dc.contributor.author |
Ambily, S |
|
dc.contributor.author |
Mayuresh, Sarpotdar |
|
dc.contributor.author |
Mathew, J |
|
dc.contributor.author |
Sreejith, A. G |
|
dc.contributor.author |
Nirmal, K |
|
dc.contributor.author |
Prakash, A |
|
dc.contributor.author |
Safonova, M |
|
dc.contributor.author |
Murthy, J |
|
dc.date.accessioned |
2020-11-27T12:53:45Z |
|
dc.date.available |
2020-11-27T12:53:45Z |
|
dc.date.issued |
2017-03 |
|
dc.identifier.citation |
Journal of Astronomical Instrumentation, Vol. 6, No. 1, 1750002 |
en_US |
dc.identifier.issn |
2251-1725 |
|
dc.identifier.uri |
http://prints.iiap.res.in/handle/2248/7501 |
|
dc.description |
Restricted Access © World Scientific Publishing Co http://dx.doi.org/10.1142/S2251171717500027 |
en_US |
dc.description.abstract |
MCP-based detectors are widely used in the ultraviolet (UV) region due to their low noise levels, high sensitivity
and good spatial and temporal resolution. We have developed a compact near-UV (NUV) detector for highaltitude balloon and space flights, using off-the-shelf MCP, CMOS sensor, and optics. The detector is designed
to be capable of working in the direct frame transfer mode as well in the photon-counting mode for single photon
event detection. The identification and centroiding of each photon event are done using an FPGA-based data
acquisition and real-time processing system. In this paper, we discuss various algorithms and methods used in
both operating modes, as well as their implementation on the hardware. |
en_US |
dc.language.iso |
en |
en_US |
dc.publisher |
World Scientific Publishing Co. |
en_US |
dc.subject |
Detectors |
en_US |
dc.subject |
Photon counting |
en_US |
dc.subject |
FPGA |
en_US |
dc.subject |
CMOS |
en_US |
dc.title |
Development of Data Acquisition Methods for an FPGA-Based Photon Counting Detector |
en_US |
dc.type |
Article |
en_US |