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Featured researches published by P. Colautti.


Radiation Protection Dosimetry | 2011

Study of a solid state microdosemeter based on a monolithic silicon telescope: irradiations with low-energy neutrons and direct comparison with a cylindrical TEPC

S. Agosteo; P. Colautti; I. Fanton; A. Fazzi; M.V. Introini; D. Moro; A. Pola; V. Varoli

A silicon device based on the monolithic silicon telescope technology coupled to a tissue-equivalent converter was proposed and investigated for solid state microdosimetry. The detector is constituted by a ΔE stage about 2 µm in thickness geometrically segmented in a matrix of micrometric diodes and a residual-energy measurement stage E about 500 µm in thickness. Each thin diode has a cylindrical sensitive volume 9 µm in nominal diameter, similar to that of a cylindrical tissue-equivalent proportional counter (TEPC). The silicon device and a cylindrical TEPC were irradiated in the same experimental conditions with quasi-monoenergetic neutrons of energy between 0.64 and 2.3 MeV at the INFN-Legnaro National Laboratories (LNL-INFN, Legnaro, Italy). The aim was to study the capability of the silicon-based system of reproducing microdosimetric spectra similar to those measured by a reference microdosemeter. The TEPC was set in order to simulate a tissue site about 2 μm in diameter. The spectra of the energy imparted to the ▵E stage of the silicon telescope were corrected for tissue-equivalence through an optimized procedure that exploits the information from the residual energy measurement stage E. A geometrical correction based on parametric criteria for shape-equivalence was also applied. The agreement between the dose distributions of lineal energy and the corresponding mean values is satisfactory at each neutron energy considered.


Radiation Protection Dosimetry | 2018

NANODOSIMETRY: TOWARDS A NEW CONCEPT OF RADIATION QUALITY

V. Conte; A Selva; P. Colautti; Gerhard Hilgers; Hans Rabus; Aliaksandr Bantsar; Marcin Pietrzak; Stanisław Pszona

The biological action of ionizing charged particles is initiated at the DNA level, and the effectiveness with which the initial physical effect changes into measurable biological damage is likely ruled by the stochastics of ionizations produced by the incident ions in subcellular nanometric volumes. Based on this hypothesis, experimental nanodosimetry aims at establishing a new concept of radiation quality that builds on measurable characteristics of the particle track structure at the nanometer scale. Three different nanodosimetric detection systems have been developed to date that allow measurements of the number of ionizations produced by the passage of a primary particle in a nanometer-size gas volume (in unit density scale). Within the Italian project MITRA (MIcrodosimetry and TRAck structure), funded by the Italian Istituto Nazionale di Fisica Nucleare (INFN) and the EMRP Joint Research Project BioQuaRT (Biologically Weighted Quantities in Radiotherapy), experiments have been carried out, in which the frequency distribution of ionizations produced by proton and carbon ion beams of given energy was measured with the three nanodosimetric detectors. Descriptors of the track structure can be derived from these distributions. In particular, the first moment M1, representing the mean number of ionizations produced in the target volume, and the cumulative probability Fk of measuring a number ν ≥ k of ionizations. The correlation between measured nanodosimetric quantities and experimental radiobiological data available in the literature is here presented and discussed.


Radiation Protection Dosimetry | 2018

MICRODOSIMETRIC STUDY AT THE CNAO ACTIVE-SCANNING CARBON-ION BEAM

P. Colautti; V. Conte; A Selva; S Chiriotti; A. Pola; D. Bortot; A. Fazzi; S. Agosteo; M Ciocca

The Italian National Centre for Oncological Hadrontherapy (CNAO) has been treating patients since 2011 with carbon-ion beams using the active-scanning modality. In such irradiation modality, the beam spot, which scans the treatment area, is characterised by very high particle-fluence rates (more than 105 s-1 mm-2). Moreover, the Bragg-peak is only ~1 mm-FWHM. Commercial tissue-equivalent proportional counters (TEPC), like the Far West Technologies LET-½, are large, hence they have limited capability to measure at high counting fluence rates. In this study we have used two home-made detectors, a mini-TEPC 0.81 mm2 in sensitive area and a silicon telescope 0.125 mm2 in sensitive area, to perform microdosimetric measurements in the therapeutic carbon-ion beam of CNAO. A monoenergetic carbon-ion beam of 189.5 ± 0.3 MeV/u scanning a 3 × 3 cm2 area has been used. Spectral differences are visible in the low y-value region, but the mean microdosimetric values, measured with the two detectors, result to be pretty consistent, as well as the microdosimetric spectra in the high y-value region.


