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Dive into the research topics where Lorenzo Baldacci is active.

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Featured researches published by Lorenzo Baldacci.


Applied Physics Letters | 2015

Magneto-optic transmittance modulation observed in a hybrid graphene–split ring resonator terahertz metasurface

Simone Zanotto; Christoph Lange; Thomas Maag; A. Pitanti; Vaidotas Miseikis; Camilla Coletti; Riccardo Degl'Innocenti; Lorenzo Baldacci; Rupert Huber; Alessandro Tredicucci

By placing a material in close vicinity of a resonant optical element, its intrinsic optical response can be tuned, possibly to a wide extent. Here, we show that a graphene monolayer, spaced a few tenths of nanometers from a split ring resonator metasurface, exhibits a magneto-optical response which is strongly influenced by the presence of the metasurface itself. This hybrid system holds promises in view of thin optical modulators, polarization rotators, and nonreciprocal devices, in the technologically relevant terahertz spectral range. Moreover, it could be chosen as the playground for investigating the cavity electrodynamics of Dirac fermions in the quantum regime.


Optics Express | 2015

Interferometric control of absorption in thin plasmonic metamaterials: general two port theory and broadband operation

Lorenzo Baldacci; Simone Zanotto; G. Biasiol; Lucia Sorba; Alessandro Tredicucci

In order to extend the Coherent Perfect Absorption (CPA) phenomenology to broadband operation, the interferometric control of absorption is investigated in two-port systems without port permutation symmetry. Starting from the two-port theory of CPA treated within the Scattering Matrix formalism, we demonstrate that for all linear two-port systems with reciprocity the absorption is represented by an ellipse as function of the relative phase and intensity of the two input beams, and it is uniquely determined by the device single-beam reflectance and transmittance, and by the dephasing of the output beams. The basic properties of the phenomenon in systems without port permutation symmetry show that CPA conditions can still be found in such asymmetric devices, while the asymmetry can be beneficial for broadband operation. As experimental proof, we performed transmission measurements on a metal-semiconductor metamaterial, employing a Mach-Zehnder interferometer. The experimental results clearly evidence the elliptical feature of absorption and trace a route towards broadband operation.


Plant Methods | 2017

Non-invasive absolute measurement of leaf water content using terahertz quantum cascade lasers

Lorenzo Baldacci; Mario Pagano; Luca Masini; A. Toncelli; Giorgio Carelli; Paolo Storchi; Alessandro Tredicucci

BackgroundPlant water resource management is one of the main future challenges to fight recent climatic changes. The knowledge of the plant water content could be indispensable for water saving strategies. Terahertz spectroscopic techniques are particularly promising as a non-invasive tool for measuring leaf water content, thanks to the high predominance of the water contribution to the total leaf absorption. Terahertz quantum cascade lasers (THz QCL) are one of the most successful sources of THz radiation.ResultsHere we present a new method which improves the precision of THz techniques by combining a transmission measurement performed using a THz QCL source, with simple pictures of leaves taken by an optical camera. As a proof of principle, we performed transmission measurements on six plants of Vitis vinifera L. (cv “Colorino”). We found a linear law which relates the leaf water mass to the product between the leaf optical depth in the THz and the projected area. Results are in optimal agreement with the proposed law, which reproduces the experimental data with 95% accuracy.ConclusionsThis method may overcome the issues related to intra-variety heterogeneities and retrieve the leaf water mass in a fast, simple, and non-invasive way. In the future this technique could highlight different behaviours in preserving the water status during drought stress.


Optics Express | 2018

Symmetry enhanced non-reciprocal polarization rotation in a terahertz metal-graphene metasurface

Andrea Ottomaniello; Simone Zanotto; Lorenzo Baldacci; A. Pitanti; Alessandro Tredicucci

In the present article we numerically investigated the magneto-optical behaviour of a sub-wavelength structure composed by a monolayer graphene and a metallic metasurface of optical resonators. Using this hybrid graphene-metal structure, a large increase of the non-reciprocal polarization rotation of graphene can be achieved over a broad range of terahertz frequencies. We demonstrate that the symmetry of the resonator geometry plays a key role for the performance of the system: in particular, increasing the symmetry of the resonator the non-reciprocal properties can be progressively enhanced. Moreover, the possibility to exploit the metallic metasurface as a voltage gate to vary the graphene Fermi energy allows the system working point to be tuned to the desired frequency range. Another peculiar result is the achievement of a structure able to operate both in transmission and reflection with almost the same performance, but in a different frequency range of operation. The described system is hence a sub-wavelength, tunable, multifunctional, effective non-reciprocal element in the terahertz region.


