A. Einstein, Relativity: The special and general theory, Translation 1920, 1916.

E. Hubble, A relation between distance and radial velocity among extra-galactic nebulae, Proceedings of the National Academy of Sciences of the United States of America, vol.15, p.1929

P. A. , Ade et al. planck 2015 results. xiii. cosmological parameters, Astron. Astrophys, vol.594, p.13, 2016.

C. Patrignani, The review of particle physics, p.40, 2017.

. Fermilab and . Fermilab, Annual report of the fermi national accelerator laboratory, The Astrophysical J, 1986.

V. C. Rubin and W. K. Ford, Rotation of the Andromeda Nebula from a Spectroscopic Survey of Emission Regions, The Astrophysical J, vol.159, p.379, 1970.

L. E. Strigari, J. S. Bullock, M. Kaplinghat, J. D. Simon, M. Geha et al., A common mass scale for satellite galaxies of the Milky Way, Nature, vol.454, p.10961097, 2008.

F. Zwicky, Die rotverschiebung von extragalaktischen nebeln, Helvetica Physica Acta, vol.6, p.1933

A. Gary, E. L. Lokas, and . Mamon, Dark matter distribution in the coma cluster from galaxy kinematics: breaking the mass-anisotropy degeneracy, Monthly Notice of the Royal Astronomical Society, vol.343, p.401412, 2003.

A. Eddington, C. Davidson, and F. Dyson, Phil. Trans. Roy. Soc, vol.220, p.290, 1919.

D. J. Fixsen, The temperature of the cosmic microwave background, The Astrophysical Journal, vol.707, issue.2, p.916, 2009.

J. Daniel and . Eisenstein, An analytic expression for the growth function in a at universe with a cosmological constant, Astrophys. J, 1997.

. York, The Sloan Digital Sky Survey: Technical Summary

P. Astrophysical, , vol.120, p.15791587, 2000.

G. Gamow, The origin of elements and the separation of galaxies, Phys. Rev, vol.74, p.505506, 1948.

M. Kawasaki, Revisiting big-bang nucleosynthesis constraints on dark-matter annihilation, Phys. Let. B, vol.751, p.246251, 2015.
DOI : 10.1016/j.physletb.2015.10.048

URL : https://doi.org/10.1016/j.physletb.2015.10.048

D. Huterer, . Daniel, and . Shafer, Dark energy two decades after: Observables, probes, consistency tests, Rept. Prog. Phys, vol.81, issue.1, p.16901, 2018.
DOI : 10.1088/1361-6633/aa997e

URL : http://arxiv.org/pdf/1709.01091

M. Kunz, S. Nesseris, and I. Sawicki, Constraints on dark-matter properties from large-scale structure, Phys. Rev, vol.94, issue.2, p.23510, 2016.
DOI : 10.1103/physrevd.94.023510

URL : https://link.aps.org/accepted/10.1103/PhysRevD.94.023510

G. Efstathiou, C. S. Frenk, S. D. White, and M. Davis, The evolution of large-scale structure in a universe dominated by cold dark matter, Astrophysical Journal, Part, vol.1, issue.1, p.371394, 1985.

P. Tisserand, Limits on the Macho Content of the Galactic Halo from the EROS-2 Survey of the Magellanic Clouds, Astron. Astrophys, vol.469, p.387404, 2007.
URL : https://hal.archives-ouvertes.fr/in2p3-00129466

A. De-rújula, S. L. Glashow, and U. Sarid, Charged dark matter, Nuclear Physics B, vol.333, p.173194, 1990.

S. R. Chivukula, A. G. Cohen, S. Dimopoulos, and T. P. Walker, Bounds on halo-particle interactions from interstellar calorimetry, Physical Review Letters, vol.65, p.957959, 1990.
DOI : 10.1103/physrevlett.65.957

J. L. Basdevant, R. Mochkovitch, J. Rich, M. Spiro, and A. Vidal-madjar, Is there room for changed dark matter, Physics Letters B, vol.234, p.395398, 1990.
DOI : 10.1016/0370-2693(90)91948-b

E. Gabrielli, L. Marzola, M. Raidal, and H. Veermäe, Dark matter and spin-1 millicharged particles, 2015.

S. W. Randall, M. Markevitch, D. Clowe, A. H. Gonzalez, and M. Bradac, Constraints on the Self-Interaction Cross-Section of Dark Matter from Numerical Simulations of the Merging Galaxy Cluster 1E 0657-56, Astrophys. J, vol.679, p.11731180, 2008.

