% IMPORTANT: The following is UTF-8 encoded. This means that in the presence
% of non-ASCII characters, it will not work with BibTeX 0.99 or older.
% Instead, you should use an up-to-date BibTeX implementation like “bibtex8” or
% “biber”.
@ARTICLE{Abramowicz:205981,
author = {Abramowicz, H. and Abusleme, A. and Afanaciev, K. and
Aguilar, J. and Alvarez, E. and Avila, D. and Benhammou, Y.
and Bortko, L. and Borysov, O. and Bergholz, M. and
Bozovic-Jelisavcic, I. and Castro, E. and Chelkov, G. and
Coca, C. and Daniluk, W. and Dumitru, L. and Elsener, K. and
Fadeyev, V. and Firlej, M. and Firu, E. and Fiutowski, T.
and Ghenescu, V. and Gostkin, M. and Henschel, H. and Idzik,
M. and Ishikawa, A. and Kananov, S. and Kollowa, S. and
Kotov, S. and Kotula, J. and Kozhevnikov, D. and Kruchonok,
V. and Krupa, B. and Kulis, Sz. and Lange, W. and Lesiak, T.
and Levy, A. and Levy, I. and Lohmann, W. and Lukic, S. and
Milke, C. and Moron, J. and Moszczynski, A. and Neagu, A. T.
and Novgorodova, O. and Oliwa, K. and Orlandea, M. and
Pandurovic, M. and Pawlik, B. and Preda, T. and
Przyborowski, D. and Rosenblat, O. and Sailer, A. and Sato,
Y. and Schumm, B. and Schuwalow, S. and Smiljanic, I. and
Smolyanskiy, P. and Swientek, K. and Teodorescu, E. and
Terlecki, P. and Wierba, W. and Wojton, T. and Yamaguchi, S.
and Yamamoto, H. and Zawiejski, L. and Zgura, I. S. and
Zhemchugov, A.},
collaboration = {{FCAL Collaboration}},
title = {{P}erformance of fully instrumented detector planes of the
forward calorimeter of a {L}inear {C}ollider detector},
journal = {Journal of Instrumentation},
volume = {05},
issn = {1748-0221},
address = {London},
publisher = {Inst. of Physics},
reportid = {PUBDB-2015-00514, arXiv:1411.4431},
pages = {P05009},
year = {2015},
note = {OA},
abstract = {Detector-plane prototypes of the very forward calorimetry
of a future detector at an $e^+e^-$ collider have been built
and their performance was measured in an electron beam. The
detector plane comprises silicon or GaAs pad sensors,
dedicated front-end and ADC ASICs, and an FPGA for data
concentration. Measurements of the signal-to-noise ratio for
different feedback schemes and the response as a function of
the position of the sensor are presented. A deconvolution
method is successfully applied, and a comparison of the
measured shower shape as a function of the absorber depth
with a Monte-Carlo simulation is given.},
keywords = {electron positron: linear collider (INSPIRE) / electron:
beam (INSPIRE) / numerical calculations: Monte Carlo
(INSPIRE) / showers: spatial distribution (INSPIRE) /
calorimeter (INSPIRE) / performance (INSPIRE) / electronics:
readout (INSPIRE) / semiconductor detector (INSPIRE) / noise
(INSPIRE) / data analysis method (INSPIRE)},
cin = {FLC},
ddc = {610},
cid = {I:(DE-H253)FLC-20120731},
pnm = {632 - Detector technology and systems (POF3-632)},
pid = {G:(DE-HGF)POF3-632},
experiment = {EXP:(DE-MLZ)NOSPEC-20140101},
typ = {PUB:(DE-HGF)16 / PUB:(DE-HGF)15},
eprint = {1411.4431},
howpublished = {arXiv:1411.4431},
archivePrefix = {arXiv},
SLACcitation = {$\%\%CITATION$ = $arXiv:1411.4431;\%\%$},
doi = {10.1088/1748-0221/10/05/P05009},
url = {https://bib-pubdb1.desy.de/record/205981},
}