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Vincenzo Petruzzelli

Researcher at Instituto Politécnico Nacional

Publications -  229
Citations -  2448

Vincenzo Petruzzelli is an academic researcher from Instituto Politécnico Nacional. The author has contributed to research in topics: Photonic crystal & Beam propagation method. The author has an hindex of 23, co-authored 224 publications receiving 2202 citations. Previous affiliations of Vincenzo Petruzzelli include Polytechnic University of Bari.

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Evidence for non-exponential elastic proton-proton differential cross-section at low |t| and √ s = 8 TeV by TOTEM

G. Antchev, +93 more
- 01 Oct 2015 - 
TL;DR: The TOTEM experiment has made a precise measurement of the elastic proton-proton differential cross-section at the center-of-mass energy s = 8 TeV based on a high-statistics data sample obtained with the β ⁎ = 90 m optics.
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Graphene-based absorber exploiting guided mode resonances in one-dimensional gratings

TL;DR: A one-dimensional dielectric grating, based on a simple geometry, is proposed and investigated to enhance light absorption in a monolayer graphene exploiting guided mode resonances and points to a way to realize innovative, scalable and easy-to-fabricate graphene-based optical absorbers.
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Measurement of elastic pp scattering at √(s) = 8 TeV in the Coulomb-nuclear interference region: determination of the ρ-parameter and the total cross-section

G. Antchev, +97 more
TL;DR: In this paper, the TOTEM experiment at the CERN LHC has measured elastic proton-proton scattering at the centre-of-mass energy and four-momentum transfers squared.
Journal ArticleDOI

Measurement of Elastic pp Scattering at $\sqrt{s}$ = 8 TeV in the Coulomb-Nuclear Interference Region - Determination of the $\rho$-Parameter and the Total Cross-Section

TL;DR: In this article, the TOTEM experiment at the CERN LHC has measured elastic proton-proton scattering at the centre-of-mass energy 8 TeV and four-momentum transfers squared, |t|, from 6 x $10^{-4}$ GeV$^2$ to 0.2 GeV
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Graphene-based perfect optical absorbers harnessing guided mode resonances

TL;DR: G graphene-based optical absorbers that exploit guided mode resonances attaining theoretically perfect absorption over a bandwidth of few nanometers (over the visible and near-infrared ranges) with a 40-fold increase of the monolayer graphene absorption are investigated.