Electronic structure in low dimensional and correlated transition metal oxides: high resolution photoemission and X-ray emission studies
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[1] M. Grioni,et al. High-Resolution Photoemission Studies of Low-Dimensional Systems , 2002 .
[2] Johnson,et al. Smith et al. reply , 2000, Physical review letters.
[3] Olson,et al. Non-fermi liquid angle resolved photoemission line shapes of li0. 9Mo6O17 , 2000, Physical review letters.
[4] Peter D. Johnson,et al. Direct observation of temperature-dependent Fermi surface nesting vectors in a quasi-one-dimensional conductor , 2000 .
[5] Rong Liu,et al. Fermi surface of 2H-TaSe{sub 2} and its relation to the charge-density wave , 2000 .
[6] T. Schmitt,et al. Bandlike and excitonic states of oxygen in CuGeO3: Observation using polarized resonant soft X-ray emission spectroscopy , 2000 .
[7] T. Balasubramanian,et al. Nonquasiparticle structure in the photoemission spectra from the Be(0001) surface and determination of the electron self energy , 2000 .
[8] G. Margaritondo,et al. High-resolution photoemission in low-dimensional conductors and superconductors , 1999 .
[9] Peter D. Johnson,et al. Electronic Structure near the Fermi Surface in the Quasi-One-Dimensional Conductor Li0.9Mo6O17 , 1999 .
[10] P. Blaha,et al. Charge-Density-Wave Mechanism in 2 H − NbSe 2 : Photoemission Results , 1999 .
[11] S. Hulbert,et al. MANY-BODY EFFECTS IN ANGLE-RESOLVED PHOTOEMISSION : QUASIPARTICLE ENERGY AND LIFETIME OF A MO(110) SURFACE STATE , 1999, cond-mat/9904449.
[12] G. Margaritondo,et al. Experimental spectral signatures of organic 1D metals , 1999 .
[13] J. Allen,et al. Non-Fermi-Liquid Single Particle Line Shape of the Quasi-One-Dimensional Non-CDW Metal Li 0.9 Mo 6 O 17 : Comparison to the Luttinger Liquid , 1999, cond-mat/9902061.
[14] S. Hüfner,et al. On the Peierls transition in 2H–NbSe2 , 1999 .
[15] Jinghua Guo,et al. Soft x-ray emission studies of the bulk electronic structure of AlN, GaN, and Al0.5Ga0.5N , 1998 .
[16] G. Margaritondo,et al. Band mapping and quasiparticle suppression in the one-dimensional organic conductor TTF-TCNQ , 1998 .
[17] B. G. Searle,et al. An experimental and theoretical investigation of the electronic structure of CdO , 1998 .
[18] Theodore D. Moustakas,et al. Density of states, hybridization, and band-gap evolution in AlxGa1-xN alloys , 1998 .
[19] Jinghua Guo,et al. Resonant X-ray Raman spectra of Cu dd excitations in Sr2CUO2Cl2 , 1998 .
[20] Rong Liu,et al. Momentum Dependent Spectral Changes Induced by the Charge Density Wave in 2{ital H}-TaSe{sub 2 } and the Implication on the CDW Mechanism , 1998 .
[21] C. Kao,et al. Energy and polarization dependence of resonant inelastic X-ray scattering in Nd{sub 2}CuO{sub 4} , 1998 .
[22] Satoshi Tanaka,et al. Symmetry Selection in Polarized Resonant X-Ray Emission Spectroscopy in La2CuO4. , 1998 .
[23] D. E. Rice,et al. Polarization-dependent nickel 2p x-ray-absorption spectra of La2NiO4+delta , 1998 .
[24] G. Margaritondo,et al. Absence of quasiparticles in the photoemission spectra of quasi-one-dimensional Bechgaard salts , 1997 .
[25] F. Parmigiani,et al. Localized and itinerant character of electron states in the photoemission from CuGeO3 , 1997 .
[26] Ž. Šljivančanin,et al. Band picture of the spin-Peierls cuprate CuGeO 3 , 1997 .
[27] J. Voit. Charge-spin separation and non-Fermi liquid physics in the normal state of quasi-1D charge density wave systems? , 1997 .
