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Dive into the research topics where Luca Bergamini is active.

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Featured researches published by Luca Bergamini.


Light-Science & Applications | 2016

Antenna-assisted picosecond control of nanoscale phase transition in vanadium dioxide

Otto L. Muskens; Luca Bergamini; Yudong Wang; Jeffrey M. Gaskell; Nerea Zabala; C.H. de Groot; David W. Sheel; Javier Aizpurua

Nanoscale devices in which the interaction with light can be configured using external control signals hold great interest for next-generation optoelectronic circuits. Materials exhibiting a structural or electronic phase transition offer a large modulation contrast with multi-level optical switching and memory functionalities. In addition, plasmonic nanoantennas can provide an efficient enhancement mechanism for both the optically induced excitation and the readout of materials strategically positioned in their local environment. Here, we demonstrate picosecond all-optical switching of the local phase transition in plasmonic antenna-vanadium dioxide (VO2) hybrids, exploiting strong resonant field enhancement and selective optical pumping in plasmonic hotspots. Polarization- and wavelength-dependent pump–probe spectroscopy of multifrequency crossed antenna arrays shows that nanoscale optical switching in plasmonic hotspots does not affect neighboring antennas placed within 100 nm of the excited antennas. The antenna-assisted pumping mechanism is confirmed by numerical model calculations of the resonant, antenna-mediated local heating on a picosecond time scale. The hybrid, nanoscale excitation mechanism results in 20 times reduced switching energies and 5 times faster recovery times than a VO2 film without antennas, enabling fully reversible switching at over two million cycles per second and at local switching energies in the picojoule range. The hybrid solution of antennas and VO2 provides a conceptual framework to merge the field localization and phase-transition response, enabling precise, nanoscale optical memory functionalities.


Nano Letters | 2016

Anisotropic Nanoantenna-Based Magnetoplasmonic Crystals for Highly Enhanced and Tunable Magneto-Optical Activity

Nicolò Maccaferri; Luca Bergamini; Matteo Pancaldi; Mikolaj K. Schmidt; Mikko Kataja; Sebastiaan van Dijken; Nerea Zabala; Javier Aizpurua; P. Vavassori

We present a novel concept of a magnetically tunable plasmonic crystal based on the excitation of Fano lattice surface modes in periodic arrays of magnetic and optically anisotropic nanoantennas. We show how coherent diffractive far-field coupling between elliptical nickel nanoantennas is governed by the two in-plane, orthogonal and spectrally detuned plasmonic responses of the individual building block, one directly induced by the incident radiation and the other induced by the application of an external magnetic field. The consequent excitation of magnetic field-induced Fano lattice surface modes leads to highly tunable and amplified magneto-optical effects as compared to a continuous film or metasurfaces made of disordered noninteracting magnetoplasmonic anisotropic nanoantennas. The concepts presented here can be exploited to design novel magnetoplasmonic sensors based on coupled localized plasmonic resonances, and nanoscale metamaterials for precise control and magnetically driven tunability of light polarization states.


Nanophotonics VII | 2018

Plasmonic nanoantennas for nanometer, picosecond, control of VO2 phase-transition (Conference Presentation)

Bigeng Chen; Otto L. Muskens; Daniel Traviss; Yudong Wang; C.H. de Groot; David W. Sheel; Luca Bergamini; Javier Aizpurua; Nerea Zabala; Jeffrey M. Gaskell

Single-nanoantenna has intrigued vast interest due to its exceptional properties such as light harvesting and field enhancement, which provide the opportunities for strengthening light-matter interaction and efficient photon manipulation in nano-scale, as well as boosting nonlinear response. On the other hand, materials with structural or electronic phase transition have been employed to achieve large optical modulation contrast and order-unity switching, making them promising building blocks for high-performance optical circuits and devices with ultra-small footprint. In this context we demonstrate nano-scale all-optical modulation with single Au antennas fabricated on phase-transition material vanadium dioxide (VO2) substrate. VO2 films are deposited on boroaluminosilicate glass coated with a 30-nm layer of fluorine-doped tin oxide. The inclusion of this intermediate layer allows the production of VO2 films with low surface roughness and suitable thermochromic transition temperature. Then the nanoantennas are fabricated by e-beam lithography and subsequent 45-nm-thick gold deposition on the VO2 substrate. A 5-nm-thick Ti layer is used to improve the adhesion of the gold to the VO2. We use a pump-probe spectroscopy to characterize the modulation feature of the antenna/VO2. The pump beam at 1060 nm wavelength is used to introduce a local heating for VO2s phase transition and the probe beam from 1100 nm to 2000 nm wavelength is for readout of the modulated local transmission of antenna/VO2 hybrid owing to the dielectric environment change. A spatial modulation technique is also used to extract the differential transmission (ΔT/T) around the antennas. As a result, with pump pulse energy increasing to less than 1 nJ, the measured ΔT/T of single-antenna//VO2 hybrid exhibits substantial change that crossing the zero line and significant blue shift. As reported the ΔT/T obtained from spatial modulation spectroscopy is supposed to be proportional to the antenna’s extinction cross section. However, with the obtained negative values which lead to unphysical extinction cross sections less than 0, we believe the VO2 substrate beneath the antennas is highly involved as its optical property has been modified considerately. In addition, we observe that the pump-modulated differential transmission of the antenna/VO2 hybrid evidently depends on the polarisation of the pump when it is below a certain level. In this regime, the parallel pumping excites the longitudinal resonant mode while the perpendicular one only induces non-resonant absorption of antenna’s transverse mode. Going beyond this regime, the stronger pump transits the VO2 substrate from insulating phase into metallic phase completely, which dominates the dielectric environment change of the antenna, leading to nearly polarisation-independent modulation. The time for fully switch-on obtained from the pump-probe measurement is less than 50 ps. We also investigate the time response of the differential transmission dependent on the pulse repetition rate and substrate temperature, respectively. Less modulation depth with repetition rate over 2 MHz or base temperature higher than 40 °C suggest that the heat accumulation from adjacent pulses and thermal equilibrium time plays important roles in the achievable modulation speed. The single-antenna/VO2 structure may find applications in nano-scale optoelectronics for multiple functionalities including modulation, memory and so on.


