Chen Yuan, Zhang Yan-Lei, Shen Zhen, Zou Chang-Ling, Guo Guang-Can, Dong Chun-Hua
CAS Key Laboratory of Quantum Information, University of Science and Technology of China, Hefei 230026, People's Republic of China and CAS Center For Excellence in Quantum Information and Quantum Physics, University of Science and Technology of China, Hefei, Anhui 230026, People's Republic of China.
Phys Rev Lett. 2021 Mar 26;126(12):123603. doi: 10.1103/PhysRevLett.126.123603.
Synthetic gauge fields have recently emerged, arising in the context of quantum simulations, topological matter, and the protected transportation of excitations against defects. For example, an ultracold atom experiences a light-induced effective magnetic field when tunneling in an optical lattice, and offering a platform to simulate the quantum Hall effect and topological insulators. Similarly, the magnetic field associated with photon transport between sites has been demonstrated in a coupled resonator array. Here, we report the first experimental demonstration of a synthetic gauge field in the virtual lattices of bosonic modes in a single optomechanical resonator. By employing degenerate clockwise and counterclockwise optical modes and a mechanical mode, a controllable synthetic gauge field is realized by tuning the phase of the driving lasers. The nonreciprocal conversion between the three modes is realized for different synthetic magnetic fluxes. As a proof-of-principle demonstration, we also show the dynamics of the system under a fast-varying synthetic gauge field, and demonstrate synthetic electric field. Our demonstration not only provides a versatile and controllable platform for studying synthetic gauge fields in high dimensions but also enables an exploration of ultrafast gauge field tuning with a large dynamic range, which is restricted for a magnetic field.
合成规范场最近出现了,它出现在量子模拟、拓扑物质以及激发态对缺陷的受保护输运等背景中。例如,超冷原子在光学晶格中隧穿时会经历光诱导有效磁场,这为模拟量子霍尔效应和拓扑绝缘体提供了一个平台。类似地,在耦合谐振器阵列中已经证明了与不同位点之间光子输运相关的磁场。在此,我们报告了在单个光机械谐振器中玻色子模式的虚拟晶格中合成规范场的首次实验演示。通过采用简并的顺时针和逆时针光学模式以及一个机械模式,通过调节驱动激光的相位实现了可控的合成规范场。对于不同的合成磁通量,实现了三种模式之间的非互易转换。作为原理验证演示,我们还展示了系统在快速变化的合成规范场下的动力学,并演示了合成电场。我们的演示不仅为研究高维合成规范场提供了一个通用且可控的平台,还能够探索具有大动态范围的超快规范场调谐,而这对于磁场来说是受限的。