论文标题
黑暗状态的实验量子分解控制
Experimental quantum decoherence control by dark states of the environment
论文作者
论文摘要
量子系统与环境的相干相互作用通常会诱导量子反应。但是,值得注意的是,在某些配置中,可以同时向工程师探索一致的系统 - 环境耦合,从而消除了消除熔融的特定环境。在这里,我们报告了这种方案的实验证明,以抑制量子反应本身来抑制量子变质。该协议基于对环境的间接控制,这是通过在系统应保护之前与环境相互作用的量子探针进行的量子测量。不需要对环境的直接操纵来抑制破裂。在我们的原则实验中,我们证明了对一个偶联的单个量子轴的保护。我们使用线性光学和单个光子实现所需的量子电路,这使我们能够在实验中保持非常高的控制和灵活性。我们的结果清楚地证实了该协议所实现的抑制作用,并为其应用于其他物理平台的应用铺平了道路。
Coherent interaction of a quantum system with environment usually induces quantum decoherence. However, remarkably, in certain configurations the coherent system-environment coupling can be simultaneously explored to engineer a specific dark state of the environment that eliminates the decoherence. Here we report on experimental demonstration of such protocol for suppression of quantum decoherence by quantum decoherence itself. The protocol is based on indirect control of the environment via quantum measurements on quantum probes interacting with the environment prior to the system that should be protected. No direct manipulation with the environment is required to suppress the decoherence. In our proof-of-principle experiment, we demonstrate protection of a single qubit coupled to another single qubit. We implement the required quantum circuits with linear optics and single photons, which allows us to maintain very high degree of control and flexibility in the experiment. Our results clearly confirm the decoherence suppression achieved by the protocol and pave the way to its application to other physical platforms.