D. Clowe, M. Bradac, A. H. Gonzalez, M. Markevitch, and W. Scott,

C. Randall, D. Jones, and . Zaritsky, A direct empirical proof of the existence of dark matter, Astrophys. J, vol.648, pp.109-113, 2006.

B. Audren, J. Lesgourgues, G. Mangano, P. D. Serpico, and T. Tram, Strongest model-independent bound on the lifetime of Dark Matter, JCAP, issue.12, p.28, 2014.
URL : https://hal.archives-ouvertes.fr/hal-01116335

C. B÷hm, P. Fayet, and R. Schaeer, Constraining dark matter candidates from structure formation, Physics Letters B, vol.518, p.814, 2001.

J. R. Primack and M. A. Gross, Hot dark matter in cosmology, p.287308, 2001.

V. S. Berezinsky, V. I. Dokuchaev, and Y. N. Eroshenko, Small-scale clumps of dark matter, Physics Uspekhi, vol.57, p.136, 2014.

D. J. Croton, V. Springel, S. D. White, G. De-lucia, C. S. Frenk et al., The many lives of active galactic nuclei: cooling ows, black holes and the luminosities and colours of galaxies, MNRAS, vol.365, pp.11-28, 2006.

M. Colless, G. Dalton, S. Maddox, W. Sutherland, P. Norberg et al., The 2dF Galaxy Redshift Survey: spectra and redshifts, vol.328, p.10391063, 2001.

J. L. Feng, Dark Matter Candidates from Particle Physics and Methods of Detection, Ann. Rev. Astron. Astrophys, vol.48, p.495545, 2010.

C. Alcock, The MACHO project: Microlensing results from 5.7 years of LMC observations, Astrophys. J, vol.542, p.281307, 2000.

A. Ringwald, Alternative dark matter candidates: Axions, PoS, vol.2016, p.81, 2016.

G. Jungman, M. Kamionkowski, and K. Griest, Supersymmetric dark matter, Phys. ReV, vol.267, p.195373, 1996.

N. Deutschmann, T. Flacke, and J. Kim, Current LHC Constraints on Minimal Universal Extra Dimensions. Phys. Lett, vol.771, p.515520, 2017.

S. Matsumoto, S. Mukhopadhyay, and Y. Tsai, Eective Theory of WIMP Dark Matter supplemented by Simplied Models: Singlet-like Majorana fermion case, Phys. Rev, vol.94, issue.6, p.65034, 2016.

. Albert-m-sirunyan, Search for dark matter in events with energetic, hadronically decaying top quarks and missing transverse momentum at ? s = 13 TeV, 2018.

. Vardan-khachatryan, Searches for invisible decays of the Higgs boson in pp collisions at ? s = 7, 8, and 13 TeV, JHEP, vol.02, p.135, 2017.

M. Cui, X. Pan, Q. Yuan, Y. Fan, and H. Zong, Revisit of cosmic ray antiprotons from dark matter annihilation with updated constraints on the background model from AMS-02 and collider data, 2018.

D. Hooper, P. Blasi, and P. D. Serpico, Pulsars as the Sources of High Energy Cosmic Ray Positrons, JCAP, p.25, 2009.

H. Abdalla, discovery of very high energy ?-ray emission from PKS 0625354, Mon. Not. Roy. Astron. Soc, 2018.
URL : https://hal.archives-ouvertes.fr/hal-01737884

G. A. Caliandro, The missing GeV ?-ray binary: Searching for HESS J0632+057 with Fermi-LAT, Mon. Not. Roy. Astron. Soc, vol.436, p.740, 2013.

H. Abdalla, Limits on Linelike Dark Matter Signatures in the 100 GeV to 2 TeV Energy Range Close to the Galactic Center, Phys. Rev. Lett, vol.117, issue.15, p.151302, 2016.

S. Bhandari, The SUrvey for Pulsars and Extragalactic Radio Bursts II: New FRB discoveries and their follow-up, Mon. Not. Roy. Astron. Soc, vol.475, issue.2, p.14271446, 2018.
URL : https://hal.archives-ouvertes.fr/hal-01703770

M. G. Aartsen, Search for Neutrinos from Dark Matter Self-Annihilations in the center of the Milky Way with 3 years of IceCube/DeepCore, Eur. Phys. J, vol.77, issue.9, p.627, 2017.

