In the present study, results towards the development of a 3D diamond sensor are presented. Conductive channels are produced inside the sensor bulk using a femtosecond laser. This electrode geometry allows full charge collection even for low quality diamond sensors. Results from testbeam show that charge is collected by these electrodes. In order to understand the channel growth parameters, with the goal of producing low resistivity channels, the conductive channels produced with a different laser setup are evaluated by Raman spectroscopy.

A 3D diamond detector for particle tracking

FORNERIS, Jacopo;LO GIUDICE, Alessandro;OLIVERO, Paolo;PICOLLO, FEDERICO;RE, ALESSANDRO;VITTONE, Ettore;
2016-01-01

Abstract

In the present study, results towards the development of a 3D diamond sensor are presented. Conductive channels are produced inside the sensor bulk using a femtosecond laser. This electrode geometry allows full charge collection even for low quality diamond sensors. Results from testbeam show that charge is collected by these electrodes. In order to understand the channel growth parameters, with the goal of producing low resistivity channels, the conductive channels produced with a different laser setup are evaluated by Raman spectroscopy.
2016
824
402
405
http://www.sciencedirect.com/science/article/pii/S016890021501150X
Tracking detectors, Solid State Detectors, CVD diamond
Artuso M.; Bachmair F.; Bani L.; Bartosik M.; Beacham J.; Bellini V.; Belyaev V.; Bentel B.; Berdermann E.; Bergonzo P.; Besa A.; Brom J-M.; Bruzzi M.; Cerv M.; Chaur C.; Chiodini G.; Chren D.; Cindro V.; Claus G.; Collot J.; Costa S.; Cumalat J. ; Dabrowski A.; D’Alessandro R.; de Boer W.; Dehning B.; Dobos D.; Dunser M.; Eremin V.; Eusebi R.; Forcolin G.; Forneris J.; Frais-Kolbld H.; Gano K.K.; Gastal M.; Goffe M.; Goldstein J.; Golubev A.; Gonella L.; Gorisek A.; Graber L.; Grigoriev E.; Grosse-Knetter J.; Gui B.; Guthoff M.; Haughton I.; Hidas D.; Hits D.; Hoeferkamp M.; Hofmann T.; Hosslet J.; Hostachy J-Y.; Hugging F.; Jansen H.; Janssen J.; Kagan H.; Kanxheri K.; Kasieczka G.; Kass R.; Kassel F.; Kis M.; Kramberger G.; Kuleshov S.; Lacoste A.; Lagomarsino S.; Lo Giudice A.; Maazouzi C.; Mandic I.; Mathieu C.; McFadden N.; McGoldrick G.; Menichelli M.; Mikuz M.; Morozzi A.; Moss J.; Mountain R.; Murphy S.; Oh A.; Olivero P.; Parrini G.; Passeri D.; Pauluzzi M.; Pernegger H.; Perrino R.; Picollo F.; Pomorski M.; Potenza R.; Quadt A.; Re A.; Riley G.; Roe S.; Sapinski M.; Scaringella M. ; Schnetzer S.; Schreinerd T.; Sciortino S.; Scorzoni A.; Seidel S.; Servoli L.; Sfyrla A.; Shimchuk G.; Smith D.S.; Sopko B.; Sopko V.; Spagnolo S.; Spanier S.; Stenson K.; Stone R.; Sutera C.; Taylor A.; Traeger M.; Tromson D.; Trischuk W.; Tuve C.; Uplegger L.; Velthuis J.; Venturi N.; Vittone E.; Wagner S.; Wallny R.; Wang J.C.; Weilhammer P.; Weingarten J.; Weiss C.; Wengler T.; Wermes N.; Yamouni M.; Zavrtani M.
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2318/1533196
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