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Dive into the research topics where I. Bavykina is active.

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Featured researches published by I. Bavykina.


Astroparticle Physics | 2010

Discrimination of recoil backgrounds in scintillating calorimeters

R.F. Lang; G. Angloher; M. Bauer; I. Bavykina; A. Bento; Andy Brown; C. Bucci; C. Ciemniak; C. Coppi; G. Deuter; F. von Feilitzsch; D. Hauff; S. Henry; P. Huff; J. Imber; S. Ingleby; C. Isaila; J. Jochum; M. Kiefer; M. Kimmerle; H. Kraus; J.-C. Lanfranchi; M. Malek; R. McGowan; V.B. Mikhailik; E. Pantic; F. Petricca; S. Pfister; W. Potzel; F. Pröbst

The alpha decay of Po is a dangerous background to rare event searches. Here, we describe observations related to this alpha decay in the Cryogenic Rare Event Search with Superconducting Thermometers (CRESST). We find that lead nuclei show a scintillation light yield in our CaWO crystals of 0.0142±0.0013 relative to electrons of the same energy. We describe a way to discriminate this source of nuclear recoil background by means of a scintillating foil, and demonstrate its effectiveness. This leads to an observable difference in the pulse shape of the light detector, which can be used to tag these events. Differences in pulse shape of the phonon detector between lead and electron recoils are also extracted, opening the window to future additional background suppression techniques based on pulse shape discrimination in such experiments.


Progress in Particle and Nuclear Physics | 2011

The CRESST Dark Matter Search

J. Jochum; G. Angloher; M. Bauer; I. Bavykina; Andy Brown; C. Bucci; C. Ciemniak; G. Deuter; F. von Feilitzsch; D. Hauff; S. Henry; P. Huff; C. Isaila; M. Kiefer; M. Kimmerle; H. Kraus; Q. Kronseder; J.-C. Lanfranchi; V.B. Mikhailik; F. Petricca; S. Pfister; W. Potzel; F. Pröbst; S. Roth; K. Rottler; C. Sailer; K. Schäffner; J. Schmaler; S. Scholl; M. von Sivers

Abstract The aim of CRESST ( C ryogenic R are E vent S earch with S uperconducting T hermometers) is to search for particle dark matter via elastic scattering off nuclei. The experiment is located at the Laboratori Nazionali del Gran Sasso (LNGS), Italy, and it uses low-background cryogenic detectors with superconducting phase-transition thermometers for the direct detection of WIMP–nucleus scattering events.


arXiv: Instrumentation and Methods for Astrophysics | 2009

Status of the CRESST Dark Matter Search

J. Schmaler; G. Angloher; M. Bauer; I. Bavykina; A. Bento; Andy Brown; C. Bucci; C. Ciemniak; C. Coppi; G. Deuter; F. von Feilitzsch; D. Hauff; S. Henry; P. Huff; J. Imber; S. Ingleby; C. Isaila; J. Jochum; M. Kiefer; M. Kimmerle; H. Kraus; J.-C. Lanfranchi; R.F. Lang; M. Malek; R. McGowan; V.B. Mikhailik; E. Pantic; F. Petricca; S. Pfister; W. Potzel

The CRESST experiment aims for a detection of dark matter in the form of WIMPs. These particles are expected to scatter elastically off the nuclei of a target material, thereby depositing energy on the recoiling nucleus. CRESST uses scintillating CaWO4 crystals as such a target. The energy deposited by an interacting particle is primarily converted to phonons which are detected by transition edge sensors. In addition, a small fraction of the interaction energy is emitted from the crystals in the form of scintillation light which is measured in coincidence with the phonon signal by a separate cryogenic light detector for each target crystal. The ratio of light to phonon energy permits the discrimination between the nuclear recoils expected from WIMPs and events from radioactive backgrounds which primarily lead to electron recoils. CRESST has shown the success of this method in a commissioning run in 2007 and, since then, further investigated possibilities for an even better suppression of backgrounds. Here, we report on a new class of background events observed in the course of this work. The consequences of this observation are discussed and we present the current status of the experiment.


arXiv: Instrumentation and Methods for Astrophysics | 2009

Composite CaWO4 Detectors for the CRESST‐II Experiment

M. Kiefer; G. Angloher; M. Bauer; I. Bavykina; A. Bento; Andy Brown; C. Bucci; C. Ciemniak; C. Coppi; G. Deuter; F. von Feilitzsch; D. Hauff; S. Henry; P. Huff; J. Imber; S. Ingleby; C. Isaila; J. Jochum; M. Kimmerle; H. Kraus; J.-C. Lanfranchi; R.F. Lang; M. Malek; R. McGowan; V.B. Mikhailik; E. Pantic; F. Petricca; S. Pfister; W. Potzel; F. Pröbst

CRESST‐II, standing for Cryogenic Rare Events Search with Superconducting Thermometers phase II, is an experiment searching for Dark Matter. In the LNGS facility in Gran Sasso, Italy, a cryogenic detector setup is operated in order to detect WIMPs by elastic scattering off nuclei, generating phononic lattice excitations and scintillation light. The thermometers used in the experiment consist of a tungsten thin‐film structure evaporated onto the CaWO4 absorber crystal. The process of evaporation causes a decrease in the scintillation light output. This, together with the need of a big‐scale detector production for the upcoming EURECA experiment lead to investigations for producing thermometers on smaller crystals which are glued onto the absorber crystal. In our Run 31 we tested composite detectors for the first time in the Gran Sasso setup. They seem to produce higher light yields as hoped and could provide an additional time based discrimination mechanism for low light yield clamp events.


