Chinese Academy of Science Key Laboratory of Quantum Information, University of Science and Technology of China, Hefei, Anhui 230026, China.
Chinese Academy of Science Center for Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Hefei, Anhui 230026, China.
Nano Lett. 2023 May 24;23(10):4176-4182. doi: 10.1021/acs.nanolett.3c00036. Epub 2023 May 3.
We fabricate and characterize a hybrid quantum device that consists of five gate-defined double quantum dots (DQDs) and a high-impedance NbTiN transmission resonator. The controllable interactions between DQDs and the resonator are spectroscopically explored by measuring the microwave transmission through the resonator in the detuning parameter space. Utilizing the high tunability of the system parameters and the high cooperativity ( > 17.6) interaction between the qubit ensemble and the resonator, we tune the charge-photon coupling and observe the collective microwave response changing from linear to nonlinear. Our results present the maximum number of DQDs coupled to a resonator and manifest a potential platform for scaling up qubits and studying collective quantum effects in semiconductor-superconductor hybrid cavity quantum electrodynamics systems.
我们制作并表征了一种混合量子器件,它由五个栅极定义的双量子点 (DQD) 和一个高阻抗 NbTiN 传输谐振器组成。通过在失谐参数空间中测量微波通过谐振器的传输,光谱学地探索了 DQD 和谐振器之间的可控相互作用。利用系统参数的高可调性和量子位集与谐振器之间的高协同性(>17.6)相互作用,我们调整了电荷-光子耦合,并观察到从线性到非线性的集体微波响应变化。我们的结果展示了与谐振器耦合的最大数量的 DQD,并为扩展量子比特和研究半导体-超导混合腔量子电动力学系统中的集体量子效应提供了一个潜在的平台。