P. Le-logiciel-crysalis and . Ro, permet l'analyse directe des images 2D de diffraction de monocristaux. Ce logiciel, hautement automatisé, peut déterminer les paramètres et le type de maille, raffine la position des atomes dans la maille

. Bibliographie,

A. Benoit, J. Boucherle, P. Convert, J. Flouquet, J. Palleau et al., Magnetic structure of the compound CeIn, vol.3, pp.293-295, 1980.

E. Moshopoulou, J. Sarrao, P. Pagliuso, N. O. Moreno, J. Thompson et al., Ibberson Applied Physics A, vol.74, pp.895-897, 2002.

T. Klimczuk, O. Walter, L. Müchler, J. W. Krizan, F. Kinnart et al., Cava Journal of Physics : Condensed Matter, vol.26, 2014.

Y. ?nuki, Physics Of Heavy Fermions : Heavy Fermions And Strongly Correlated Electrons Systems, 2018.

L. F. Bates, S. J. Leach, and R. G. , Loasby Proceedings of the Physical Society B, vol.68, p.859, 1955.

M. P. Sarachik, E. Corenzwit, and L. D. , Longinotti Physical Review, vol.135, p.4, 1964.

W. J. De-haas, J. Boer, and G. J. Van-dën-berg-physica, , vol.1, pp.1115-1124, 1934.

, J. Kondo Progress of Theoretical Physics, vol.32, 1964.

P. W. , Anderson Journal of Physics C : Solid State Physics, vol.3, p.2436, 1970.

, P. Nozieres Journal of Low Temperature Physics, vol.17, p.31, 1974.

K. G. Wilson, Collective properties of physical systems, Nobel Symposium, vol.24, p.68, 1974.

M. A. Ruderman and C. Kittel, Indirect exchange coupling of nuclear magnetic moments by conduction electrons, Physical Review, vol.96, p.99, 1954.

T. Kasuya, A theory of metallic ferro-and antiferromagnetism on zener's model, Progress of Theoretical Physics, vol.16, p.45, 1956.

K. Yoshida, Magnetic properties of Cu-Mn alloys, Physical Review, vol.106, 1957.

K. Tokuoka, Complex magnetic phase diagram of ferromagnetic CeNiSb 3, 2018.

S. Doniach, The Kondo lattice and weak antiferromagnetism, Physica, 91B, pp.231-234, 1977.

F. Grosche, S. Julian, N. Mathur, and G. Lonzarich, Magnetic and superconducting phases of CePd 2 Si 2, Physica B, pp.50-52, 1996.

R. Settai, T. Kubo, T. Shiromoto, D. Honda, H. Shishido et al., Change of the Fermi surface across the critical pressure in CeIn 3 : The de Haas-van Alphen study under pressure, Journal of the Physical Society of Japan, vol.74, pp.3016-3026, 2005.

G. Knebel, D. Aoki, J. Brison, and J. Flouquet, The quantum critical point in CeRhIn 5 : A resistivity study, Journal of the Physical Society of Japan, vol.77, p.114704, 2008.

V. A. Sidorov, X. Lu, T. Park, H. Lee, P. H. Tobash et al., Pressure phase diagram and quantum criticality of CePt 2 In 7 single crystals, Physical Review B, vol.88, p.20503, 2013.

P. Gegenwart, Q. Si, and F. Steglich, Quantum criticality in heavy-fermion metals, Nature Physics, vol.4, pp.186-197, 2008.

S. Sachdev, Quantum Phase Transitions, 2000.

L. D. Carr, Understanding Quantum Phase Transitions, 2010.

Q. Si, S. Rabello, K. Ingersent, and J. L. Smith, Locally critical quantum phase transitions in strongly correlated metals, Nature, vol.413, pp.804-808, 2001.

L. Jiao, Y. Chen, Y. Kohama, D. Graf, E. D. Bauer et al., Fermi surface reconstruction and multiple quantum phase transitions in the antiferromagnet CeRhIn 5, Proceedings of the National Academy of Sciences, vol.112, pp.673-678, 2015.

