Zhu Shicheng, Su Lin-Lin, Ren Jun
Opt Express. 2023 Aug 14;31(17):28575-28585. doi: 10.1364/OE.498569.
This work demonstrates the efficient tuning of incoherent and coherent coupling between emitters embedded in an epsilon-near-zero (ENZ) waveguide coated with a multilayer graphene. As a result, a tunable two-qubit quantum phase gate based on the ENZ waveguide is realized at the cutoff frequency. Furthermore, due to the vanishingly small permittivity of the ENZ waveguide, all incoherent coupling between any two identical emitters located in the central area of the slit approaches a maximum, enabling near-ideal bipartite and multipartite entanglement. The coherent coupling between emitters is much larger at an operating frequency far from the ENZ resonance frequency than at the cutoff frequency, and the coherent coupling and resulting energy transfer efficiency can also be effectively tuned by the Fermi level of graphene. These results demonstrate an efficiently tunable electro-optical platform for quantum devices.
这项工作展示了对嵌入涂覆有多层石墨烯的近零介电常数(ENZ)波导中的发射器之间非相干和相干耦合的有效调控。结果,基于ENZ波导的可调谐双量子比特量子相位门在截止频率处得以实现。此外,由于ENZ波导的介电常数极小,位于狭缝中心区域的任意两个相同发射器之间的所有非相干耦合接近最大值,从而实现近乎理想的二分和多分量纠缠。在远离ENZ共振频率的工作频率下,发射器之间的相干耦合比在截止频率时大得多,并且相干耦合以及由此产生的能量转移效率也可以通过石墨烯的费米能级进行有效调控。这些结果展示了一种用于量子器件的高效可调谐电光平台。