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Ultra-high modulation depth exceeding 2,400% in optically controlled topological surface plasmons.


ABSTRACT: Modulating light via coherent charge oscillations in solids is the subject of intense research topics in opto-plasmonics. Although a variety of methods are proposed to increase such modulation efficiency, one central challenge is to achieve a high modulation depth (defined by a ratio of extinction with/without light) under small photon-flux injection, which becomes a fundamental trade-off issue both in metals and semiconductors. Here, by fabricating simple micro-ribbon arrays of topological insulator Bi2Se3, we report an unprecedentedly large modulation depth of 2,400% at 1.5 THz with very low optical fluence of 45 ?J cm(-2). This was possible, first because the extinction spectrum is nearly zero due to the Fano-like plasmon-phonon-destructive interference, thereby contributing an extremely small denominator to the extinction ratio. Second, the numerator of the extinction ratio is markedly increased due to the photoinduced formation of massive two-dimensional electron gas below the topological surface states, which is another contributor to the ultra-high modulation depth.

SUBMITTER: Sim S 

PROVIDER: S-EPMC4640142 | biostudies-literature | 2015

REPOSITORIES: biostudies-literature

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Ultra-high modulation depth exceeding 2,400% in optically controlled topological surface plasmons.

Sim Sangwan S   Jang Houk H   Koirala Nikesh N   Brahlek Matthew M   Moon Jisoo J   Sung Ji Ho JH   Park Jun J   Cha Soonyoung S   Oh Seongshik S   Jo Moon-Ho MH   Ahn Jong-Hyun JH   Choi Hyunyong H  

Nature communications 20151030


Modulating light via coherent charge oscillations in solids is the subject of intense research topics in opto-plasmonics. Although a variety of methods are proposed to increase such modulation efficiency, one central challenge is to achieve a high modulation depth (defined by a ratio of extinction with/without light) under small photon-flux injection, which becomes a fundamental trade-off issue both in metals and semiconductors. Here, by fabricating simple micro-ribbon arrays of topological insu  ...[more]

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