M. Lee, A. Husmann, T. F. Rosenbaum, and G. Aeppli, High resolution study of magnetic ordering at absolute zero, Physical Review Letters, vol.92, p.187201, 2004.

H. Shishido, R. Settai, H. Harima, and Y. ?nuki, A drastic change of the Fermi surface at a critical pressure in CeRhIn 5 : dHvA study under pressure, Journal of the Physical Society of Japan, vol.74, pp.1103-1106, 2005.

S. Watanabe and K. Miyake, Roles of critical valence fluctuations in Ce-and Yb-based heavy fermion metals, Journal of Physics : Condensed Matter, vol.23, p.94217, 2011.

S. Watanabe, A. Tsuruta, K. Miyake, and J. Flouquet, Magnetic-field control of quantum critical points of valence transition, Physical Review Letters, vol.100, p.236401, 2008.

S. Watanabe and K. Miyake, New universality class of quantum criticality in Ce-and Yb-based heavy fermions, Journal of Physics : Condensed Matter, vol.24, p.294208, 2012.

H. Q. Yuan, F. M. Grosche, M. Deppe, C. Geibel, G. Sparn et al., Observation of two distinct superconducting phases in CeCu 2 Si 2, Science, vol.302, pp.2104-2107, 2003.

S. Watanabe and K. Miyake, Origin of drastic change of Fermi surface and transport anomalies in CeRhIn 5 under pressure, The Physical Society of Japan, vol.79, p.33707, 2010.

A. T. Holmes, D. Jaccard, and K. Miyake, Signatures of valence fluctuations in CeCu 2 Si 2 under high pressure, Physical Review B, vol.69, p.24508, 2004.

G. W. Scheerer, Z. Ren, S. Watanabe, G. Lapertot, D. Aoki et al., The dominant role of critical valence fluctuations on high T c superconductivity in heavy fermions, Nature Partner Journals : Quantum Materials, vol.3, p.41, 2018.

Y. H. Matsuda, J. L. Her, T. Inami, K. Ohwada, Z. W. Ouyang et al., XMCD spectroscopy on valence fluctuating and heavy fermion compounds in very high magnetic fields up to 40 T, Journal of Physics : Conference Series, 2009.

S. Watanabe, A. Tsuruta, K. Miyake, and J. Flouquet, Valence fluctuations revealed by magnetic field and pressure scans : Comparison with experiments in YbXCu 4 (X=In, Ag, Cd) and CeYIn 5 (Y=Ir, Rh), Journal of the Physical Society of Japan, vol.78, 2009.

K. Matsubayashi, T. Hirayama, T. Yamashita, S. Ohara, N. Kawamura et al., Pressure-induced valence crossover and novel metamagnetic behavior near the antiferromagnetic quantum phase transition of YbNi 3 Ga 9, Physical Review Letters, vol.114, p.86401, 2015.

S. Watanabe and K. Miyake, New quantum criticality revealed under pressure, Japanese Journal of Applied Physics, vol.56, pp.5-6, 2017.

N. Harrison, S. E. Sebastian, C. H. Mielke, A. Paris, M. J. Gordon et al., Fermi surface of CeIn 3 above the Néel critical field, Physical Review Letters, vol.99, p.56401, 2007.

T. Ebihara, N. Harrison, M. Jaime, S. Uji, and J. Lashley, Emergent fluctuation hot spots on the Fermi surface of CeIn 3 in strong magnetic fields, Physical Review Letters, vol.93, p.246401, 2004.

S. E. Sebastian, N. Harrison, C. D. Batista, S. A. Trugman, V. Fanelli et al., Heavy holes as a precursor to superconductivity in antiferromagnetic CeIn 3, Proceedings of the National Academy of Sciences, vol.106, pp.7741-7744, 2009.

