Zhao Le-Yi, Wang Hai, Liu Tian-Yu, Li Fang-Fei, Zhou Qiang, Wang Hai-Yu
Synergetic Extreme Condition High-Pressure Science Center, State Key Laboratory of Superhard Materials, College of Physics, Jilin University, Changchun 130012, China.
State Key Laboratory of Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, 2699 Qianjin Street, Changchun 130012, China.
Nanophotonics. 2023 Jan 24;12(4):753-760. doi: 10.1515/nanoph-2022-0705. eCollection 2023 Feb.
Most of the previous TMDC-photon coupling devices were mainly based on A exciton due to its high oscillator strength and large exciton binding energy. Less effort has been focused on the modulation of the emission of B exciton and Rydberg states in TMDCs, especially in monolayer WS. Here, we demonstrate that the photoluminescence (PL) emission of WS-microcavity coupling devices can be tailored in a broad visible wavelength range (490 nm-720 nm). In contrast to the intrinsic PL emission of monolayer WS, 25-fold enhanced B exciton emission and significant PL emission from the 2s Rydberg state can be observed. From the transient absorption (TA) measurements, the strongly coupled hybrid states based on B exciton can be remarkably fingerprinted. Furthermore, the strongly enhanced PL emission from the coupled B exciton has been demonstrated due to the strongly increased lower polariton (LP) state population and the internal conversion pathway being blocked in the strong coupling regime. Besides, the remarkable PL emission from the 2s Rydberg state is also revealed and confirmed by the additional ground state bleaching signal in TA spectra. These physical mechanisms about tailoring the PL emission in low dimensional TMDCs can provide significant references for constructing highly efficient optoelectronic devices.
先前的大多数TMDC-光子耦合器件主要基于A激子,这是由于其具有高振子强度和大激子结合能。较少的工作集中在调控TMDCs中B激子和里德堡态的发射,特别是在单层WS中。在此,我们证明了WS-微腔耦合器件的光致发光(PL)发射可以在较宽的可见波长范围(490 nm - 720 nm)内进行调控。与单层WS的本征PL发射相比,可以观察到B激子发射增强了25倍以及来自2s里德堡态的显著PL发射。通过瞬态吸收(TA)测量,可以清晰地分辨出基于B激子的强耦合混合态。此外,由于在强耦合 regime 中较低极化子(LP)态的数量大幅增加以及内部转换途径被阻断,已证明耦合B激子的PL发射得到了显著增强。此外,TA光谱中的额外基态漂白信号也揭示并证实了来自2s里德堡态的显著PL发射。这些关于在低维TMDCs中调控PL发射的物理机制可为构建高效光电器件提供重要参考。