[28] S. Zagoulaev,et al. Electronic structure and magnetic properties of the spin-Peierls compound CuGeO 3 , 1997 .
[29] S. Artemenko. Features of charge density waves in quasi-one-dimensional conductors at low temperatures , 1997 .
[30] A. Goldoni,et al. Electron-spectroscopy study of correlation mechanisms in CuGeO 3 ssingle crystals , 1997 .
[31] Kevin E. Smith,et al. Dominant role of the surface in photoemission from quasi-one dimensional conductors: K0.3MoO3 , 1996 .
[32] J. Clack,et al. Fermi surfaces and single-particle spectral functions of low-dimensional inorganic non-cuprate compounds: the molybdenum bronzes , 1996 .
[33] Bassi,et al. Optical absorption of CuGeO3. , 1996, Physical review. B, Condensed matter.
[34] Smith,et al. Observation of hidden Fermi surface nesting in a two dimensional conductor. , 1996, Physical review letters.
[35] James Allen,et al. Fermi liquids and non-Fermi liquids—The view from photoemission , 1995 .
[36] Johannes Voit,et al. One-dimensional Fermi liquids , 1995, cond-mat/9510014.
[37] Hase,et al. Spectroscopic study of the electronic states of single-crystal CuGeO3. , 1995, Physical review. B, Condensed matter.
[38] Ž. Šljivančanin,et al. Band structure of spin-Peierls cuprate CuGeO3 , 1995 .
[39] M. Grioni,et al. Fermi surface instabilities and unusual spectral properties in low-dimensional systems , 1995 .
[40] M. Greenblatt,et al. Resonant photoemission study of the electronic structure of K0.3MoO3 , 1995 .
[41] J. Voit. Photoemission of quasi-one-dimensional conductors: the luttinger liquid perspective , 1995 .
[42] K. E. Smith. Chapter 9. Metal to non-metal transitions in solids and on surfaces studied using photoemission spectroscopy , 1995 .
[43] H. Schulz. Interacting electrons in one dimension: Luttinger liquids , 1994 .
[44] Smith,et al. Photoemission study of composition- and temperature-induced metal-insulator transitions in Cr-doped V2O3. , 1994, Physical review. B, Condensed matter.
[45] M. Greenblatt,et al. Electronic structure of surface defects in K0.3MoO3 , 1994 .
[46] Mattheiss Lf. Band picture of the spin-Peierls transition in the spin-1/2 linear-chain cuprate GeCuO3. , 1994 .
[47] Shimoda,et al. Complete Fermi surface mapping of Bi2Sr2CaCu2O8+x(001): Coexistence of short range antiferromagnetic correlations and metallicity in the same phase. , 1994, Physical review letters.
[48] M. Grioni,et al. Possible observation of a Luttinger-liquid behaviour from photoemission spectroscopy of one-dimensional organic conductors , 1993 .
[49] Ren,et al. Asymptotic correlation functions in the one-dimensional Hubbard model with applications to high-Tc superconductivity. , 1993, Physical review. B, Condensed matter.
[50] J. Voit. Charge-spin separation and the spectral properties of Luttinger liquids , 1993 .
[51] A. Revcolevschi,et al. Engineering oxide-oxide and metal-oxide microstructures in directionally solidified eutectics , 1993 .
[52] Smith,et al. Fermi surface of a quasi-one-dimensional oxide conductor. , 1993, Physical review letters.
[53] Schönhammer,et al. Spectral functions for the Tomonaga-Luttinger model. , 1992, Physical review. B, Condensed matter.
[54] M. Whangbo,et al. Analogies between the concepts of molecular chemistry and solid-state physics concerning structural instabilities. Electronic origin of the structural modulations in layered transition metal dichalcogenides , 1992 .
[55] S. Ravy,et al. Some general conditions for hidden Fermi surface nesting , 1992 .
[56] C. Noguera,et al. Temperature dependence of the Peierls wavevector in quasi one dimensional conductors , 1991 .
[57] Enric Canadell,et al. Hidden Fermi Surface Nesting and Charge Density Wave Instability in Low-Dimensional Metals , 1991, Science.
[58] S. Kevan,et al. The electronic structure of solids studied using angle resolved photoemission spectroscopy , 1991 .