Journal of Physics: Conference Series | 2006

Results and status of the CRESST experiment

W. Rau; G. Angloher; I. Bavykina; M. Bauer; C. Bucci; P. Christ; C. Coppi; C. Cozzini; F. von Feilitzsch; D Hau; S. Henry; C. Isaila; T. Jagemann; J. Jochum; M. Kimmerle; J Koenig; H. Kraus; B. Majorovits; V.B. Mikhailik; J. Ninkovic; E. Pantic; F. Petricca; W. Potzel; F. Pröbst; Y. Ramachers; M. Razeti; K. Rottler; S. Scholl; W. Seidel; M. Stark

CRESST (Cryogenic Rare Event Search with Superconducting Thermometers) employs cryogenic detectors for the direct search for weakly interacting massive dark matter particles (WIMPs). In the second phase of the experiment scintillating calcium tungstate crystals are used to discriminate background by means of different light yield for background and WIMP signals. After first results with this novel technique have been obtained, the experimental setup is being upgraded for further background reduction and larger target mass. The results and present status of the experiment will be presented.


European Physical Journal C | 2012

Results from 730 kg days of the CRESST-II Dark Matter Search

G. Angloher; M. Bauer; I. Bavykina; A. Bento; C. Bucci; C. Ciemniak; G. Deuter; F. von Feilitzsch; D. Hauff; P. Huff; C. Isaila; J. Jochum; M. Kiefer; M. Kimmerle; J.-C. Lanfranchi; F. Petricca; S. Pfister; W. Potzel; F. Pröbst; F. Reindl; S. Roth; K. Rottler; C. Sailer; K. Schäffner; J. Schmaler; S. Scholl; W. Seidel; M. v. Sivers; L. Stodolsky; C. Strandhagen


Astroparticle Physics | 2009

Commissioning run of the CRESST-II dark matter search

G. Angloher; M. Bauer; I. Bavykina; A. Bento; Andy Brown; C. Bucci; C. Ciemniak; C. Coppi; G. Deuter; F. von Feilitzsch; D. Hauff; S. Henry; P. Huff; J. Imber; S. Ingleby; C. Isaila; J. Jochum; M. Kiefer; M. Kimmerle; H. Kraus; J.-C. Lanfranchi; R.F. Lang; B. Majorovits; M. Malek; R. McGowan; V.B. Mikhailik; E. Pantic; F. Petricca; S. Pfister; W. Potzel


Astroparticle Physics | 2010

Electron and gamma background in CRESST detectors

R.F. Lang; G. Angloher; M. Bauer; I. Bavykina; A. Bento; Andy Brown; C. Bucci; C. Ciemniak; C. Coppi; G. Deuter; F. von Feilitzsch; D. Hauff; S. Henry; P. Huff; J. Imber; S. Ingleby; C. Isaila; J. Jochum; M. Kiefer; M. Kimmerle; H. Kraus; J.-C. Lanfranchi; B. Majorovits; M. Malek; R. McGowan; V.B. Mikhailik; E. Pantic; F. Petricca; S. Pfister; W. Potzel


arXiv: Nuclear Experiment | 2009

Scintillator Non-Proportionality and Gamma Quenching in CaWO4

R.F. Lang; S. Scholl; M. Kimmerle; R. McGowan; J. Imber; L. Stodolsky; V.B. Mikhailik; J.-C. Lanfranchi; C. Ciemniak; S. Roth; I. Usherov; M. Bauer; M. Malek; W. Westphal; C. Coppi; S. Pfister; M. Kiefer; E. Pantic; J. Schmaler; Andy Brown; K. Rottler; P. Huff; C. Isaila; J. Jochum; D. Hauff; S. Ingleby; F. Petricca; F. von Feilitzsch; W. Potzel; C. Bucci


Czechoslovak Journal of Physics | 2006

Dark-matter search with CRESST

W. Westphal; C. Coppi; F. von Feilitzsch; C. Isaila; J. König; W. Potzel; W. Rau; M. Razeti; M. Stark; H. Wulandari; G. Angloher; I. Bavykina; P. Christ; D. Hauff; J. Ninkovic; E. Pantic; F. Petricca; F. Pröbst; W. Seidel; L. Stodolsky; M. Bauer; T. Jagemann; J. Jochum; K. Rottler; S. Scholl; C. Bucci; C. Cozzini; S. Henry; H. Kraus; B. Majorovits

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M. Bauer

University of Tübingen

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G. Deuter

University of Tübingen

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M. Kimmerle

University of Tübingen

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H. Kraus

University of Oxford

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S. Henry

University of Oxford

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