论文标题
控制波导QED中局部多个激发的暗状态
Control of Localized Multiple Excitation Dark States in Waveguide QED
论文作者
论文摘要
耦合到一维储层的两级量子发射器的有限链中的次级激发态是用于出色的光子存储和受控光子操作的资源。通常,存储多种激发的状态表现出典型的相关性,因此具有反对称波函数的特征,这使得它们很难在实验中进行准备。在这里,我们确定了一类准定位的黑色状态,最多一半的量子位激发了量子位,这些量子位于引导模式波长的整数倍数上。它们可以进行高保真的准备,并在最新的设置中读出最低侵入性。特别是,我们建议使用与芯片上的超导式晶体点结合的共面波引物实现实验实现。由于自由空间和内在损失是最小的,因此即使对于低数量的量子位,几乎可以实现几乎完美的黑暗状态,从而可以以高保真度实现快速的准备和操纵。
Subradiant excited states in finite chains of two-level quantum emitters coupled to a one-dimensional reservoir are a resource for superior photon storage and controlled photon manipulation. Typically, states storing multiple excitations exhibit fermionic correlations and are thus characterized by an anti-symmetric wavefunction, which makes them hard to prepare experimentally. Here we identify a class of quasi-localized dark states with up to half of the qubits excited, which appear for lattice constants that are an integer multiple of the guided-mode wavelength. They allow for a high-fidelity preparation and minimally invasive read out in state-of-the-art setups. In particular, we suggest an experimental implementation using a coplanar wave-guide coupled to superconducting transmon qubits on a chip. As free space and intrinsic losses are minimal, virtually perfect dark states can be achieved even for a low number of qubits, enabling fast preparation and manipulation with high fidelity.