- Herve Grabas - Ecole Superieure d’Electicite 1 Internship presentation - University of Chicago – 3 sept. 2009
Contents Project description Detectors in High Energy Physics Signal processing for Pico-second time resolution Detector to Chip integration Chip structure and characteristics Operation of the chip Storage cells Design 2 Internship presentation - University of Chicago – 3 sept
Acknowledgements 3 Internship presentation - University of Chicago – 3 sept
Contents 4 Internship presentation - University of Chicago – 3 sept
Project description At the present time: PMT High gain High bandwidth Low noise In the future: MCP-PMT’s All of the above Smaller path-lengths Possible tailoring Readout electronics: integrated analog memory and ADC 5 Internship presentation - University of Chicago – 3 sept
Contents 6 Internship presentation - University of Chicago – 3 sept
Detectors HEP detectors structure 7 Internship presentation - University of Chicago – 3 sept
Particle measurements Mass m Velocity Momentum p 8 Internship presentation - University of Chicago – 3 sept p = m The goal of a HEP detector is to measure one of these three characteristics
Calorimeter The goal of a calorimeter is to measure the particle's energy loss in a dense medium 9 Internship presentation - University of Chicago – 3 sept Calorimeters gives the particle’s energy but requires a lot of radial space
Cerenkov angle measurement Cerenkov formula: cos n 10 Internship presentation - University of Chicago – 3 sept Cerenkov light detectors give the velocity of the particle and also require a lot of radial space
Time-of-flight measurement Reconstruction of the particle trajectory Determination of the time of flight of the particle 11 Internship presentation - University of Chicago – 3 sept Time-of-flight detectors can be very thin
Photomultiplier tubes Photo-electric effect Secondary emission effect 12 Internship presentation - University of Chicago – 3 sept Big electron path-length ~10cm
MCP detector principle 13 Internship presentation - University of Chicago – 3 sept Input window Photo-cathode Micro-channel plate Anode plate <1cm
Photo-electric effect 14 Internship presentation - University of Chicago – 3 sept Photocathode Secondary electrons Advanced structures
Micro-channel plates 15 Internship presentation - University of Chicago – 3 sept microns glass MCP - Incom
Amplification principle Secondary emission Very small path-length High gain: 10 5 High space resolution: pore size Best to date: 2 m 16 Internship presentation - University of Chicago – 3 sept
Anode plate 17 Internship presentation - University of Chicago – 3 sept Delay line readout: position resolution <100 m AND time to pico-second range
18 Internship presentation - University of Chicago – 3 sept
Contents 19 Internship presentation - University of Chicago – 3 sept
Single threshold 20 Internship presentation - University of Chicago – 3 sept
Multiple threshold 21 Internship presentation - University of Chicago – 3 sept
Constant fraction discriminator 22 Internship presentation - University of Chicago – 3 sept
Waveform sampling and digital signal processing 23 Internship presentation - University of Chicago – 3 sept
Simulation Results 24 Internship presentation - University of Chicago – 3 sept
Contents 25 Internship presentation - University of Chicago – 3 sept
Anode plate 26 Internship presentation - University of Chicago – 3 sept
27 Internship presentation - University of Chicago – 3 sept
Contents 28 Internship presentation - University of Chicago – 3 sept
29 Internship presentation - University of Chicago – 3 sept Chip general sketch
30 Internship presentation - University of Chicago – 3 sept Timing generator
31 Internship presentation - University of Chicago – 3 sept Sampling cells
32 Internship presentation - University of Chicago – 3 sept ADC’s
33 Internship presentation - University of Chicago – 3 sept Token controlled readout register
34 Internship presentation - University of Chicago – 3 sept Spec:
Contents 35 Internship presentation - University of Chicago – 3 sept
Operating of the chip Writing Cell writing Trigger event Reading 36 Internship presentation - University of Chicago – 3 sept
Contents 37 Internship presentation - University of Chicago – 3 sept
38 Internship presentation - University of Chicago – 3 sept Storage cell principle V in wr C in V out rd V in wr C in V out rd V in wr C in V out rd Write stateIntermediate stateRead state
Storage cell issues Input bandwidth Leakages Charge injection 39 Internship presentation - University of Chicago – 3 sept
40 Internship presentation - University of Chicago – 3 sept Write state bandwidth V in wr C in V in C in R on
41 Internship presentation - University of Chicago – 3 sept Leakages in the cell V stored C in R off Switch leakages Capacitor leakages
42 Internship presentation - University of Chicago – 3 sept Charge injection V in wr C in V in + Q/C in
43 Internship presentation - University of Chicago – 3 sept Input switch
44 Internship presentation - University of Chicago – 3 sept Input resistance With Matlab Comparison of Matlab and Spice
45 Internship presentation - University of Chicago – 3 sept Small signal model Cutting frequency:
46 Internship presentation - University of Chicago – 3 sept Simulations:
47 Internship presentation - University of Chicago – 3 sept Non-linear storage cell
Large signal analysis The output is not linear Subthreshold voltage are not stored 48 Internship presentation - University of Chicago – 3 sept
49 Internship presentation - University of Chicago – 3 sept Saturation V in (sat) value function of R L
50 Internship presentation - University of Chicago – 3 sept Output with and without saturation
51 Internship presentation - University of Chicago – 3 sept Linearity fit
52 Internship presentation - University of Chicago – 3 sept Small signal analysis
53 Internship presentation - University of Chicago – 3 sept Bandwidth
54 Internship presentation - University of Chicago – 3 sept Cell issues
55 Internship presentation - University of Chicago – 3 sept Read and write sequencing WriteIntermediate stateRead
56 Internship presentation - University of Chicago – 3 sept Read and write state
Cell issues Leakages: due to the switch Charge injection 57 Internship presentation - University of Chicago – 3 sept
58 Internship presentation - University of Chicago – 3 sept Linear storage cell
59 Internship presentation - University of Chicago – 3 sept Cell with real current source
60 Internship presentation - University of Chicago – 3 sept DC characteristic Input (blue) Output(black)
61 Internship presentation - University of Chicago – 3 sept Linear fit
62 Internship presentation - University of Chicago – 3 sept Small signal analysis
63 Internship presentation - University of Chicago – 3 sept Input and output bandwidth
64 Internship presentation - University of Chicago – 3 sept Transient signals
Contents 65 Internship presentation - University of Chicago – 3 sept
66 Internship presentation - University of Chicago – 3 sept Cell design
67 Internship presentation - University of Chicago – 3 sept Layout IBM 130nm CMRF-8-SF
68 Internship presentation - University of Chicago – 3 sept Storage cell assembly IBM 130nm CMRF-8-SF
69 Internship presentation - University of Chicago – 3 sept Channel layout IBM 130nm CMRF-8-SF
70 Internship presentation - University of Chicago – 3 sept Chip layout IBM 130nm CMRF-8-SF
71 Internship presentation - University of Chicago – 3 sept Conclusion