Edinburgh Research Archive

Analysis and optimisation of high throughput digital silicon photomultipliers

dc.contributor.advisor
Henderson, Robert
en
dc.contributor.advisor
Underwood, Ian
en
dc.contributor.author
Gnecchi, Salvatore
en
dc.contributor.sponsor
Engineering and Physical Sciences Research Council (EPSRC)
en
dc.date.accessioned
2018-03-16T12:25:55Z
dc.date.available
2018-03-16T12:25:55Z
dc.date.issued
2017-11-30
dc.description.abstract
Large area detectors for time correlated single photon counting (TCSPC) are nowadays being implemented in CMOS technology to benefit a large variety of applications including positron emission tomography (PET) and 3D laser ranging (LiDAR), exploiting the advanced timing and counting capabilities inside single chips. Single photon avalanche diodes (SPADs) and silicon photomultipliers (SiPMs) represent a great option to realise such detectors thanks to their exceptional timing resolution and the ability to be arranged into arrays. Recently, digital SiPMs (dSiPMs) have been introduced to improve the integration with CMOS technology overcoming limitations on the readout of analogue SiPMs and thus improving the photon resolution of the detector. This work presents a 14GSamples=s time-to-digital converter (TDC) to improve the throughput of dSiPM sensors commonly limited by the sampling rate of the timing/counting readout circuitry. The converter has been demonstrated on a test chip in 130nm CMOS imaging technology paired with a novel XOR-based 32 32 SPAD array single-channel detector. The overall achieved throughput equals 1GEvents=s demonstrated in a direct time-of-flight LiDAR experiment. By acquiring a number of photons significantly higher than one per laser pulse, this approach represents the first example in TCSPC of an input rate and conversion rate both higher than the excitation rate. The following part of the work presents a modelling analysis on how to match the achieved high sampling rate / throughput of the single-channel TDC to the performance of a SPAD array. The impact of a selection of dSiPM design parameters, such as photon detection efficiency, dead time and size of the SPAD cell, number of cells per single-channel, digital N-to-1 combining network and channel bandwidth, on the overall sensor throughput and the dynamic range has been characterised thanks to a computational Monte-Carlo simulator and useful equations describing each of the processes in the sensing chain. The pile-up effect, i.e. the event-loss causing non-linear distortions on the output signal, has been characterised on each element of the dSiPM and optimisations have been proposed. Event losses in the SPAD cells due to dead time, in the digital combining network due to network dead time and single-channel bandwidth have all been identified, simulated and described by analytical equations. All the results coming from the theoretical analysis have been reproduced in real dSiPM design thanks to a reconfigurable test chip realised in the same 130nm CMOS imaging technology specifically to validate the proposed theory. The manufactured test chip provides the very first direct comparison between OR-based and XOR-based single-channel dSiPM sensors highlighting the promising timing and counting performance of the newly introduced XOR-based dSiPM. Direct evidence of pile-up distortions and subsequent reduction through design optimisations are demonstrated. A recommended design flow for next generation dSiPMs is proposed at the end of the publication.
en
dc.identifier.uri
