Interdisciplinary Center for Quantum Information, State Key Laboratory of Modern Optical Instrumentation, and Zhejiang Province Key Laboratory of Quantum Technology and Device, Department of Physics, Zhejiang University, Hangzhou 310027, China.
Institute of Physics, Chinese Academy of Sciences, Beijing 100190, China.
Phys Rev Lett. 2020 Jan 10;124(1):013601. doi: 10.1103/PhysRevLett.124.013601.
Superradiance and subradiance concerning enhanced and inhibited collective radiation of an ensemble of atoms have been a central topic in quantum optics. However, precise generation and control of these states remain challenging. Here we deterministically generate up to 10-qubit superradiant and 8-qubit subradiant states, each containing a single excitation, in a superconducting quantum circuit with multiple qubits interconnected by a cavity resonator. The sqrt[N]-scaling enhancement of the coupling strength between the superradiant states and the cavity is validated. By applying an appropriate phase gate on each qubit, we are able to switch the single collective excitation between superradiant and subradiant states. While the subradiant states containing a single excitation are forbidden from emitting photons, we demonstrate that they can still absorb photons from the resonator. However, for an even number of qubits, a singlet state with half of the qubits being excited can neither emit nor absorb photons, which is verified with 4 qubits. This study is a step forward in coherent control of collective radiation and has promising applications in quantum information processing.
超辐射和亚辐射,涉及到原子集合体的增强和抑制的集体辐射,一直是量子光学的核心课题。然而,这些状态的精确产生和控制仍然具有挑战性。在这里,我们在一个超导量子电路中,通过一个腔谐振器将多个量子比特相互连接,确定性地产生了多达 10 量子比特的超辐射态和 8 量子比特的亚辐射态,每个态都包含一个激发。我们验证了超辐射态和腔之间的耦合强度的 sqrt[N]增强。通过在每个量子比特上施加适当的相位门,我们能够在超辐射态和亚辐射态之间切换单个集体激发。虽然包含单个激发的亚辐射态被禁止发射光子,但我们证明它们仍然可以从谐振器吸收光子。然而,对于偶数个量子比特,一个具有一半量子比特被激发的单态既不能发射也不能吸收光子,这在 4 个量子比特的情况下得到了验证。这项研究是在集体辐射的相干控制方面向前迈进了一步,在量子信息处理中有很有前途的应用。