State Key Laboratory of Optoelectronic Materials and Technologies, School of Physics, Sun Yat-sen University, Guangzhou 510275, China.
School of Electronics and Information Technology, Sun Yat-sen University, Guangzhou 510006, China.
Phys Rev Lett. 2023 Apr 7;130(14):143601. doi: 10.1103/PhysRevLett.130.143601.
The single-exciton strong coupling with the localized plasmon mode (LPM) at room temperature is highly desirable for exploiting quantum technology. However, its realization has been a very low probability event due to the harsh critical conditions, severely compromising its application. Here, we present a highly efficient approach for achieving such a strong coupling by reducing the critical interaction strength at the exceptional point based upon the damping inhibition and matching of the coupled system, instead of enhancing the coupling strength to overcome the system's large damping. Experimentally, we compress the LPM's damping linewidth from about 45 nm to about 14 nm using a leaky Fabry-Perot cavity, a good match to the excitonic linewidth of about 10 nm. This method dramatically relaxes the harsh requirement in mode volume by more than an order of magnitude and allows a maximum direction angle of the exciton dipole relative to the mode field of up to around 71.9°, significantly improving the success rate of achieving the single-exciton strong coupling with LPMs from about 1% to about 80%.
在室温下实现单激子与局域等离子体模式(LPM)的强耦合对于开发量子技术是非常理想的。然而,由于苛刻的临界条件,其实现的概率非常低,严重限制了其应用。在这里,我们提出了一种通过在异常点处基于阻尼抑制和耦合系统的匹配来降低临界相互作用强度,从而实现这种强耦合的高效方法,而不是增强耦合强度以克服系统的大阻尼。在实验中,我们使用泄漏 Fabry-Perot 腔将 LPM 的阻尼线宽从约 45nm 压缩到约 14nm,与约 10nm 的激子线宽很好地匹配。这种方法极大地放宽了模式体积的苛刻要求,超过一个数量级,并允许激子偶极子相对于模式场的最大方向角高达约 71.9°,显著提高了实现单激子与 LPM 强耦合的成功率,从约 1%提高到约 80%。