Title :
Development, Design and Characterization of a Novel Protocol and Interfaces for the Control and Readout of Front-End Electronics in High Energy Physics Experiments
Author :
Costantino, N. ; Borgese, Gianluca ; Saponara, S. ; Fanucci, L. ; Incandela, J. ; Magazzu, G.
Author_Institution :
Dept. of Inf. Eng., Univ. of Pisa, Pisa, Italy
Abstract :
The new FF-LYNX communication protocol, aiming at the fulfillment of non-homogeneous latency and bandwidth requirements of future High Energy Physics experiments, as well as its implementation into IP Cores available for ASICs development, are described in this paper. The first test-chip implementing FF-LYNX IP-Cores has been designed in the IBM 130 nm CMOS technology, adopting radiation hardening techniques. Transmitter and Receiver interfaces, designed in three different speed options, 4 × F, 8 × F and 16 × F (F=reference clock frequency), as well as different rad-hard FIFOs, constitute the overall architecture of the testchip. A detailed analysis of the area, power consumption and speed has been performed besides the functional characterization, by means of a configurable test-bed. X-ray irradiation tests have been carried out at CERN facilities to verify the Total Ionization Dose hardness of the interfaces, with their full functionality up to 40 Mrad(SiO2).
Keywords :
CMOS digital integrated circuits; X-ray effects; application specific integrated circuits; clocks; microprocessor chips; nuclear electronics; peripheral interfaces; protocols; radiation hardening (electronics); readout electronics; receivers; transmitters; ASIC; CERN facilities; CMOS technology; FF-LYNX IP-Cores; FF-LYNX communication protocol; IBM; X-ray irradiation test; clock frequency; front-end electronics; front-end readout electronics; functional characterization; high energy physics experiments; intellectual property core; interface characterization; nonhomogeneous latency; power consumption; protocol characterization; rad-hard FIFO; radiation hardening techniques; receiver interfaces; size 130 nm; total ionization dose hardness; transmitter interfaces; Buffer storage; Detectors; Physics; Protocols; Radiation effects; Radiation hardening; Synchronization; High Energy Physics (HEP) experiments readout; Integrated Circuits (ICs); Intellectual Property (IP) core; radiation tolerance; serial communications;
Journal_Title :
Nuclear Science, IEEE Transactions on
DOI :
10.1109/TNS.2012.2227795