[59] E. Arakawa,et al. The photon excitation of soft x-ray emission spectra , 1990 .
[60] Vollmer,et al. He-atom scattering study of the temperature-dependent charge-density-wave surface structure and lattice dynamics of 2H-TaSe2(001). , 1990, Physical review. B, Condensed matter.
[61] Nial Wassdahl,et al. Current Status and Future Prospects for Ultra-Soft X-ray Emission Spectroscopy , 1990 .
[62] C. Schlenker,et al. Low-dimensional electronic properties of molybdenum bronzes and oxides , 1990 .
[63] J. Rubensson,et al. Soft x-ray emission spectroscopy using monochromatized synchrotron radiation (invited) , 1989 .
[64] Smith,et al. Resonant photoemission in Ti2O3 and V2O3: Hybridization and localization of cation 3d orbitals. , 1988, Physical review. B, Condensed matter.
[65] V. Henrich,et al. Molecular orbital effects on resonant photoemission from Ti2O3 and V2O3 , 1988 .
[66] Smith Ke,et al. Bulk band dispersion in Ti2O , 1988 .
[67] M. Greenblatt. Molybdenum oxide bronzes with quasi-low-dimensional properties , 1988 .
[68] M. Whangbo,et al. Band electronic structure of the lithium molybdenum purple bronze Li0.9Mo6O17 , 1988 .
[69] Vollmer,et al. Shifted surface-phonon anomaly in 2H-TaSe2. , 1988, Physical review letters.
[70] Zhang,et al. Effective Hamiltonian for the superconducting Cu oxides. , 1988, Physical review. B, Condensed matter.
[71] J. Skofronick,et al. Surface Phonon Dynamics in 2H-TaSe2(001) , 1988 .
[72] Joseph Nordgren,et al. ULTRA-SOFT X-RAY EMISSION SPECTROSCOPY A PROGRESS REPORT , 1987 .
[73] M. Whangbo,et al. Band electronic structure of the purple potassium molybdenum bronze K0.9Mo6O17 , 1987 .
[74] F. Lévy,et al. OPTICAL INVESTIGATION OF THE PEIERLS GAP IN THE CHAIN-LIKE CONDUCTOR (TaSe4)2I* , 1986 .
[75] R. Nyholm,et al. Design of a portable large spectral range grazing incidence instrument , 1986 .
[76] M. Whangbo,et al. Band Electronic Structure of the Molybdenum Blue Bronze A0.30MoO3(A = K, Rb) , 1986 .
[77] C. Noguera,et al. Structural study of the charge-density-wave phase transition of the blue bronze : K0.3MoO3 , 1985 .
[78] Fleming,et al. Commensurate-incommensurate transition in the charge-density-wave state of K0.30MoO3. , 1985, Physical review. B, Condensed matter.
[79] M. Greenblatt,et al. Crystal growth of alkali metal molybdenum bronzes by a temperature gradient flux technique , 1984 .
[80] J. Waszczak,et al. Quasi two-dimensional electronic properties of the lithium molybdenum bronze, Li0.9Mo6O17 , 1984 .
[81] J. Russ. Chapter 1 – X-Ray Emission , 1984 .
[82] S. Kevan. Design of a high‐resolution angle‐resolving electron energy analyzer , 1983 .
[83] J. Honig,et al. Electrical properties of the ( V 1 − x Cr x ) 2 O 3 system , 1980 .
[84] J. Sólyom. The Fermi gas model of one-dimensional conductors , 1979 .
[85] F. Disalvo,et al. Study of Superlattice Formation in 2H-NbSe 2 and 2H-TaSe 2 by Neutron Scattering , 1975 .
[86] J. P. Remeika,et al. Mott Transition in Cr-DopedV2O3 , 1969 .
[87] D. Mcwhan,et al. Critical Pressure for the Metal-Semiconductor Transition inV2O3 , 1969 .
[88] J. M. Luttinger. An Exactly Soluble Model of a Many‐Fermion System , 1963 .
[89] L. G. Parratt. ELECTRONIC BAND STRUCTURE OF SOLIDS BY X-RAY SPECTROSCOPY , 1959 .