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TITULO

Tracker-in-Calorimeter (TIC) Project: A Calorimetric New Solution for Space Experiments

Gabriele Bigongiari    
Oscar Adriani    
Giovanni Ambrosi    
Philipp Azzarello    
Andrea Basti    
Eugenio Berti    
Bruna Bertucci    
Lorenzo Bonechi    
Massimo Bongi    
Sergio Bottai    
Mirko Brianzi    
Paolo Brogi    
Guido Castellini    
Enrico Catanzani    
Caterina Checchia    
Raffaello D?Alessandro    
Sebastiano Detti    
Matteo Duranti    
Noemi Finetti    
Valerio Formato    
Maria Ionica    
Paolo Maestro    
Fernando Maletta    
Pier Simone Marrocchesi    
Nicola Mori    
Lorenzo Pacini    
Paolo Papini    
Sergio Bruno Ricciarini    
Gianluigi Silvestre    
Piero Spillantini    
Oleksandr Starodubtsev    
Francesco Stolzi    
Jung Eun Suh    
Arta Sulaj    
Alessio Tiberio and Elena VannucciniaddShow full author listremoveHide full author list    

Resumen

A space-based detector dedicated to measurements of γ" role="presentation">??? ? -rays and charged particles has to achieve a balance between different instrumental requirements. A good angular resolution is necessary for the γ" role="presentation">??? ? -rays, whereas an excellent geometric factor is needed for the charged particles. The tracking reference technique of γ" role="presentation">??? ? -ray physics is based on a pair-conversion telescope made of passive material (e.g., tungsten) coupled with sensitive layers (e.g., silicon microstrip). However, this kind of detector has a limited acceptance because of the large lever arm between the active layers, needed to improve the track reconstruction capability. Moreover, the passive material can induce fragmentation of nuclei, thus worsening charge reconstruction performances. The Tracker-In-Calorimeter (TIC) project aims to solve all these drawbacks. In the TIC proposal, the silicon sensors are moved inside a highly-segmented isotropic calorimeter with a couple of external scintillators dedicated to charge reconstruction. In principle, this configuration has a good geometrical factor, and the angle of the γ" role="presentation">??? ? -rays can be precisely reconstructed from the lateral profile of the electromagnetic shower sampled, at different depths in the calorimeter, by silicon strips. The effectiveness of this approach has been studied with Monte Carlo simulations and validated with beam test data of a small prototype.

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