K. M. Purcell, D. Graf, M. Kano, J. Bourg, E. C. Palm et al., Pressure evolution of a fieldinduced Fermi surface reconstruction and of the Néel critical field in CeIn 3, Physical Review B, vol.79, p.214428, 2009.

H. Shishido, R. Settai, D. Aoki, S. Ikeda, H. Nakawaki et al., Fermi surface, magnetic and superconducting properties of LaRhIn 5 and CeTIn 5 (T : Co, Rh and Ir), Journal of the Physical Society of Japan, vol.71, pp.162-173, 2002.

S. Raymond, E. Ressouche, G. Knebel, D. Aoki, and J. Flouquet, Magnetic structure of CeRhIn 5 under magnetic field, Journal of Physics : Condensed Matter, 2007.

H. Shishido, R. Settai, S. Araki, T. Ueda, Y. Inada et al., Evolution of pressure-induced heavy fermion state and superconductivity in CeRhIn 5 : A high-pressure fermi surface study, Physical Review Letters, vol.84, p.4986, 2000.

A. L. Cornelius, P. G. Pagliuso, M. F. Hundley, and J. L. Sarrao, Fieldinduced magnetic transitions in the quasi-two-dimensional heavy-fermion antiferromagnets Ce n RhIn 3n+2 (n = 1 or 2), Physical Review B, vol.64, p.144411, 2001.

Z. M. Kurenbaeva, E. V. Murashova, Y. D. Seropegin, H. Noël, and A. I. Tursina, The crystal structure of the new indide CePt 2 In 7 from powder data, vol.16, pp.979-981, 2008.
URL : https://hal.archives-ouvertes.fr/hal-00417479

K. Götze, Y. Krupko, J. A. Bruin, J. Klotz, R. D. Hinlopen et al., Quasi-twodimensional Fermi surfaces with localized f electrons in the layered heavyfermion compound CePt 2 In 7, Physical Review B, vol.96, p.75138, 2017.

Y. Krupko, A. Demuer, S. Ota, Y. Hirose, R. Settai et al., Specific heat in high magnetic fields and magnetic phase diagram of CePt 2 In 7, Physical Review B, vol.93, p.85121, 2016.
URL : https://hal.archives-ouvertes.fr/hal-01993714

M. Månsson, K. Pr?a, Y. Sassa, P. H. Tobash, E. D. Bauer et al., Magnetic order in the 2D heavy-fermion system CePt 2 In 7 studied by µ + SR, Journal of Physics : Conference Series, vol.551, p.12028, 2014.

N. Warren, A. P. Dioguardi, A. C. Shockley, C. H. Lin, J. Crocker et al., Commensurate antiferromagnetism in CePt 2 In 7 , a nearly two-dimensional heavy fermion system, Physical Review B, vol.81, p.180403, 2010.

H. Sakai, Y. Tokunaga, S. Kambe, F. Ronning, E. D. Bauer et al., Coexistence of antiferromagnetism with superconductivity in CePt 2 In 7 : Microscopic phase diagram determined by 115 In NMR and NQR, Physical Review Letters, vol.112, p.206401, 2014.

M. M. Altarawneh, N. Harrison, R. D. Mcdonald, F. F. Balakirev, C. H. Mielke et al., Fermi surface of CePt 2 In 7 : A two-dimensional analog of CeIn 3, Physical Review B, vol.81, p.81103, 2011.

Y. Kamihara, H. Hiramatsu, M. Hirano, R. Kawamura, H. Yanagi et al., Iron-based layered superconductor : LaOFeP, vol.128, pp.10012-10013, 2006.

Y. Kamihara, T. Watanabe, M. Hirano, and H. Hosono, Iron-based layered superconductor La[O 1?x F x ]FeAs (x = 0.05-0.12) with T c = 26 K, Journal of the American Chemical Society, vol.130, issue.11, pp.3296-3297, 2008.

G. Wu, Y. Xie, H. Chen, M. Zhong, R. Liu et al., Superconductivity at 56 K in samarium-doped SrFeAsF, Journal of Physics : Condensed Matter, vol.21, p.142203, 2009.