european quantum electronics conference | 2017

Metal oxide metasurfaces for active control and space technology

Otto L. Muskens; Kai Sun; C.H. de Groot; Luca Bergamini; Nerea Zabala; Javier Aizpurua; Mirko Simeoni; Alessandro Urbani; Sandro Mengali

Recently metal oxides have been introduced as promising materials for infrared and active plasmonics. By designing nanoantennas and metamaterials using transparent conducting oxides (TCOs), we can achieve strong light-matter interactions in the infrared while maintaining high transparency in the visible range. These properties have been used to design new types of infrared active surfaces for optical sensing and metamaterials [1, 2]. Compared to noble-metals, the TCOs offer a strongly reduced negative permittivity which allows for much more compact resonant nanostructures and hence a higher density of elements per square wavelength. Up to 80 resonant elements per square wavelength were realized using ITO split-ring resonators.


conference on lasers and electro-optics | 2016

2016 Conference on Lasers and Electro-Optics, CLEO 2016

Luca Bergamini; Nicolò Maccaferri; Matteo Pancaldi; Mikolaj K. Schmidt; Veli Kataja; Sebastiaan van Dijken; Nerea Zabala; Javier Aizpurua; P. Vavassori

By synergically combining experiments and simulations, we show how the excitation of lattice surface modes in ordered arrays of magnetic and optically-anisotropic nanoantennas leads to a highly enhanced and tunable Fano-like modulation of the magnetoplasmonic response.


conference on lasers and electro optics | 2016

Magnetoplasmonic crystals based on anisotropic nanoantennas

Luca Bergamini; Nicolò Maccaferri; Matteo Pancaldi; Mikolaj K. Schmidt; Mikko Kataja; Sebastiaan van Dijken; Nerea Zabala; Javier Aizpurua; P. Vavassori

By synergically combining experiments and simulations, we show how the excitation of lattice surface modes in ordered arrays of magnetic and optically-anisotropic nanoantennas leads to a highly enhanced and tunable Fano-like modulation of the magnetoplasmonic response.


Archive | 2016

Dataset for Antenna-assisted picosecond control of nanoscale phase-transition in vanadium dioxide

Otto L. Muskens; Luca Bergamini; Yudong Wang; Jeffrey M. Gaskell; Nerea Zabala; Cornelis De Groot; David W. Sheel; Javier Aizpurua

Otto L Muskens, Luca Bergamini, Yudong Wang, Jeffrey M Gaskell, Nerea Zabala, CH de Groot, David W Sheel and Javier Aizpurua. Antenna-assisted picosecond control of nanoscale phase-transition in vanadium dioxide. Light: Science & Applications Volume 6, 2016; doi: 10.1038/lsa.2016.173.


ACS Photonics | 2018

Metamaterial Platforms for Spintronic Modulation of Mid-Infrared Response under Very Weak Magnetic Field

G. Armelles; Luca Bergamini; Nerea Zabala; Fernando Rey García; M. L. Dotor; Lorena Torne; Raquel Alvaro; Amadeu Griol; A. Martinez; Javier Azipurua; Alfonso Cebollada


conference on lasers and electro optics | 2016

Ultrafast control of plasmonic nanoantennas driven by hot-spot induced phase-transitions in VO 2

Luca Bergamini; Yudong Wang; Jeffrey M. Gaskell; Nerea Zabala; C.H. de Groot; David W. Sheel; Javier Aizpurua; Otto L. Muskens


Archive | 2016

Enhanced and tunable magneto-optical activity in magnetoplasmonic crystals

Nicolò Maccaferri; Luca Bergamini; Mikolaj K. Schmidt; Nerea Zabala; Antonio García-Martín; J. Cuevas; Javier Aizpurua; P. Vavassori

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Nerea Zabala

University of the Basque Country

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Javier Aizpurua

University of the Basque Country

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Nicolò Maccaferri

Chalmers University of Technology

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Mikolaj K. Schmidt

Spanish National Research Council

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Otto L. Muskens

University of Southampton

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C.H. de Groot

University of Southampton

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Yudong Wang

University of Southampton

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