Beyond Dirac and Weyl fermions: Unconventional quasiparticles in conventional crystals
暂无分享,去创建一个
Barry Bradlyn | B. Andrei Bernevig | Zhijun Wang | C. Felser | R. Cava | B. Bradlyn | M. Vergniory | B. Bernevig | Jennifer Cano | C. Felser | R. J. Cava | M. G. Vergniory | Jennifer Cano | Zhijun Wang
[1] Single crystal investigation of the new phase Er0.85Co4.31Si and of CoSi , 2008 .
[2] D. Orobengoa,et al. The Bilbao Crystallographic Server , 2008 .
[3] Hans Wondratschek,et al. Bilbao Crystallographic Server: I. Databases and crystallographic computing programs , 2006 .
[4] Measuring Z 2 topological invariants in optical lattices using interferometry , 2014, 1402.2434.
[5] Bohm-Jung Yang,et al. Classification of stable three-dimensional Dirac semimetals with nontrivial topology , 2014, Nature Communications.
[6] B. Li,et al. Valence compounds versus metals. Synthesis, characterization, and electronic structures of cubic Ae(4)Pn(3) phases in the systems Ae = Ca, Sr, Ba, Eu; Pn = As, Sb, Bi. , 2003, Inorganic chemistry.
[7] Xi Dai,et al. Multi-Weyl topological semimetals stabilized by point group symmetry. , 2011, Physical review letters.
[8] Hans Wondratschek,et al. Bilbao Crystallographic Server. II. Representations of crystallographic point groups and space groups. , 2006, Acta crystallographica. Section A, Foundations of crystallography.
[9] S. Das Sarma,et al. Majorana fermions and a topological phase transition in semiconductor-superconductor heterostructures. , 2010, Physical review letters.
[10] Shuang Jia,et al. Discovery of a Weyl fermion semimetal and topological Fermi arcs , 2015, Science.
[11] T. Kamiyama,et al. Structure study of superconducting Li2Pd3B system by neutron powder diffraction , 2006 .
[12] Q. Gibson,et al. The chiral anomaly and thermopower of Weyl fermions in the half-Heusler GdPtBi. , 2016, Nature materials.
[13] R. Cava,et al. Evidence for the chiral anomaly in the Dirac semimetal Na3Bi , 2015, Science.
[14] Su-Yang Xu,et al. Drumhead Surface States and Topological Nodal-Line Fermions in TlTaSe2 , 2015, 1508.07521.
[15] Hoi Chun Po,et al. Filling constraints for spin-orbit coupled insulators in symmorphic and nonsymmorphic crystals , 2015, Proceedings of the National Academy of Sciences.
[16] L. Fu,et al. Surface states and topological invariants in three-dimensional topological insulators: Application to Bi 1 − x Sb x , 2008 .
[17] Z. J. Wang,et al. Discovery of a Three-Dimensional Topological Dirac Semimetal, Na3Bi , 2013, Science.
[18] A. Lawson. Superconductivity of the f.c.c. transition metals, and of their alloys and f.c.c. carbides , 1971 .
[19] A. Cracknell,et al. The mathematical theory of symmetry in solids;: Representation theory for point groups and space groups, , 1972 .
[20] W. Jung,et al. Li2Pd3B and Li2Pt3B : Ternary lithium borides of palladium and platinum with boron in octahedral coordination , 1997 .
[21] E. Parthé,et al. The anti‐Th3P4 structure type for rare earth germanides, antimonides and bismuthides , 1966 .
[22] G. F. Chen,et al. Experimental discovery of Weyl semimetal TaAs , 2015 .
[23] Burke,et al. Generalized Gradient Approximation Made Simple. , 1996, Physical review letters.
[24] B. Bernevig,et al. Topological Insulators from Group Cohomology , 2016, 1604.03952.
[25] C. Hoch,et al. Alkalimetall-Stannid-Silicate und -Germanate: ‘Doppelsalze’ mit dem Zintl-Anion [Sn4]4—Professor Welf Bronger zum 70. Geburtstag gewidmet , 2002 .
[26] B. Lotsch,et al. Dirac cone protected by non-symmorphic symmetry and three-dimensional Dirac line node in ZrSiS , 2015, Nature Communications.
[27] Yan Sun,et al. Dirac semimetal and topological phase transitions in A 3 Bi ( A = Na , K, Rb) , 2012, 1202.5636.
[28] Zhongkai Liu,et al. Weyl semimetal phase in the non-centrosymmetric compound TaAs , 2015, Nature Physics.
[29] X. Dai,et al. Wilson-Loop Characterization of Inversion-Symmetric Topological Insulators , 2012, 1208.4234.
[30] H. Ott,et al. Superconductivity of lanthanum pnictides , 1977 .
[31] Β. Eisenmann,et al. Crystal structure of tripotassium tritellurobismutate(III), K3BiTe3 , 1991 .
[32] Observation of Weyl nodes in TaAs , 2015, 1503.09188.
[33] C. Kane,et al. Dirac semimetal in three dimensions. , 2011, Physical review letters.
[34] A. Kjekshus,et al. Redetermined Crystal Structures of PdAs2, PdSb2, PtP2, PtAs2, PtSb2, alpha-PtBi2, and AuSb2. , 1965 .
[35] A. Searcy,et al. The Crystal Structures of the Monosilicides of Osmium, Iridium and Ruthenium , 1957 .