H. Shishido, A. F. Bangura, A. I. Coldea, S. Tonegawa, K. Hashimoto et al., Evolution of the Fermi surface of BaFe 2 (As 1?x P x ) 2 on entering the superconducting dome, Physical Review Letters, vol.104, p.57008, 2010.

, Notes of Y. Matsuda at the Boulder School for Condensed Matter and Materials Physics in 2014

R. M. Fernandes, A. V. Chubukov, and J. Schmalian, What drives nematic order in iron-based superconductors ?, Nature Physics, vol.10, pp.97-104, 2014.

J. M. Tranquada, Modulated superfluid density in an iron-pnictide superconductor, Physics, vol.3, p.41, 2010.

A. S. Sefat, R. Jin, M. Mcguire, B. Sales, D. Singh et al., Superconductivity at 22 K in Co-doped BaFe 2 As 2 crystals, Physical Review Letters, vol.101, p.117004, 2008.

N. Ni, M. E. Tillman, J. Yan, A. Kracher, S. T. Hannahs et al., Effects of Co substitution on thermodynamic and transport properties and anisotropic H c2 in Ba(Fe 1?x Co x ) 2 As 2 single crystals, Physical Review B, vol.78, p.214515, 2008.

S. Chandrasekhar, Liquid Crystals, 1992.

P. G. Gennes and J. Prost, The Physics of Liquid Crystals, 1993.

P. J. Collings and M. Hird, Introduction to Liquid Crystals : Chemistry and Physics. Taylor&Francis, 1997.

R. M. Fernandes and J. Schmalian, Manifestations of nematic degrees of freedom in the magnetic, elastic, and superconducting properties of the iron pnictides, Superconductor Science and Technology, vol.25, p.84005, 2012.

K. Okazaki, S. Sugai, S. Niitaka, and H. Takagi, Phonon, two-magnon, and electronic raman scattering of Fe 1+y Te 1?x Se x, Physical Review B, vol.83, p.35103, 2011.

Y. Li, Z. Yamani, Y. Song, W. Wang, C. Zhang et al., Dynamic spin-lattice coupling and nematic fluctuations in NaFeAs, Physical Review X, vol.8, p.21056, 2018.

M. Bendele, A. Ichsanow, Y. Pashkevich, L. Keller, T. Strässle et al., Coexistence of superconductivity and magnetism in FeSe 1?x under pressure, Physical Review B, vol.85, p.64517, 2012.

J. P. Sun, K. Matsuura, G. Z. Ye, Y. Mizukami, M. Shimozawa et al., Dome-shaped magnetic order competing with high-temperature superconductivity at high pressures in FeSe, Nature Communications, vol.7, p.12146, 2015.

K. Kothapalli, A. E. Böhmer, W. T. Jayasekara, B. G. Ueland, P. Das et al., Strong cooperative coupling of pressureinduced magnetic order and nematicity in FeSe, Nature Communications, vol.7, p.12728, 2016.

S. Margadonna, Y. Takabayashi, M. Mcdonald, K. Kasperkiewicz, Y. Mizuguchi et al., Crystal structure of the new FeSe 1?x superconductor, Chemical Communications, vol.0, pp.5607-5609, 2008.

F. Hsu, J. Luo, K. Yeh, T. Chen, T. Huang et al., Superconductivity in the PbO-type structure ?-FeSe, Proceedings of the National Academy of Sciences, vol.105, p.14262, 2008.

S. Karlsson, P. Strobel, A. Sulpice, C. Marcenat, M. Legendre et al., Study of high-quality superconducting FeSe single crystals : crossover in electronic transport from a metallic to an activated regime above 350 K, Superconductor Science and Technology, vol.28, p.105009, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01692088

T. Terashima, N. Kikugawa, S. Kasahara, T. Watashige, T. Shibauchi et al., Pressure-induced antiferromagnetic transition and phase diagram in FeSe, Journal of the Physical Society of Japan, vol.84, p.63701, 2015.

