O'Brien Christopher, Lauk Nikolai, Blum Susanne, Morigi Giovanna, Fleischhauer Michael
Fachbereich Physik und Forschungszentrum OPTIMAS, Technische Universität Kaiserslautern, D-67663 Kaiserslautern, Germany.
Theoretische Physik, Universität des Saarlandes, D-66123 Saarbrücken, Germany.
Phys Rev Lett. 2014 Aug 8;113(6):063603. doi: 10.1103/PhysRevLett.113.063603.
We propose a scheme to couple short single photon pulses to superconducting qubits. An optical photon is first absorbed into an inhomogeneously broadened rare-earth doped crystal using controlled reversible inhomogeneous broadening. The optical excitation is then mapped into a spin state using a series of π pulses and subsequently transferred to a superconducting qubit via a microwave cavity. To overcome the intrinsic and engineered inhomogeneous broadening of the optical and spin transitions in rare-earth doped crystals, we make use of a special transfer protocol using staggered π pulses. We predict total transfer efficiencies on the order of 90%.
我们提出了一种将短单光子脉冲与超导量子比特耦合的方案。首先,利用可控可逆非均匀展宽将一个光学光子吸收到非均匀展宽的稀土掺杂晶体中。然后,通过一系列π脉冲将光激发映射到自旋态,随后通过微波腔将其转移到超导量子比特。为了克服稀土掺杂晶体中光学和自旋跃迁的固有和人为非均匀展宽,我们利用了一种使用交错π脉冲的特殊转移协议。我们预测总转移效率约为90%。