http://hdl.handle.net/1842/28841
dc.language.iso
en
dc.publisher
The University of Edinburgh
en
dc.relation.hasversion
S. Gnecchi, N. A. W. Dutton, L. Parmesan, B. R. Rae, S. Pellegrini, L. A. Grant, and R. K. Henderson, “Gphotons/s TCSPC with XOR Digital Silicon Photomultipliers,” in Single Photon Workshop, 2015.
en
dc.relation.hasversion
S. Gnecchi, N. A. W. Dutton, L. Parmesan, B. R. Rae, S. J. McLeod, S. Pellegrini, L. A. Grant, and R. K. Henderson, “A Simulation Model for Digital Silicon Photomultipliers,” IEEE Transactions on Nuclear Science, vol. 63, no. 3, pp. 1343–1350, 2016.
en
dc.relation.hasversion
S. Gnecchi, N. A. W. Dutton, L. Parmesan, R. Bruce, S. Pellegrini, S. J. Mcleod, L. A. Grant, and R. K. Henderson, “Analysis of Photon Detection Efficiency and Dynamic Range in SPAD based Visible Light Receivers,” Journal of lightwave technology, vol. 8724, no. 1, pp. 1–7, 2016
en
dc.relation.hasversion
S. Gnecchi, N. A. W. Dutton, L. Parmesan, B. R. Rae, S. Pellegrini, S. J. Mcleod, L. A. Grant, and R. K. Henderson, “Digital Silicon PhotomultipliersWith OR / XOR Pulse Combining Techniques,” IEEE Transactions on Electron Devices, vol. 63, no. 3, pp. 1105–1110, 2016.
en
dc.relation.hasversion
O. Almer, N. A.W. Dutton, T. A. Abbas, S. Gnecchi, and R. K. Henderson, “4-PAM Visible Light Communications with a XOR-tree Digital Silicon Photomultiplier,” in IEEE Summer Topicals Meeting Series, 2015, pp. 2–3.
en
dc.relation.hasversion
N. Dutton, J. Vergote, S. Gnecchi, L. Grant, D. Lee, S. Pellegrini, B. Rae, and R. Henderson, “Multiple-event direct to histogram TDC in 65nm FPGA technology,” Ph.D. Research in Microelectronics and Electronics (PRIME), 2014 10th Conference on, pp. 1–5, 2014.
en
dc.relation.hasversion
N. A. W. Dutton, S. Gnecchi, L. Parmesan, A. J. Holmes, B. Rae, L. A. Grant, and R. K. Henderson, “A Time-Correlated Single-Photon-Counting Sensor with 14GS/s Histogramming Time-to-Digital Converter,” in Solid- State Circuits Conference - (ISSCC), 2015 IEEE International, 2015, pp. 204–206.
en
dc.relation.hasversion
O. Almer, D. Tsonev, N. A. W. Dutton, T. A. Abbas, S. Videv, S. Gnecchi, H. Haas, and R. K. Henderson, “A SPAD-based Visible Light Communications Receiver Employing Higher Order Modulation Schemes,” IEEE Globecom, 2015.
en
dc.relation.hasversion
N. A.W. Dutton, I. Gyongy, L. Parmesan, S. Gnecchi, N. Calder, B. R. Rae, S. Pellegrini, L. A. Grant, and R. K. Henderson, “A SPAD-based QVGA image sensor for singlephoton counting and quanta imaging,” IEEE Transactions on Electron Devices, vol. 63, no. 1, pp. 189–196, 2016.
en
dc.relation.hasversion
N. A. Dutton, L. Parmesan, S. Gnecchi, I. Gyongy, N. J. Calder, B. R. Rae, L. A. Grant, and R. K. Henderson, “Oversampled ITOF Imaging Techniques using SPADbased Quanta Image Sensors,” International Image Sensor Workshop, 2015
en
dc.relation.hasversion
N. A. Dutton, R. K. Henderson, and S. Gnecchi, “TIME TO DIGITAL CONVERTER AND APPLICATIONS THEREOF,” 2015.
en
dc.rights.embargodate
2100-12-31
dc.subject
SiPM
en
dc.subject
dSiPM
en
dc.subject
LiDAR
en
dc.subject
ToF
en
dc.subject
SPAD
en
dc.title
Analysis and optimisation of high throughput digital silicon photomultipliers
en
dc.type
Thesis or Dissertation
en
dc.type.qualificationlevel
Doctoral
en
dc.type.qualificationname
PhD Doctor of Philosophy
en
dcterms.accessRights
Restricted Access
en

Files

Original bundle

Now showing 1 - 1 of 1
Name:
Gnecchi2017.pdf
Size:
30.51 MB
Format:
Adobe Portable Document Format

This item appears in the following Collection(s)