Characterization of 30 documentclass[12pt]{minimal} usepackage{amsmath} usepackage{wasysym} usepackage{amsfonts} usepackage{amssymb} usepackage{amsbsy} usepackage{mathrsfs} usepackage{upgreek} setlength{oddsidemargin}{-69pt} egin{document}$$^{76}$$end{document}76Ge enriched Broad Energy
Characterization of 30 documentclass[12pt]{minimal} usepackage{amsmath} usepackage{wasysym} usepackage{amsfonts} usepackage{amssymb} usepackage{amsbsy} usepackage{mathrsfs} usepackage{upgreek} setlength{oddsidemargin}{-69pt} egin{document}$$^{76}$$end{document}76Ge enriched Broad Energy
复制标题
30 documentclass[12pt]{minimal} usepackage{amsmath} usepackage{wasysym} usepackage{amsfonts} usepackage{amssymb} usepackage{amsbsy} usepackage{mathrsfs} usepackage{upgreek} setlength{ 的特征
DOI:
--
复制
发表时间:
2019
期刊:
影响因子:
--
通讯作者:
G. Zuzel
中科院分区:
文献类型:
--
作者:
M. Agostini;A. Bakalyarov;E. Andreotti;M. Balata;I. Barabanov;L. Baudis;N. Barros;C. Bauer;E. Bellotti;S. Belogurov;G. Benato;A. Bettini;L. Bezrukov;T. Bode;D. Borowicz;V. Brudanin;R. Brugnera;D. Budjáš;A. Caldwell;C. Cattadori;A. Chernogorov;V. D’Andrea;E. Demidova;N. Di Marco;A. Domula;E. Doroshkevich;V. Egorov;R. Falkenstein;K. Freund;A. Gangapshev;A. Garfagnini;C. Gooch;P. Grabmayr;V. Gurentsov;K. Gusev;J. Hakenmüller;A. Hegai;M. Heisel;S. Hemmer;R. Hiller;W. Hofmann;M. Hult;L. Inzhechik;J. J. Csáthy;J. Jochum;M. Junker;V. Kazalov;Y. Kermaïdic;T. Kihm;I. Kirpichnikov;A. Kirsch;A. Kish;A. Klimenko;R. Kneissl;K. Knöpfle;O. Kochetov;V. Kornoukhov;V. Kuzminov;M. Laubenstein;A. Lazzaro;B. Lehnert;Y. Liao;M. Lindner;I. Lippi;A. Lubashevskiy;B. Lubsandorzhiev;G. Lutter;C. Macolino;B. Majorovits;W. Maneschg;G. Marissens;M. Miloradovic;R. Mingazheva;M. Misiaszek;P. Moseev;I. Nemchenok;K. Panas;L. Pandola;K. Pelczar;A. Pullia;C. Ransom;S. Riboldi;N. Rumyantseva;C. Sada;F. Salamida;M. Salathe;C. Schmitt;B. Schneider;S. Schönert;A. Schütz;O. Schulz;B. Schwingenheuer;O. Selivanenko;E. Shevchik;M. Shirchenko;H. Simgen;A. Smolnikov;L. Stanco;L. Vanhoefer;A. Vasenko;A. Veresnikova;K. von Sturm;V. Wagner;A. Wegmann;T. Wester;C. Wiesinger;M. Wójcik;E. Yanovich;I. Zhitnikov;S. Zhukov;D. Zinatulina;A. Zsigmond;K. Zuber;G. Zuzel
The GERmanium Detector Array (Gerda) is a low background experiment located at the Laboratori Nazionali del Gran Sasso in Italy, which searches for neutrinoless double-beta decay of 76documentclass[12pt]{minimal} usepackage{amsmath} usepackage{wasysym} usepackage{amsfonts} usepackage{amssymb} usepackage{amsbsy} usepackage{mathrsfs} usepackage{upgreek} setlength{oddsidemargin}{-69pt} egin{document}$$^{76}$$end{document}Ge into 76documentclass[12pt]{minimal} usepackage{amsmath} usepackage{wasysym} usepackage{amsfonts} usepackage{amssymb} usepackage{amsbsy} usepackage{mathrsfs} usepackage{upgreek} setlength{oddsidemargin}{-69pt} egin{document}$$^{76}$$end{document}Se+2e-documentclass[12pt]{minimal} usepackage{amsmath} usepackage{wasysym} usepackage{amsfonts} usepackage{amssymb} usepackage{amsbsy} usepackage{mathrsfs} usepackage{upgreek} setlength{oddsidemargin}{-69pt} egin{document}$$^-$$end{document}. Gerda has been conceived in two phases. Phase II, which started in December 2015, features several novelties including 30 new 76Ge enriched detectors. These were manufactured according to the Broad Energy Germanium (BEGe) detector design that has a better background discrimination capability and energy resolution compared to formerly widely-used types. Prior to their installation, the new BEGe detectors were mounted in vacuum cryostats and characterized in detail in the Hades underground laboratory in Belgium. This paper describes the properties and the overall performance of these detectors during operation in vacuum. The characterization campaign provided not only direct input for Gerda Phase II data collection and analyses, but also allowed to study detector phenomena, detector correlations as well as to test the accuracy of pulse shape simulation codes.