J. D. Lewin and P. F. Smith, Review of mathematics, numerical factors, and corrections for dark matter experiments based on elastic nuclear recoil, Astropart. Phys, vol.6, p.87112, 1996.

G. David, A. M. Cerdeno, and . Green, Direct detection of wimps. Particle dark matter, p.347369, 2010.

R. Agnese, Low-mass dark matter search with CDMSlite, Phys. Rev, vol.97, issue.2, p.22002, 2018.

A. Fieguth, M. Hoferichter, P. Klos, J. Menéndez, A. Schwenk et al., Discriminating WIMP-nucleus response functions in present and future XENON-like direct detection experiments, Physic Review D, 2018.

P. Agnes, Low-Mass Dark Matter Search with the DarkSide-50 Experiment, 2018.
URL : https://hal.archives-ouvertes.fr/hal-01730058

F. Petricca, First results on low-mass dark matter from the CRESST-III experiment, 2017.

P. Gondolo and G. Gelmini, Compatibility of DAMA dark matter detection with other searches, Phys. Rev, vol.71, p.123520, 2005.

R. W. Schnee, Introduction to dark matter experiments, Physics of the large and the small, TASI 09, proceedings of the Theoretical Advanced Study Institute in Elementary Particle Physics, p.775829, 2009.

J. Billard, Lecture 2, Ecole de GIF, 2016.

K. Abe, A measurement of the scintillation decay time constant of nuclear recoils in liquid xenon with the XMASS-I detector, JINST, vol.13, issue.12, p.12032, 2018.

B. Lehnert, DEAP-3600 Recent Dark Matter Results, 53rd Rencontres de Moriond on Cosmology, 2018.

D. S. Akerib, Projected WIMP sensitivity of the LUX-ZEPLIN (LZ) dark matter experiment, 2018.

X. Cui, Dark Matter Results From 54-Ton-Day Exposure of PandaX-II Experiment, Phys. Rev. Lett, vol.119, issue.18, p.181302, 2017.

P. Agnes, DarkSide-50 532-day Dark Matter Search with Low-Radioactivity Argon, 2018.
URL : https://hal.archives-ouvertes.fr/hal-01730060

P. N. Luke, Voltage assisted calorimetric ionization detector, J. Appl. Phys, vol.64, p.6858, 1988.

B. Neganov and V. Tromov, Voltage assisted calorimetric ionization detector, Otkrytia i izobretenia, vol.146, p.215, 1985.

R. Agnese, Results from the Super Cryogenic Dark Matter Search (SuperCDMS) experiment at Soudan, Phys. Rev. Lett, vol.120, p.61802, 2018.

C. Amole, Dark Matter Search Results from the PICO-60 C 3 F 8 Bubble Chamber, Phys. Rev. Lett, vol.118, issue.25, p.251301, 2017.

F. Seitz, On the theory of the bubble chamber, Physics of Fluids-PHYS FLUIDS, vol.1, p.213, 1958.

. , On the theory of the bubble chamber, Nucl.Instrum.Meth, vol.55, p.184204, 2005.

B. Schmidt, Muon-induced background in the EDELWEISS dark matter search, Astropart. Phys, vol.44, p.2839, 2013.
URL : https://hal.archives-ouvertes.fr/in2p3-00796374

;. C. Appendix and . Kefelian, Search for dark matter with edelweiss-iii excluding background from muoninduced neutrons. thesis, 2016.

Q. Arnaud, Détection directe de matière noire avec l'expérience EDELWEISS-III : étude des signaux induits par le piégeage de charges, analyse de données et caractérisation de la sensibilité des détecteurs cryogéniques aux WIMPs de basse masse, Jules Physique des particules Lyon, vol.1, 2015.

V. , Neutron background measurements in the underground laboratory of modane, Astropart. Phys, vol.9, p.163172, 1998.

R. Lemrani, Update of neutron studies in edelweiss, Phys. Conf. Ser, vol.39, p.145147, 2006.

. Thibault-main-de-boissière, Low mass WIMP and axion searches with the EDELWEISS experiement. Theses, 2015.

E. Armengaud, Performance of the EDELWEISS-III experiment for direct dark matter searches, JINST, vol.12, issue.08, p.8010, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01645699

E. Armengaud, Measurement of the cosmogenic activation of germanium detectors in EDELWEISS-III, Astropart. Phys, vol.91, p.5164, 2017.
URL : https://hal.archives-ouvertes.fr/in2p3-01345962

, Gamma interaction in the germanium

H. Bethe, Zur theorie des durchgangs schneller korpuskularstrahlen durch materie. Annalen der Physik, vol.397, p.325400, 1930.

