[행사/세미나] [성균물리인 워크숍] 학부생 진로간담회_05학번 공수현 교수님
- 물리학과
- 조회수3037
- 2022-09-26
우리과 05학번 졸업생이신 고려대학교 물리학과 공수현 교수님을 모시고 학부생 진로간담회를 진행합니다.
관심있는 학부생들의 많은 참여 부탁합니다.
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1부: 2022. 09. 30(금) 오후 3시 ~ 4시: 간담회
2부: 2022. 09. 30(금) 오후 4시 ~ 5시 30분: 학술 세미나
제목: Valley pseudospin-dependent exciton-photon coupling in 2D semiconductors
연사: 공 수 현 교수님 (고려대학교 물리학과)
장소: 기초학문관 2층 51205호 강의실
초록: The emergence of transition metal dichalcogenides (TMD) layers has sparked significant research interest because of their outstanding optical property and optically assessable new internal degrees of freedom called valley pseudospins. Despite its strong exciton resonance strength, the interaction between light and a TMD layer is intrinsically weak due to the huge mismatch between wavelength and the layer thickness (400–1500 nm vs. <1 nm). It is generally believed that additional photonic structures such as external cavities are necessary to increase light-matter coupling in a TMD layer. However, these additional structures easily spoil valley pseudospin information making it difficult to exploit the full potential of TMD layers. Recently, the possibility of light guiding in 2D TMD layers without a cavity, like the surface plasmon polariton in 2D graphene, has been demonstrated. Because the light-guiding is attributed to the high permittivity of 2D TMD layers near the exciton resonance, this mode is called exciton polaritons. In this talk, experimental observation of the guided exciton polariton in multilayered WS2 will be discussed. By utilizing the near-field coupling method, we directly observed the anti-crossing behavior of exciton and photon dispersion curves, indicating exciton polariton dispersion. The dispersion of the guided polaritons can be easily tuned by controlling the thickness of the layer or the excitation power of the laser. More importantly, we found that the guided polariton mode can exhibit valley polarization under circularly polarized excitation. Using a resonant excitation, we also confirmed that the valley polarization of the guided polariton does not vary as a function of propagation distance, implying the possibility of valley transport using the polariton. These results pave the way for exploiting a valley pseudospin in integrated valleytronics devices using nanophotonics structures.