visual
visual

세미나

  • HOME
  • >
  • 소식
  • >
  • 세미나

2020 가을학기 광학분야 특별세미나

2020.11.10 08:21

admin 조회 수:9577

날짜 2020-11-12 16:00 
연사  
장소 E6-2 1323 

Title: Two-dimensional van der Waals Heterostructures for Next-generation Light Source

 

Speaker: (Department of Physics, Kyung Hee University) 교수님 (Young Duck Kim) 김영덕

 

Place: E6-2 1323

(Available seats are very limited.Please enroll your information in this link to get access:   https://forms.gle/rZv77u2dsptVMZuy6 )

 

Online address (zoom): https://kaist.zoom.us/j/93997220310

 

Date: 4pm, 11/12

 

Abstract

Two-dimensional (2D) van der Waals materials including graphene, hexagonal boron nitride (hBN) and transition metal dichalcogenides (TMDCs) such as MoS2 and WSe2 have great potential for exploring the exotic quantum behaviors and realization of advanced optoelectronics devices. Especially, ultrafast light emitter in nanoscale is a critical component in the development of the high bandwidth on-chip optical interconnects. However, previous technology faces the major challenges such as big footprint, high cost integration and difficulties of direct high speed electrical pumping. Here, I will talk the first electrically driven ultrafast graphene light emitter that exhibits the ultrafast light modulation up to ~ 10 GHz with broad spectral range (visible to near infrared). Atomically thin hBN encapsulation layers to graphene allow the stable and practical high performance even under the ambient condition as well as efficient direct electronic cooling via near-field coupling of hybrid plasmon-phonon polaritonic modes. Ultrafast and broadband graphene light emitter paves the way towards the realization of complete graphene-based ultrafast optical communications.  I will also present the near UV (~390nm) electroluminescence (EL) and broadband photodetection from hBN heterostructures. Near UV EL in hBN are attributed to the electric field induced artificial color centers, which are vacancy-related defects with an excitonic mode in the intrinsic band gap of hBN (> 6 eV). These results demonstrate the promise of hBN-based van der Waals heterostructures for light sources and optoelectronics in the near UV to the visible regime. 

 

주관: 라영식 교수

번호 날짜 연사 제목
공지 2025-09-01 12:00    2025년 가을학기 콜로키움
공지 2025-09-05 11:00    2025년 가을학기 물리학과 특별세미나 (광학/응집물리 분야)
566 2022-10-27 16:00    (광학분야 세미나) Cavity optomechanical systems for quantum transduction
565 2011-05-16 16:00    Photonics with surface plasmon polaritons
564 2016-05-17 11:00    The CERN Resonant WISP Search: Development, Results and Lesson-Learned
563 2013-09-09 16:00    Physics Colloquium : 2013 Fall
562 2018-04-06 10:00    Entanglement and thermalization in many-body systems: recent progress file
561 2015-09-15 16:00    Physics Colloquium : 2014 Fall file
560 2022-03-14 16:00    Quantitative phase imaging and artificial intelligence: label-free 3D imaging, classification, and inference
559 2023-04-27 16:00    (광학분야 세미나)On-chip spectrometers based on CMOS image sensors
558 2021-05-27 16:00    찾아가는 물리연구 현장(유럽 입자물리학연구소 소개) file
557 2016-03-11 13:30    Physics Seminar Serises : 2016 Spring file
556 2022-11-03 16:00    (광학분야 세미나) Single-photon emission from low-dimensional materials
555 2015-09-07 16:00    Physics Colloquium : 2015 Fall file
554 2025-03-28 11:00  명노준 교수 (조선대)  Quantum Transport in Strained-Engineered Graphene: Mesoscopic Perspective of Tunable Quantum Information Devices file
553 2025-05-15 16:00  노찬 박사(KAIST)  Generation of multimode Gaussian quantum states and their applications for quantum computing file
552 2022-04-11 16:00    Emergence of Statistical Mechanics in Quantum Systems
551 2022-04-04- 16:00    New paradigms in Quantum Field Theory
550 2022-05-09 16:00    Searching for new electronic properties in correlated material flatland
549 2022-05-23 16:00    Novel electronic transport in topological van der Waals magnets
548 2011-09-03 16:00    Physics Colloquium : 2011 Fall file
547 2022-10-13 16:00    (광학분야 세미나) Ultrafast Optics for Ultra-Precision Metrology and Realization of Flexible/Stretchable Laser-Induced-Graphene Electronics