Radiation Protection Dosimetry | 2018

A NOVEL TEPC FOR MICRODOSIMETRY AT NANOMETRIC LEVEL: RESPONSE AGAINST DIFFERENT NEUTRON FIELDS

D. Bortot; D. Mazzucconi; M Bonfanti; S. Agosteo; A. Pola; S. Pasquato; A. Fazzi; P. Colautti; V. Conte

Tissue equivalent proportional counter (TEPC) is the most accurate device for measuring the microdosimetric properties of a particle beam, nevertheless no detailed information on the track structure of the impinging particles can be obtained, since the lower operation limit of common TEPCs is ~0.3 μm. On the other hand, the pattern of particle interactions at the nanometer level is measured by only three different nanodosimeters worldwide: practical instruments are not yet available. In order to partially fill the gap between microdosimetry and track-nanodosimetry, a low-pressure avalanche-confinement TEPC was recently designed and constructed for simulating tissue-equivalent sites down to the nanometric region. The present article aims at describing the response of this newly developed TEPC in the range 0.3 μm-25 nm against a fast neutron field from a 241Am-Be source and a quasi-monoenergetic neutron beam. The experimental results are in good agreement with Monte Carlo simulations carried out with the FLUKA code.


Radiation Protection Dosimetry | 2018

State of The Art of Instrumentation in Experimental Nanodosimetry

Aliaksandr Bantsar; P. Colautti; V Conte; Gerhard Hilgers; Marcin Pietrzak; Stanisław Pszona; Hans Rabus; A Selva

Nanodosimetry is a branch of dosimetry for investigation and modeling of the interaction pattern of ionizing radiation in nanometre site-sizes (at unit density), which dates back to the 1970s (Pszona S. A track ion counter. Proceedings of Fifth Symposium on Microdosimetry EUR 5452 d-e-f, Published by the Commission of the European Communities, Luxemburg, pp. 1107-1122 (1976)). To date, the different experimental approaches have lead to developing of three fully functional nanodosimeters: the Jet Counter operated at NCBJ, the Ion Counter operated at PTB and Startrack Counter operated at INFN-LNL. Descriptions of each nanodosimeter as well as of the techniques used to investigate the track structure of ionizing particles are presented.


Radiation Measurements | 2010

Study of a silicon telescope for solid state microdosimetry: Preliminary measurements at the therapeutic proton beam line of CATANA

S. Agosteo; G.A.P. Cirrone; P. Colautti; G. Cuttone; G. D’Angelo; A. Fazzi; M.V. Introini; D. Moro; A. Pola; V. Varoli


Radiation Measurements | 2017

A miniaturized alpha spectrometer for the calibration of an avalanche-confinement TEPC

D. Bortot; A. Pola; S. Agosteo; S. Pasquato; M.V. Introini; P. Colautti; V. Conte


Radiation Measurements | 2017

Track structure characterization and its link to radiobiology

V. Conte; A Selva; P. Colautti; Gerhard Hilgers; Hans Rabus


Radiation Measurements | 2017

A novel avalanche-confinement TEPC for microdosimetry at nanometric level

D. Bortot; A. Pola; S. Agosteo; S. Pasquato; D. Mazzucconi; A. Fazzi; P. Colautti; V. Conte


Radiation Measurements | 2018

Monte Carlo simulation of a new TEPC for microdosimetry at nanometric level: Response against a carbon ion beam

D. Mazzucconi; D. Bortot; A. Pola; S. Agosteo; S. Pasquato; A. Fazzi; P. Colautti; V. Conte

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V. Conte

Istituto Nazionale di Fisica Nucleare

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D. Moro

Istituto Nazionale di Fisica Nucleare

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G. Cuttone

Istituto Nazionale di Fisica Nucleare

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G.A.P. Cirrone

Istituto Nazionale di Fisica Nucleare

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I. Fanton

Istituto Nazionale di Fisica Nucleare

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V Conte

Istituto Nazionale di Fisica Nucleare

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