论文标题
具有最大效率的自旋系统和量子热机的任意温度和量子热机的储层工程
Reservoir engineering with arbitrary temperatures for spin systems and quantum thermal machine with maximum efficiency
论文作者
论文摘要
摘要储层工程是量子信息科学和量子热力学的重要工具,因为它允许准备和/或保护单一或多部分系统的特殊量子状态,或者研究热力学的基本问题,作为量子热机器及其效率。在这里,我们对单个自旋系统的任意(有效)负温度(有效)和阳性温度的工程储层采用了这项技术。为此,我们首先要设计量子系统(碳核自旋)之间的适当相互作用,以使其与费米子的储层相互作用,在我们的情况下,大量充当旋转浴的氢核自旋。这种碳氢结构存在于多晶的阿甘坦中,该碳晶烷在我们的实验设置中使用。所需的相互作用工程是通过使用核磁共振(NMR)应用特定的射频脉冲序列来实现的,而浴缸的温度可以通过适当制备初始氢核自旋状态来控制,这是预测的,与实验数据达成了很好的一致性。作为应用程序,我们实施了单个量子量子热机,该量子量子机在有效的负温度下在单个储层上运行,其效率始终为100%,而与量子系统上执行的单一转换无关,只要它改变量子状态。
Abstract Reservoir engineering is an important tool for quantum information science and quantum thermodynamics since it allows for preparing and/or protecting special quantum states of single or multipartite systems or to investigate fundamental questions of the thermodynamics as quantum thermal machines and their efficiencies. Here we employ this technique to engineer reservoirs with arbitrary (effective) negative and positive temperatures for a single spin system. To this end, we firstly engineer an appropriate interaction between a qubit system, a carbon nuclear spin, to a fermionic reservoir, in our case a large number of hydrogen nuclear spins that acts as the spins bath. This carbon-hydrogen structure is present in a polycrystalline adamantane, which was used in our experimental setup. The required interaction engineering is achieved by applying a specific sequence of radio-frequency pulses using Nuclear Magnetic Resonance (NMR), while the temperature of the bath can be controlled by appropriate preparation of the initial hydrogen nuclear spin state, being the predicted results in very good agreement with the experimental data. As an application we implemented a single qubit quantum thermal machine which operates at a single reservoir at effective negative temperature whose efficiency is always 100%, independent of the unitary transformation performed on the qubit system, as long as it changes the qubit state.