Title :
Ultra Storage-Efficient Time Digitizer for Pseudorandom Single Photon Counter Implemented on a Field-Programmable Gate Array
Author :
Haiting Tian ; Fernando, S. ; Hock Wei Soon ; Zhang Qiang ; Chunxi Zhang ; Yajun Ha ; Nanguang Chen
Author_Institution :
Div. of Bioeng., Nat. Univ. of Singapore, Singapore, Singapore
Abstract :
Pseudorandom single photon counting is a novel time-resolved optical measurement method, which is advantageous over convention techniques in terms of data-acquisition speed and system cost. As a critical component of the pseudorandom single photon counter, the photon arriving time digitizer should be storage efficient for a high photon counting rate, while maintaining good time accuracy. We report an ultra storage-efficient time digitizer for a pseudorandom single photon counter in this paper, which is based on the asynchronous serial communication and can store the arriving time of every photon in 1-b memory space. In addition, a novel comb-wave modulator is proposed to achieve the dc balance required for asynchronous serial communication. Our prototype implemented on field-programmable gate arrays provides a time resolution of 400 ps. It can register up to 4.2-Giga photon arriving time tags with 1024 ?? 32-b memory space.
Keywords :
analogue-digital conversion; asynchronous circuits; biomedical electronics; data acquisition; field programmable gate arrays; photon counting; time resolved spectra; asynchronous serial communication; comb-wave modulator; data-acquisition speed; dc balance; field-programmable gate array; pseudorandom single photon counter; storage capacity 1 bit; time 400 ps; time-resolved optical measurement method; ultrastorage-efficient time digitizer; Biomedical engineering; Biomedical measurements; Biomedical optical imaging; Counting circuits; Field programmable gate arrays; Optical arrays; Optical scattering; Time measurement; Tomography; US Department of Transportation; Asynchronous serial communication; single photon counter; time digitizer;
Journal_Title :
Biomedical Circuits and Systems, IEEE Transactions on
DOI :
10.1109/TBCAS.2009.2027026