Plasmon-exciton couplings in the MoS2/AuNP plasmonic hybrid structure

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作者
Hyuntae Kim
Jaeseung Im
Kiin Nam
Gang Hee Han
Jin Young Park
Sungjae Yoo
MohammadNavid Haddadnezhad
Sungho Park
Woongkyu Park
Jae Sung Ahn
Doojae Park
Mun Seok Jeong
Soobong Choi
机构
[1] Incheon National University,Department of Physics
[2] Sungkyunkwan University,Department of Chemistry
[3] Korea Photonics Technology Institute (KOPTI),Medical and Bio Photonics Research Center
[4] Hallym University,Department of Applied Optics and Physics
[5] Hanyang University,Department of Physics
[6] Hanyang University,Department of Energy Engineering
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摘要
The understanding and engineering of the plasmon-exciton coupling are necessary to control the innovative optoelectronic device platform. In this study, we investigated the intertwined mechanism of each plasmon-exciton couplings in monolayer molybdenum disulfide (MoS2) and plasmonic hybrid structure. The results of absorption, simulation, electrostatics, and emission spectra show that interaction between photoexcited carrier and exciton modes are successfully coupled by energy transfer and exciton recombination processes. Especially, neutral exciton, trion, and biexciton can be selectively enhanced by designing the plasmonic hybrid platform. All of these results imply that there is another degree of freedom to control the individual enhancement of each exciton mode in the development of nano optoelectronic devices.
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