Experimental Determination of Excitonic Dispersion Relation from Center-of-Mass Quantization Effect on Excitons in PbI_2 Thin Films(Condensed matter: electronic structure and electrical, magnetic, and optical properties)
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概要
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We have investigated the center-of-mass quantization effect on excitons in layered-compound PbI_2 ultra-thin films by precisely changing the layer thickness from 7 to 20 monolayers. Crystalline PbI_2 thin films that are fully oriented along the c-axis were prepared by a vacuum deposition method. We confirmed that the surface roughness of the prepared thin films corresponds to one monolayer owing to the van der Waals interaction along the c-axis peculiar to the layered compound, which is advantageous for the realization of the center-of-mass quantization effect. The optical spectra, such as absorption, transmittance, and reflectance clearly exhibit oscillatory structures originating from the quantized excitonic states with a quantum number of up to 15: the quantization energy amounts to 〜130meV. From the analysis of the systematic results of the center-of-mass quantization, we experimentally determined the excitonic dispersion relation of PbI_2, which is well explained by a tight-binding exciton model instead of a usually used effective-mass model.
- 社団法人日本物理学会の論文
- 2009-02-15
著者
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Ishihara Hajime
Department Of Physics And Electronics Graduate School Of Engineering Osaka Prefecture University:cre
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Nakayama Masaaki
Department Of Applied Physics Faculty Of Engineering Osaka City University
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Nakayama Masaaki
Department Of Applied Physics Graduate School Of Engineering Osaka City University
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Kim Daegwi
Department Of Physics Ajou University
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Oohata Goro
Department Of Applied Physics Graduate School Of Engineering Osaka City University:(present Office)d
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Ishihara Hajime
Department Of Biochemistry Tohoku University School Of Medicine
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YOKOTSUJI Yuta
Department of Applied Physics, Graduate School of Engineering, Osaka City University
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Yokotsuji Yuta
Department Of Applied Physics Graduate School Of Engineering Osaka City University
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Kim DaeGwi
Department of Applied Physics, Graduate School of Engineering, Osaka City University
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