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ARPES Angle-Resolved Photoemission

ARPES angle resolved photoemission spectroscopy MFS magnetic Fermi surface... [Pg.138]

ARPES angle resolved photoemission NMR nuclear magnetic resonance... [Pg.564]

Differing from the conventional s-wave superconductors, the symmetry of the Cooper pair in the HTSC has been established by now to be of d-wave symmetry. Its angular dependence was determined by ARPES (angle-resolved photoemission spectroscopy) to be by Loeser et al. (1996) and (Ding et al. 1996). Furthermore, they have... [Pg.574]

ARPES angle-resolved photoemission CD compact disc... [Pg.8]

It is remarkable that both quantities show very similar temperature dependences. It means that our microscopic EPR measurements and the macroscopic resistivity measurements by Ando et al. provide evidence of the same phenomenon the formation of hole-rich metallic stripes in lightly doped LSCO well below xcr = 0.06. This conclusion is also supported by a recent angle-resolved photoemission (ARPES) study of LSCO which clearly demonstrated that the metallic quasiparticles exist near the nodal direction below x=0.06 [16],... [Pg.112]

Angle-Resolved Photoemission. The best experimental technique to resolve the electronic structure of crystals in the momentum-energy space, and, consequently, the Fermi surface, is angle resolved photoemission spectroscopy (ARPES). [Pg.472]

ARPES Angle-Resolved Photo-Emission Spectroscopy A general term for structure sensitive photoemission techniques, including ARPEFS, ARXPS, ARUPS, and ARXPD. [Pg.8]

Figure 8.12 Cross section in the (kx, ky) plane of the calculated Fermi surface in Y 1 2 3. The experimental results from angle-resolved photoemission (ARPES), de Haas van Alphen measurements (dHvA), and angular correlation of annihilation radiations (ACAR) are indicated. From Pickett etal. [61]. Figure 8.12 Cross section in the (kx, ky) plane of the calculated Fermi surface in Y 1 2 3. The experimental results from angle-resolved photoemission (ARPES), de Haas van Alphen measurements (dHvA), and angular correlation of annihilation radiations (ACAR) are indicated. From Pickett etal. [61].
More detailed information on the specific orbitals involved in bonding of the adlayer and the symmetry of the bonding site can be derived from angle resolved photoemission spectroscopy (ARPES). With excitation energies of less than 20 eV, the incident photons excite predominantly valence electrons. The valence electron resonances observed are characteristic of band structure of the substrate and the electron orbitals of the adspecies, whose energy is... [Pg.463]

Acronyms ARUPS (angle resolved ultraviolet photoemission spectroscopy) ARPES (angle resolved photoelectron spectroscopy)... [Pg.506]

Recently, angle-resolved photoemission spectroscopy (ARPES) for Bi2212 showed that the electronic density of states of underdoped cuprates reveals a normal-state gap-... [Pg.467]

In the following sections, progress in studies of the electronic structure of TMC(IOO), (110), and (111) surfaces by the application of angle-resolved photoemission spectroscopy (ARPES) will be reviewed. Adsorption of oxygen and alkali metal on the TMC(IOO) and (111) surfaces will also be reviewed as an example of progress in the surface chemistry of TMCs. [Pg.226]

The electronic structure of the TMC(IOO) surface has been studied most extensively among the low-index TMC surfaces. It is well known that the use of angle-resolved photoemission spectroscopy (ARPES) can give direct information about the valence band structure around the surface (18,19), and extensive ARPES studies have been performed on the valence band structure of TMC(IOO) surfaces such as TiC(lOO) (20,21), ZrC(lOO) (22,23), VC(IOO) (24-27), NbC(lOO) (28-31), and TaC(lOO) (32,33). These studies have shown that most of the features in ARPE spectra can be understood as emissions from the bulk bands, and thus the electronic structures of TMC(IOO) are well regarded as the cross sections of the bulk electronic states. However, in some systems, surface induced electronic states have been identified as described in the following. [Pg.228]


See other pages where ARPES Angle-Resolved Photoemission is mentioned: [Pg.179]    [Pg.821]    [Pg.104]    [Pg.366]    [Pg.455]    [Pg.179]    [Pg.821]    [Pg.104]    [Pg.366]    [Pg.455]    [Pg.942]    [Pg.2]    [Pg.27]    [Pg.31]    [Pg.165]    [Pg.167]    [Pg.942]    [Pg.121]    [Pg.174]    [Pg.427]    [Pg.540]    [Pg.4562]    [Pg.13]    [Pg.149]    [Pg.152]    [Pg.174]    [Pg.99]    [Pg.100]    [Pg.192]    [Pg.102]    [Pg.203]    [Pg.201]    [Pg.85]   
See also in sourсe #XX -- [ Pg.472 ]




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ARPES ,

ARPS

Angle-resolved

Angle-resolved photoemission

Angle-resolved photoemission spectroscopy ARPES)

Photoemission

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