决于系统初始状态,这概括了这两个动态特征之间的先前连接。因此,频率调制的量子模型表现出具有潜在利用率的浓度利用率,以反逆转。
Controlling and maintaining quantum properties of an open quantum system along its evolution is essential for both fundamental and technological aims. We assess the capability of a frequency-modulated qubit embedded in a leaky cavity to exhibit enhancement of its dynamical quantum features. The qubit transition frequency is sinusoidally modulated by an external driving field. We show that a properly optimized quantum witness effectively identifies quantum coherence protection due to frequency modulation while a standard quantum witness fails. We also find an evolution speedup of the qubit through proper manipulation of the modulation parameters of the driving field. Importantly, by introducing a new figure of merit Rg, we discover that the relation between Quantum Speed Limit Time (QSLT) and non-Markovianity depends on the system initial state, which generalizes previous connections between these two dynamical features. The frequency-modulated qubit model thus manifests insightful dynamical properties with potential utilization against decoherence.