S. Margadonna, Y. Takabayashi, Y. Ohishi, Y. Mizuguchi, Y. Takano et al., Pressure evolution of the low-temperature crystal structure and bonding of the superconductor FeSe (T c = 37 K), Physical Review B, vol.80, p.64506, 2009.

G. Garbarino, A. Sow, P. Lejay, A. Sulpice, P. Toulemonde et al., High-temperature superconductivity (T c onset at 34 K) in the high-pressure orthorhombic phase of FeSe, A Letters Journal Exploring the Frontiers of Physics, vol.86, p.27001, 2009.
URL : https://hal.archives-ouvertes.fr/hal-00977966

D. Shoenberg, Magnetic oscillations in metals, 1984.

R. B. Dingle, Some magnetic properties of metals II. The influence of collisions on the magnetic behaviour of large systems, Proceedings of the Royal Society, vol.221, pp.517-525, 1952.

I. M. Lifshitz and A. M. Kosevich, Doklady Akademii Nauk SSSR, vol.96, p.963, 1954.

I. M. Lifshitz and A. M. , Kosevich Zh. Eksp. Teor. Fiz, vol.29, p.730, 1955.

E. N. Adams and T. D. , Holstein Journal of Physics and Chemistry of Solids, vol.10, 1959.

, High field resistive DC magnets

M. G. Priestley, An experimental study of the Fermi surface of magnesium, Proceedings of the Royal Society A, vol.276, 1963.

M. H. Cohen and L. M. Falicov, Magnetic breakdown in crystals, Physical Review Letters, vol.7, p.231, 1961.

R. W. Stark, L. M. Falicov, and P. , , vol.5, p.235, 1967.

E. I. , Blount Physical Review, vol.126, p.1636, 1962.

R. M. Martin, Electronic Structure : Basic Theory and Practical Methods, 2004.

R. M. Martin, Density-Functional Theory of Atoms and Molecules, 1989.
URL : https://hal.archives-ouvertes.fr/hal-01401691

E. Leo, New phenomenon in narrow germanium p ? n junctions, Physical Review, vol.109, p.603, 1958.

U. O. , Departement of Electrical Engineering, 2018.

A. Metelics, Planar back (tunnel) diodes MBD series, 2018.

C. T. Degrift, Tunnel diode oscillator for 0.001 ppm measurements at low temperatures, Review of Scientific Instruments, vol.46, issue.5, 1975.

T. Instrument, REF102 -10V precision voltage reference, 2018.

R. Prozorov, R. W. Giannetta, A. Carrington, R. L. Greene, P. Guptasarma et al., Measurements of the absolute value of the penetration depth in high-T c superconductors using a low-T c superconductive coating, Applied Physics Letters, vol.69, p.4202, 2000.

A. Goldstein, S. J. Williamson, and S. Foner, Low frequency field modulation differential magnetometer ; applications to the de Haas-van Alphen effect, Review of Scientific Instruments, vol.36, issue.9, pp.517-525, 1965.

A. Mccollam, P. G. Van-rhee, J. Rook, E. Kampert, U. Zeitler et al., High sensitivity magnetometer for measuring the isotropic and anisotropic magnetisation of small samples, Review of Scientific Instruments, vol.82, p.53909, 2011.

U. Zeitler, A. Wittlin, J. C. Maan, W. Dobrowolski, and A. Mycielski, Magnetism of hgse:fe, Physical Review B, vol.54, p.15258, 1996.

&. Esrf-website, , p.31, 2018.

&. Id27-beamline-website, , p.31, 2018.

, Insertion devices lecture 2 : Wigglers and undulators

&. Ill-website, , p.31, 2018.

&. D1b-beamline-website, , 2018.

&. D10-beamline-website, , 2018.

&. D23-beamline-website, , 2018.