G. T. Ewan and A. J. Tavendale, A High Resolution Lithium-Drift Germanium GammaRay Spectrometer, Nucl.Instr.Methods, vol.25, p.185, 1963.

O. Martineau, Calibration of the EDELWEISS Cryogenic Heat-and-ionisation Germanium Detectors for Dark Matter Search, NIM Phys. Res., A, issue.530, p.426439, 2004.
URL : https://hal.archives-ouvertes.fr/in2p3-00014074

A. Broniatowski, Intervalley Scattering of Hot Electrons in Germanium at Millikelvin Temperatures, JLTP, vol.176, p.860869, 2014.
URL : https://hal.archives-ouvertes.fr/in2p3-01061853

J. Billard, Characterization and optimization of EDELWEISS-III FID800 heat sensors, Proceedings, 16th Low Temperature Detectors Conference, 2015.

E. Haller, Instrumentation in astronomy viii. SPIE, vol.2198, p.630, 1994.

A. Broniatowski, A new high-background-rejection dark matter ge cryogenic detector, Phys. Lett. B, vol.681, p.305309, 2009.
URL : https://hal.archives-ouvertes.fr/in2p3-00381573

Q. Arnaud, Signals induced by charge-trapping in edelweiss d detectors: analytical modeling and applications, JINST, vol.11, 2016.

M. Schar, J. Lindhard, V. Nielsen, and P. Thomsen, Integral equations governing radiation eects, Mat. Fys. Medd, vol.33, p.10, 1963.

B. J. Scholz, A. E. Chavarria, J. I. Collar, P. Privitera, and A. E. Robinson, Measurement of the low-energy quenching factor in germanium using an 88 Y/Be photoneutron source, Phys. Rev, vol.94, issue.12, p.122003, 2016.

R. Agnese, First Dark Matter Constraints from SuperCDMS Single-Charge Sensitive Detectors, Phys. Rev. Lett, 2018.

Q. Arnaud, Optimizing EDELWEISS detectors for low-mass WIMP searches, Phys. Rev, vol.97, issue.2, p.22003, 2018.
URL : https://hal.archives-ouvertes.fr/hal-01703622

L. Hehn and A. , Improved edelweiss-iii sensitivity for low-mass wimps using a prole likelihood approach, The European Physical Journal C, vol.76, issue.10, p.548, 2016.

X. Defay, Recherche de matière noire au sein de l'expérience EDELWEISS avec des bolomètres germanium à double composante ionisation/chaleur : Rejet des évènements de surface avec la voie ionisation, 2008.

A. Jacholkowska, A. Broniatowski, and . Astronomie, Astrophysique Montpellier, vol.2, 2008.

Q. Arnaud, Signals induced by charge-trapping in EDELWEISS FID detectors: analytical modeling and applications, JINST, vol.11, issue.10, p.10008, 2016.
URL : https://hal.archives-ouvertes.fr/in2p3-01468429

R. Brun and F. Rademakers, ROOT-An Object Oriented Data Analysis Framework, AIHENP 96 Workshop, p.8186, 1996.

J. Astrom, Fracture processes studied in CRESST. NIM, 2006.

L. Chakravarti and R. , Handbook of Methods of Applied Statistics, p.392394, 1967.

. Kolmogorov-smirnov-table,

D. V. Poda, 100 Mo-enriched Li 2 MoO 4 scintillating bolometers for 0?2? decay search: From LUMINEU to CUPID-0/Mo projects, AIP Conf. Proc, vol.1894, issue.1, p.20017, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01645789

S. Marnieros, Controlling the Leakage-Current of Low Temperature Germanium Detectors Using XeF 2 Dry Etching, Proceedings, 15th Low Temperature Detectors Conference, 2013.

J. Billard, Private Communication, 2017.

S. Scorza, EDELWEISS-II, direct Dark Matter search experiment : rst data analysis and results, Jules Physique des Particules Lyon, vol.1, 2009.

G. Cowan, K. Cranmer, E. Gross, and O. Vitells, Asymptotic formulae for likelihood-based tests of new physics, Eur. Phys. J, vol.71, p.1554, 2011.