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Featured researches published by D. Maire.


Journal of Instrumentation | 2017

First detection of radon progeny recoil tracks by MIMAC

Q. Riffard; D. Santos; O. Guillaudin; G. Bosson; O. Bourrion; J. Bouvier; T. Descombes; C. Fourel; J.F. Muraz; L. Lebreton; D. Maire; P. Colas; E. Ferrer-Ribas; I. Giomataris; J. Busto; D. Fouchez; J. Brunner; C. Tao

The MIMAC experiment is a


arXiv: Instrumentation and Detectors | 2013

MIMAC: MIcro-tpc MAtrix of Chambers for dark matter directional detection

D. Santos; G. Bosson; J. L. Bouly; O. Bourrion; Ch. Fourel; O. Guillaudin; J. Lamblin; F. Mayet; J. F. Muraz; J. P. Richer; Q. Riffard; L. Lebreton; D. Maire; J. Busto; J. Brunner; D. Fouchez

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Journal of Instrumentation | 2014

In situ measurement of the electron drift velocity for upcoming directional Dark Matter detectors

J. Billard; F. Mayet; G. Bosson; O. Bourrion; O. Guillaudin; J. Lamblin; J. P. Richer; Q. Riffard; D. Santos; F. J. Iguaz; L. Lebreton; D. Maire

-TPC matrix project for directional dark matter search. Directional detection is a strategy based on the measurement of the WIMP flux anisotropy due to the solar system motion with respect to the dark matter halo. The main purpose of MIMAC project is the measurement of the energy and the direction of nuclear recoils in 3D produced by elastic scattering of WIMPs. Since June 2012 a bi-chamber prototype is operating at the Modane underground laboratory. In this paper, we report the first ionization energy and 3D track observations of nuclear recoils produced by the radon progeny. This measurement shows the capability of the MIMAC detector and opens the possibility to explore the low energy recoil directionality signature.


arXiv: Instrumentation and Detectors | 2013

MIMAC: A micro-tpc matrix for dark matter directional detection

D. Santos; J. Billard; G. Bosson; J. L. Bouly; O. Bourrion; Ch. Fourel; O. Guillaudin; J. Lamblin; J. F. Muraz; F. Mayet; J. P. Richer; Q. Riffard; E. Ferrer; I. Giomataris; F. J. Iguaz; L. Lebreton; D. Maire

Directional detection of non-baryonic Dark Matter is a promising search strategy for discriminating WIMP events from neutrons, the ultimate background for dark matter direct detection. This strategy requires both a precise measurement of the energy down to a few keV and 3D reconstruction of tracks down to a few mm. The MIMAC (MIcro-tpc MAtrix of Chambers) collaboration has developed in the last years an original prototype detector based on the direct coupling of large pixelized micromegas with a special developed fast self-triggered electronics showing the feasibility of a new generation of directional detectors. The first bi-chamber prototype has been installed at Modane, underground laboratory in June 2012. The first undergournd background events, the gain stability and calibration are shown. The first spectrum of nuclear recoils showing 3D tracks coming from the radon progeny is presented.


Journal of Instrumentation | 2016

MIMAC low energy electron-recoil discrimination measured with fast neutrons

Q. Riffard; D. Santos; O. Guillaudin; G. Bosson; O. Bourrion; J. Bouvier; T. Descombes; J. F. Muraz; L. Lebreton; D. Maire; P. Colas; I. Giomataris; J. Busto; D. Fouchez; J. Brunner; C. Tao

Three-dimensional track reconstruction is a key issue for directional Dark Matter detection and it requires a precise knowledge of the electron drift velocity. Magboltz simulations are known to give a good evaluation of this parameter. However, large TPC operated underground on long time scale may be characterized by an effective electron drift velocity that may differ from the value evaluated by simulation. In situ measurement of this key parameter is hence needed as it is a way to avoid bias in the 3D track reconstruction. We present a dedicated method for the measurement of the electron drift velocity with the MIMAC detector. It is tested on two gas mixtures: CF4 and CF4+CHF3. The latter has been chosen for the MIMAC detector as we expect that adding CHF3 to pure CF4 will lower the electron drift velocity. This is a key point for directional Dark Matter as the track sampling along the drift field will be improved while keeping almost the same Fluorine content of the gas mixture. We show that the drift velocity at 50 mbar is reduced by a factor of about 5 when adding 30% of CHF3.


