F. Resnati
CERN
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Publication
Featured researches published by F. Resnati.
Journal of Instrumentation | 2015
Dorothea Pfeiffer; F. Resnati; Jens Birch; Richard Hall-Wilton; Carina Höglund; Lars Hultman; George Iakovidis; E. Oliveri; Esko Oksanen; L. Ropelewski; P. Thuiner
Due to the He-3 crisis, alternatives to the standard neutron detection techniques are becoming urgent. In addition, the instruments of the European Spallation Source (ESS) require advances in the state of the art of neutron detection. The instruments need detectors with excellent neutron detection efficiency, high rate capabilities and unprecedented spatial resolution. The Macromolecular Crystallography instrument (NMX) requires a position resolution in the order of 200 mu m over a wide angular range of incoming neutrons. Solid converters in combination with Micro Pattern Gaseous Detectors (MPGDs) are proposed to meet the new requirements. Charged particles rising from the neutron capture have usually ranges larger than several millimetres in gas. This is apparently in contrast with the requirements for the position resolution. In this paper, we present an analysis technique, new in the field of neutron detection, based on the Time Projection Chamber (TPC) concept. Using a standard Single-GEM with the cathode coated with (B4C)-B-10, we extract the neutron interaction point with a resolution of better than sigma = 200 mu m.
Journal of Instrumentation | 2016
Dorothea Pfeiffer; F. Resnati; Jens Birch; Maddi Etxegarai; Richard Hall-Wilton; Carina Höglund; Lars Hultman; Isabel Llamas-Jansa; E. Oliveri; Esko Oksanen; Linda Robinson; L. Ropelewski; Susann Schmidt; C. Streli; P. Thuiner
European Spallation Source instruments like the macromolecular diffractometer (NMX) require an excellent neutron detection efficiency, high-rate capabilities, time resolution, and an unprecedented spatial resolution in the order of a few hundred micrometers over a wide angular range of the incoming neutrons. For these instruments solid converters in combination with Micro Pattern Gaseous Detectors (MPGDs) are a promising option. A GEM detector with gadolinium converter was tested on a cold neutron beam at the IFE research reactor in Norway. The μTPC analysis, proven to improve the spatial resolution in the case of 10B converters, is extended to gadolinium based detectors. For the first time, a Gd-GEM was successfully operated to detect neutrons with a measured efficiency of 11.8% at a wavelength of 2 Aand a position resolution better than 250 μm.
nuclear science symposium and medical imaging conference | 2015
S. Franchino; D. Gonzalez Diaz; Richard Hall-Wilton; Hans Muller; E. Oliveri; Dorothea Pfeiffer; F. Resnati; L. Ropelewski; M. Van Stenis; C. Streli; P. Thuiner; R. Veenhof
A comprehensive study, supported by systematic measurements and numerical computations, of the intrinsic limits of multi-GEM detectors when exposed to very high particle fluxes or operated at very large gains is presented. The observed variations of the gain, of the ion back-flow, and of the pulse height spectra are explained in terms of the effects of the spatial distribution of positive ions and their movement throughout the amplification structure. The intrinsic dynamic character of the processes involved imposes the use of a non-standard simulation tool for the interpretation of the measurements. Computations done with a Finite Element Analysis software reproduce the observed behaviour of the detector. The impact of this detailed description of the detector in extreme conditions is multiple: it clarifies some detector behaviours already observed, it helps in defining intrinsic limits of the GEM technology, and it suggests ways to extend them.
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2016
S. Franchino; D. González-Díaz; Richard Hall-Wilton; Richard B. Jackman; H. Müller; Thuong Thuong Nguyen; R. De Oliveira; E. Oliveri; Dorothea Pfeiffer; F. Resnati; L. Ropelewski; J. Smith; M. Van Stenis; C. Streli; P. Thuiner; R. Veenhof
Graphene is a single layer of carbon atoms arranged in a honeycomb lattice with remarkable mechanical and electrical properties. Regarded as the thinnest and narrowest conductive mesh, it has drastically different transmission behaviours when bombarded with electrons and ions in vacuum. This property, if confirmed in gas, may be a definitive solution for the ion back-flow problem in gaseous detectors. In order to ascertain this aspect, graphene layers of dimensions of about 2×2 cm2, grown on a copper substrate, are transferred onto a flat metal surface with holes, so that the graphene layer is freely suspended. The graphene and the support are installed into a gaseous detector equipped with a triple Gaseous Electron Multiplier (GEM), and the transparency properties to electrons and ions are studied in gas as a function of the electric fields. The techniques to produce the graphene samples are described, and we report on preliminary tests of graphene-coated GEMs.
nuclear science symposium and medical imaging conference | 2014
P. Thuiner; Richard Hall-Wilton; Richard B. Jackman; Hans Muller; Thuong Thuong Nguyen; E. Oliveri; D. Pfeiffer; F. Resnati; L. Ropelewski; J. A. Smith; M. Van Stenis; R. Veenhof
Graphene is a single layer of carbon atoms arranged in a honeycomb lattice with remarkable mechanical, electrical and optical properties. For the first time graphene layers suspended on copper meshes were installed into a gas detector equipped with a gaseous electron multiplier. Measurements of low energy electron and ion transfer through graphene were conducted. In this paper we describe the sample preparation for suspended graphene layers, the testing procedures and we discuss the preliminary results followed by a prospect of further applications.
arXiv: Instrumentation and Detectors | 2018
Thomas Papaevangelou; Cyprien Godinot; Mariam Kebbiri; Georgios Tsiledakis; Sebastian White; D. Desforge; Esther Ferrer-Ribas; I. Giomataris; F. Resnati; L. Ropelewski; E. Oliveri; R. Veenhof; Diego Gonzalez Diaz; Thomas Gustavsson
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2018
J. Bortfeldt; M. Lupberger; M. Gallinaro; Y. Zhou; V. Niaouris; T. Gustavsson; B. Qi; C. David; M. Van Stenis; P. Legou; I. Manthos; K. Paraschou; X. Wang; E. Oliveri; Jinying Liu; Z. P. Zhang; H. Muller; G. Fanourakis; T. Schneider; P. Thuiner; J. Franchi; S.E. Tzamarias; M. Pomorski; O. Maillard; F. Resnati; Y. Tsipolitis; F.M. Brunbauer; M. Kebbiri; Philippe Schwemling; C. Guyot
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2018
F.M. Brunbauer; D. Gonzalez Diaz; E. Oliveri; C. Streli; G Galgóczi; L. Ropelewski; P. Thuiner; M. Van Stenis; F. Resnati
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2018
F.J. Iguaz; J. Bortfeldt; F.M. Brunbauer; C. David; D. Desforge; G. Fanourakis; J. Franchi; M. Gallinaro; F. Garcia; I. Giomataris; D. González-Díaz; T. Gustavsson; C. Guyot; M. Kebbiri; P. Legou; Jinying Liu; M. Lupberger; O. Maillard; I. Manthos; H. Muller; V. Niaouris; E. Oliveri; T. Papaevangelou; K. Paraschou; M. Pomorski; B. Qi; F. Resnati; L. Ropelewski; D. Sampsonidis; T. Schneider
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2018
Marta Babicz; S. Bordoni; T. Cervi; Z. Collins; A. Fava; U. Kose; M. Meli; A. Menegolli; M. Nessi; F. Pietropaolo; G.L. Raselli; F. Resnati; M. Rossella; P. Sala; A. Zani