K. Yokogawa, K. Murata, H. Yoshino, and S. Aoyama, Solidification of high-pressure medium Daphne 7373, Japanese Journal of Applied Physics, vol.46, pp.3636-3639, 2007.

R. E. Hodder, Pressure effects on the superconducting transition temperature of Pb, Physical Review, vol.180, 1968.

M. J. Clark and T. F. Smith, Pressure dependence of T c for lead, Journal of Low Temperature Physics, vol.32, pp.495-503, 1978.

L. Dubrovinsky, N. Dubrovinskaia, E. Bykova, M. Bykov, V. Prakapenka et al., The most incompressible metal osmium at static pressures above 750 gigapascals, Nature, vol.525, pp.226-229, 2015.

T. Kenichi, Evaluation of the hydrostaticity of a helium-pressure medium with powder x-ray diffraction techniques, Journal of Applied Physics, vol.89, 2001.

N. Tateiwa and Y. Haga, Evaluations of pressure-transmitting media for cryogenic experiments with diamond anvil cell, Review of Scientific Instruments, vol.80, p.123901, 2009.

A. D. Chijioke, W. J. Nellis, A. Soldatov, and I. F. Silvera, The ruby pressure standard to 150 GPa, Journal of Applied Physics, vol.98, p.114905, 2005.

M. Raba, E. Ressouche, N. Qureshi, C. V. Colin, V. Nassif et al., Determination of the magnetic structure of CePt 2 In 7 by means of neutron diffraction, Physical Review B, vol.95, p.161102, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01828364

, FullProf website, 2018.

W. Bao, P. Pagliuso, J. Sarrao, J. Thompson, and Z. Fisk, Incommensurate magnetic structure of CeRhIn 5, Physical Review B, vol.62, 2000.

N. Gauthier, D. Wermeille, N. Casati, H. Sakai, R. E. Baumbach et al., Investigation of the commensurate magnetic structure in the heavy-fermion compound CePt 2 In 7 using magnetic resonant xray diffraction, Physical Review B, vol.96, p.64414, 2017.

H. Sakai, Y. Tokunaga, S. Kambe, H. Lee, V. Sidorov et al., Stabilization of commensurate antiferromagnetism in CePt 2 In 7 by pressure up to 2.4 GPa : 115 In NMR and NQR under zero field, Physical Review B, vol.83, p.140408, 2011.

K. Miyake and S. Watanabe, Unconventional quantum criticality due to critical valence transition, Journal of the Physical Society of Japan, vol.83, p.61006, 2014.

T. C. Kobayashi, K. Fujiwara, K. Takeda, H. Harima, Y. Ikeda et al., Valence crossover of Ce ions in CeCu 2 Si 2 under high pressure -pressure dependence of the unit cell volume and the NQR frequency, Journal of the Physical Society of Japan, vol.82, p.114701, 2013.

D. Jaccard, H. Wilhelm, K. Alami-yadri, and E. Vargoz, Magnetism and superconductivity in heavy fermion compounds at high pressure, Physica B, pp.1-7, 1999.

V. Svitlyk, M. Raba, V. Dmitriev, P. Rodière, P. Toulemonde et al., Complex biphase nature of the superconducting dome of the FeSe phase diagram, Physical Review B, vol.96, p.14520, 2017.
URL : https://hal.archives-ouvertes.fr/hal-01692078

A. Audouard, F. Duc, L. Drigo, P. Toulemonde, S. Karlsson et al., Quantum oscillations and upper critical magnetic field of the iron-based superconductor FeSe, Europhysics Letters, vol.109, p.27003, 2015.
URL : https://hal.archives-ouvertes.fr/hal-01066343

, CrysAlis pro website, vol.20, 2018.

Y. H. Matsuda, T. Inami, K. Ohwada, Y. Murata, H. Nojiri et al., High-magneticfield X-ray absorption spectroscopy of field-induced valence transition in EuNi 2 (Si 1?x Ge x ) 2, Journal of the Physical Society of Japan, vol.77, p.54713, 2008.