Graphene-Based Cylindrical Pillar Gratings for Polarization-Insensitive Optical Absorbers
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Massimo De Vittorio | Maria Antonietta Vincenti | Domenico de Ceglia | Giuseppe Bianco | Antonella D'Orazio | Muhammad Fayyaz Kashif | Stomeo Tiziana | Scalora Michael | Bruno Giovanni | Marco Grande | G. Bruno | M. de Vittorio | G. Bianco | M. Grande | A. D’orazio | M. Vincenti | M. Scalora | T. Stomeo | D. de Ceglia | M. Kashif
[1] M De Vittorio,et al. Graphene-based perfect optical absorbers harnessing guided mode resonances. , 2015, Optics express.
[2] Michael Scalora,et al. Tuning infrared guided-mode resonances with graphene , 2016 .
[3] Wanhua Zheng,et al. Wavelength-tunable perfect absorber based on guided-mode resonances. , 2016, Applied optics.
[4] Zhuomin M. Zhang,et al. Resonance enhanced absorption in a graphene monolayer using deep metal gratings , 2015 .
[5] M. Grande,et al. Nonlinear control of absorption in one-dimensional photonic crystal with graphene-based defect. , 2013, Optics letters.
[6] Haixin Chang,et al. Graphene and graphene-like two-dimensional materials in photodetection: mechanisms and methodology. , 2014, ACS nano.
[7] Wei Xu,et al. Monolayer-graphene-based broadband and wide-angle perfect absorption structures in the near infrared , 2018, Scientific Reports.
[8] Wenjuan Zhu,et al. Photocurrent in graphene harnessed by tunable intrinsic plasmons , 2013, Nature Communications.
[9] B. Jia,et al. A 90-nm-thick graphene metamaterial for strong and extremely broadband absorption of unpolarized light , 2019, Nature Photonics.
[10] M De Vittorio,et al. Graphene-based absorber exploiting guided mode resonances in one-dimensional gratings. , 2014, Optics express.
[11] Z. Zhu,et al. Experimental Demonstration of Total Absorption over 99% in the Near Infrared for Monolayer‐Graphene‐Based Subwavelength Structures , 2016 .
[12] Sabine Szunerits,et al. Graphene-based biosensors , 2018, Interface Focus.
[13] Jun Wu. Ultra-narrow perfect graphene absorber based on critical coupling , 2019, Optics Communications.
[14] Qianfan Xu,et al. Excitation of plasmonic waves in graphene by guided-mode resonances. , 2012, ACS nano.
[15] Xiaohang Wu,et al. Tailoring total absorption in a graphene monolayer covered subwavelength multilayer dielectric grating structure at near-infrared frequencies , 2017 .
[16] E. Johnston-Halperin,et al. Progress, challenges, and opportunities in two-dimensional materials beyond graphene. , 2013, ACS nano.
[17] Andre K. Geim,et al. Electric Field Effect in Atomically Thin Carbon Films , 2004, Science.
[18] K. V. Sreekanth,et al. A multiband perfect absorber based on hyperbolic metamaterials , 2016, Scientific Reports.
[19] Willie J Padilla,et al. Perfect metamaterial absorber. , 2008, Physical review letters.
[20] Stefano Borini,et al. Optical constants of graphene layers in the visible range , 2009 .
[21] Shuangchun Wen,et al. Critical coupling with graphene-based hyperbolic metamaterials , 2014, Scientific Reports.
[22] G. Bruno,et al. Fabrication of doubly resonant plasmonic nanopatch arrays on graphene , 2013 .
[23] L. Tetard,et al. Dynamically tunable extraordinary light absorption in monolayer graphene , 2017 .
[24] G. Veronis,et al. Nanostructure for near total light absorption in a monolayer of graphene in the visible , 2018, Journal of the Optical Society of America B.
[25] Jicheng Wang,et al. Sensitive perfect absorber with monolayer graphene-based multi-layer dielectric grating structure , 2018 .