Light-Science & Applications | 2017

Continuous-wave laser operation of a dipole antenna terahertz microresonator

Luca Masini; A. Pitanti; Lorenzo Baldacci; Miriam S. Vitiello; Riccardo Degl'Innocenti; Harvey E. Beere; David A. Ritchie; Alessandro Tredicucci

Resonators and the way they couple to external radiation rely on very different concepts if one considers devices belonging to the photonic and electronic worlds. The terahertz frequency range, however, provides intriguing possibilities for the development of hybrid technologies that merge ideas from both fields in novel functional designs. In this paper, we show that high-quality, subwavelength, whispering-gallery lasers can be combined to form a linear dipole antenna, which creates a very efficient, low-threshold laser emission in a collimated beam pattern. For this purpose, we employ a terahertz quantum-cascade active region patterned into two 19-μm-radius microdisks coupled by a suspended metallic bridge, which simultaneously acts as an inductive antenna and produces the dipole symmetry of the lasing mode. Continuous-wave vertical emission is demonstrated at approximately 3.5 THz in a very regular, low-divergence (±10°) beam, with a high slope efficiency of at least 160 mW A−1 and a mere 6 mA of threshold current, which is ensured by the ultra-small resonator size (VRES/λ3≈10−2). The extremely low power consumption and the superior beam brightness make this concept very promising for the development of miniaturized and portable THz sources to be used in the field for imaging and sensing applications as well as for exploring novel optomechanical intracavity effects.


Scientific Reports | 2016

Thermal noise and optomechanical features in the emission of a membrane-coupled compound cavity laser diode.

Lorenzo Baldacci; A. Pitanti; Luca Masini; Andrea Arcangeli; Francesco Colangelo; D. Navarro-Urrios; Alessandro Tredicucci

We demonstrate the use of a compound optical cavity as linear displacement detector, by measuring the thermal motion of a silicon nitride suspended membrane acting as the external mirror of a near-infrared Littrow laser diode. Fluctuations in the laser optical power induced by the membrane vibrations are collected by a photodiode integrated within the laser, and then measured with a spectrum analyzer. The dynamics of the membrane driven by a piezoelectric actuator is investigated as a function of air pressure and actuator displacement in a homodyne configuration. The high Q-factor (~3.4 · 104 at 8.3 · 10−3 mbar) of the fundamental mechanical mode at ~73 kHz guarantees a detection sensitivity high enough for direct measurement of thermal motion at room temperature (~87 pm RMS). The compound cavity system here introduced can be employed as a table-top, cost-effective linear displacement detector for cavity optomechanics. Furthermore, thanks to the strong optical nonlinearities of the laser compound cavity, these systems open new perspectives in the study of non-Markovian quantum properties at the mesoscale.


Brazilian Journal of Botany | 2018

A possible role of leaf vascular network in heat dissipation in Vitis vinifera L.

Mario Pagano; Alberto Palliotti; Lorenzo Baldacci; Giorgio Carelli; Paolo Storchi

Recent studies showed how the density of leaf vascular system can be involved in the performance of physiological parameters. Major veins are commonly elevated in the lower epidermis of the leaf, and this anatomical feature could play a subsidiary role in increasing heat dispersion in the surrounding environment and may help dissipate excess light energy in the leaves. The aim of this study is to analyse the role of the leaf vein network in the heat dissipation process in Vitis vinifera (L.). Major leaf veins were insulated with liquid paraffin and analysed using thermal imaging. A significantly higher temperature was found on the leaf tissues with insulated veins compared to untreated leaves. Further studies are required to assess the real contribution of the leaf vascular network in thermal dissipation.


Proceedings of SPIE | 2016

Ultrafast optical modulation of magneto-optical terahertz effects occurring in a graphene-loaded resonant metasurface

Simone Zanotto; Christoph Lange; Thomas Maag; A. Pitanti; Vaidotas Miseikis; Camilla Coletti; Riccardo Degl'Innocenti; Lorenzo Baldacci; R. Huber; Alessandro Tredicucci

In this paper we investigate the effect of a static magnetic field and of optical pumping on the transmittance of a hybrid graphene-split ring resonator metasurface. A significant modulation of the transmitted spectra is obtained, both by optical pumping, and by a combination of optical pumping and magnetostatic biasing. The transmittance modulation features spectral fingerprints that are characteristic of a non-trivial interplay between the bare graphene response and the split ring resonance.


Nature Physics | 2014

Perfect energy-feeding into strongly coupled systems and interferometric control of polariton absorption

Simone Zanotto; Francesco P. Mezzapesa; G. Biasiol; Lorenzo Baldacci; Miriam S. Vitiello; Lucia Sorba; Raffaele Colombelli; Alessandro Tredicucci


Rendiconti Lincei-scienze Fisiche E Naturali | 2015

Coherent perfect absorption in photonic structures

Lorenzo Baldacci; Simone Zanotto; Alessandro Tredicucci

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Camilla Coletti

Istituto Italiano di Tecnologia

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Vaidotas Miseikis

Istituto Italiano di Tecnologia

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