[36] C. Felser,et al. Observation of chiral magneto-transport in RPtBi topological Heusler compounds , 2016 .
[37] Frank E. Osterloh,et al. Electronic structure, photovoltage, and photocatalytic hydrogen evolution with p-CuBi2O4 nanocrystals , 2016 .
[38] E. Bakkers,et al. Signatures of Majorana Fermions in Hybrid Superconductor-Semiconductor Nanowire Devices , 2012, Science.
[39] E. Demler,et al. Bloch state tomography using Wilson lines , 2015, Science.
[40] C. Kane,et al. Bulk Dirac points in distorted spinels. , 2013, Physical review letters.
[41] Xi Dai,et al. Type-II Weyl semimetals , 2015, Nature.
[42] Su-Yang Xu,et al. Discovery of a Weyl fermion state with Fermi arcs in niobium arsenide , 2015, Nature Physics.
[43] L. Fu,et al. Superconducting proximity effect and majorana fermions at the surface of a topological insulator. , 2007, Physical review letters.
[44] P. Conflant,et al. Etude structurale du conducteur anionique Bi0,765Sr0,235O1,383 , 1980 .
[45] A. Schnyder,et al. Classification of reflection-symmetry-protected topological semimetals and nodal superconductors , 2014, 1408.4642.
[46] John B. Shoven,et al. I , Edinburgh Medical and Surgical Journal.
[47] J. Ibers,et al. Preparation, characterization, and physical properties of the series MPd3S4(M = rare earth) , 1985 .
[48] X. Dai,et al. Weyl Semimetal Phase in Noncentrosymmetric Transition-Metal Monophosphides , 2014, 1501.00060.
[49] C. Kane,et al. Double Dirac Semimetals in Three Dimensions. , 2015, Physical review letters.
[50] K. Doll,et al. Structural, electronic, and magnetic properties of FeSi: hybrid functionals and non-local exchange , 2006 .
[51] M. Chou,et al. Ca 3 P 2 and other topological semimetals with line nodes and drumhead surface states , 2015, 1510.02759.
[52] Jian Li,et al. Observation of Majorana fermions in ferromagnetic atomic chains on a superconductor , 2014, Science.
[53] N. Read,et al. Paired states of fermions in two dimensions with breaking of parity and time-reversal symmetries and the fractional quantum Hall effect , 1999, cond-mat/9906453.
[54] M. D. Foster,et al. Chemical evaluation of hypothetical uninodal zeolites. , 2004, Journal of the American Chemical Society.
[55] A. Palenzona,et al. The phase diagram of the Sr–Sn system , 2004 .
[56] D. Killpatrick. Pressure-temperature phase diagrams for Nb3In and Nb3Bi , 1964 .
[57] F. Guinea,et al. The electronic properties of graphene , 2007, Reviews of Modern Physics.
[58] C. Hebecker. Über Kaliumhexafluorobismutat(V) , 1971 .
[59] D. Vanderbilt,et al. Theory of polarization of crystalline solids. , 1993, Physical review. B, Condensed matter.
[60] S. Gronowitz,et al. ON THE ARSENIDES AND ANTIMONIDES OF TANTALUM , 1965 .
[61] G. Refael,et al. Helical liquids and Majorana bound states in quantum wires. , 2010, Physical review letters.
[62] Ashvin Vishwanath,et al. Subject Areas : Strongly Correlated Materials A Viewpoint on : Topological semimetal and Fermi-arc surface states in the electronic structure of pyrochlore iridates , 2011 .
[63] Z. J. Wang,et al. A stable three-dimensional topological Dirac semimetal Cd3As2. , 2014, Nature materials.
[64] O. V. Kovalev,et al. Irreducible representations of the space groups , 1965 .
[65] R. G. Ross,et al. The compound Bi4Rh , 1959 .
[66] J. Mañes. Existence of bulk chiral fermions and crystal symmetry , 2011, 1109.2581.
[67] V. Eyert,et al. Structure, ordering, and bonding of half antiperovskites: PbNi3/2S and BiPd3/2S , 2007 .
[68] Hafner,et al. Ab initio molecular dynamics for open-shell transition metals. , 1993, Physical review. B, Condensed matter.
[69] M. Berry. Quantal phase factors accompanying adiabatic changes , 1984, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[70] L. Bindi,et al. Structural and physical properties of fischesserite, a rare gold-silver selenide from the de lamar mine, Owyhee County, Idaho, USA , 2004 .
[71] Yue Yu,et al. Semimetal with both Rarita-Schwinger-Weyl and Weyl excitations , 2015, 1512.07460.
[72] A. Vishwanath,et al. Filling-enforced quantum band insulators in spin-orbit coupled crystals , 2015, Science Advances.
[73] B. Spivak,et al. Chiral Anomaly and Classical Negative Magnetoresistance of Weyl Metals , 2012, 1206.1627.
[74] F. Teppe,et al. Observation of three-dimensional massless Kane fermions in a zinc-blende crystal , 2014, Nature Physics.
[75] L. Balents,et al. Topological nodal semimetals , 2011, 1110.1089.
[76] F. Hulliger. New Compounds with Cobaltite Structure , 1963, Nature.
[77] Su-Yang Xu,et al. A Weyl Fermion semimetal with surface Fermi arcs in the transition metal monopnictide TaAs class , 2015, Nature Communications.
[78] Kristin A. Persson,et al. Commentary: The Materials Project: A materials genome approach to accelerating materials innovation , 2013 .