IEEE Transactions on Nuclear Science | 2014

First Measurement of a 127 keV Neutron Field with a

D. Maire; J. Billard; G. Bosson; O. Bourrion; O. Guillaudin; J. Lamblin; L. Lebreton; F. Mayet; J. Médard; J. F. Muraz; M. Petit; J. P. Richer; Q. Riffard; D. Santos

The dark matter directional detection opens a new field in cosmology bringing the possibility to build a map of nuclear recoils that would be able to explore the galactic dark matter halo giving access to a particle characterization of such matter and the shape of the halo. The MIMAC (MIcro-tpc MAtrix of Chambers) collaboration has developed in the last years an original prototype detector based on the direct coupling of large pixelized micromegas with a devoted fast self-triggered electronics showing the feasibility of a new generation of directional detectors. The discovery potential of this search strategy is discussed and illustrated. In June 2012, the first bi-chamber prototype has been installed at Modane Underground Laboratory (LSM) and the first underground background events, the gain stability and calibration are shown.


international conference on advancements in nuclear instrumentation measurement methods and their applications | 2015

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D. Maire; G. Bosson; O. Guillaudin; L. Lebreton; J. F. Muraz; Ph. Querre; Q. Riffard; D. Santos

MIMAC (MIcro-TPC MAtrix of Chambers) is a directional WIMP Dark Matter detector project. Direct dark matter experiments need a high level of electron/recoil discrimination to search for nuclear recoils produced by WIMP-nucleus elastic scattering. In this paper, we proposed an original method for electron event rejection based on a multivariate analysis applied to experimental data acquired using monochromatic neutron fields. This analysis shows that a


international conference on advancements in nuclear instrumentation measurement methods and their applications | 2013

-TPC Spectrometer

D. Maire; J. Billard; G. Bosson; O. Bourrion; O. Guillaudin; J. Lamblin; L. Lebreton; F. Mayet; J. Medard; J.F. Muraz; M. Petit; J.-P. Richer; Q. Riffard; D. Santos

10^5


arXiv: Instrumentation and Methods for Astrophysics | 2013

Neutron fluence and energy reconstruction with the LNE-IRSN/MIMAC recoil detector microTPC at 27 keV

F. Mayet; J. Billard; G. Bosson; O. Bourrion; O. Guillaudin; J. Lamblin; J. P. Richer; Q. Riffard; D. Santos; F. J. Iguaz; L. Lebreton; D. Maire

rejection power is reachable for electron/recoil discrimination. Moreover, the efficiency was estimated by a Monte-Carlo simulation showing that a 105 electron rejection power is reached with a


arXiv: Instrumentation and Methods for Astrophysics | 2013

μ-TPC: A future standard instrument for low energy neutron field characterization

Q. Riffard; F. Mayet; J.F. Muraz; L. Lebreton; J. Lamblin; J.-P. Richer; D. Santos; J. Billard; O. Bourrion; J. Busto; G. Bosson; D. Maire; O. Guillaudin; J. Brunner; D. Fouchez

86.49\pm 0.17

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Dive into the D. Maire's collaboration.

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L. Lebreton

Institut de radioprotection et de sûreté nucléaire

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J. Billard

Massachusetts Institute of Technology

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D. Santos

Joseph Fourier University

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F. Mayet

Joseph Fourier University

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G. Bosson

Joseph Fourier University

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J. Lamblin

Joseph Fourier University

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J. P. Richer

Joseph Fourier University

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O. Bourrion

Joseph Fourier University

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O. Guillaudin

Joseph Fourier University

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Q. Riffard

Joseph Fourier University

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