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Volumn 91, Issue 8, 2015, Pages

Electrical plasmon detection in graphene waveguides

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EID: 84922439690     PISSN: 10980121     EISSN: 1550235X     Source Type: Journal    
DOI: 10.1103/PhysRevB.91.081402     Document Type: Article
Times cited : (22)

References (54)
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    • We have also solved the problem numerically with the full nonlocal relation (Equation presented), where (Equation presented) is the 2D Fourier transform of the electrostatic potential [35] (Equation presented), where (Equation presented) and (Equation presented). In the limit (Equation presented), (Equation presented), (Equation presented), and one recovers Eq. (4). No appreciable differences have been noticed for realistic parameters.
    • We have also solved the problem numerically with the full nonlocal relation (Equation presented), where (Equation presented) is the 2D Fourier transform of the electrostatic potential [35] (Equation presented), where (Equation presented) and (Equation presented). In the limit (Equation presented), (Equation presented), (Equation presented), and one recovers Eq. (4). No appreciable differences have been noticed for realistic parameters.
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    • See Supplemental Material at where we discuss the boundary conditions we used, detail the perturbative solution of the hydrodynamic equations, explain the calculation of the plasmon spectrum, and present analytical results for the rectified signal in simple cases.
    • See Supplemental Material at http://link.aps.org/supplemental/10.1103/PhysRevB.91.081402 where we discuss the boundary conditions we used, detail the perturbative solution of the hydrodynamic equations, explain the calculation of the plasmon spectrum, and present analytical results for the rectified signal in simple cases.


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