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005     20250730144012.0
024 7 _ |2 doi
|a 10.1038/nphoton.2014.109
024 7 _ |2 ISSN
|a 1749-4893
024 7 _ |2 ISSN
|a 1749-4885
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037 _ _ |a DESY-2014-02778
041 _ _ |a English
082 _ _ |a 530
100 1 _ |0 P:(DE-HGF)0
|a Tamagnone, Michele
|b 0
245 _ _ |a Fundamental limits and near-optimal design of graphene modulators and non-reciprocal devices
260 _ _ |a London [u.a.]
|b Macmillan Publishers Limited
|c 2014
336 7 _ |0 0
|2 EndNote
|a Journal Article
336 7 _ |2 DRIVER
|a article
336 7 _ |0 PUB:(DE-HGF)16
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|s 1433855623_27645
336 7 _ |2 BibTeX
|a ARTICLE
520 _ _ |a The potential of graphene for photonic applications was evidenced by recent demonstrations of modulators, polarizationrotators and isolators. These promising yet preliminary results raise crucial questions: what is the optimal performanceachievable by more complex designs and how can this optimum be achieved in practice? We answer by first demonstratingthat the relevant figures of merit for the devices above are subject to absolute theoretical upper bounds. Strikingly, theselimits are related only to the conductivity tensor of graphene; thus, we can provide essential roadmap information such asthe best possible device performance versus wavelength and graphene quality. Second, based on the theory developed,physical insight and detailed simulations, we demonstrate how structures closely approaching these fundamental limitscan be designed, demonstrating the possibility of significant improvement. These results are believed to be of paramountimportance for the design of modulators, rotators and isolators using graphene or other two-dimensional materials.
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700 1 _ |0 P:(DE-H253)PIP1017124
|a Fallahi, Arya
|b 1
700 1 _ |0 P:(DE-HGF)0
|a Mosig, Juan R.
|b 2
700 1 _ |0 P:(DE-HGF)0
|a Perruisseau-Carrier, Julien
|b 3
|e Corresponding Author
773 _ _ |0 PERI:(DE-600)2264673-5
|a 10.1038/nphoton.2014.109
|p 556 - 563
|t Nature photonics
|v 8
|x 1749-4893
|y 2014014
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914 1 _ |y 2014
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