Laboratory wavelengths for cosmological constraints on varying fundamental constants

被引:22
|
作者
Aldenius, Maria [1 ,2 ]
机构
[1] Lund Univ, Lund Observ, SE-22100 Lund, Sweden
[2] European So Observ, D-85748 Garching, Germany
关键词
FINE-STRUCTURE CONSTANT; QSO ABSORPTION-LINES; PHYSICAL CONSTANTS; FE-II; SPECTRA; CALIBRATION; VARIABILITY; TIME; ANGSTROM; REGION;
D O I
10.1088/0031-8949/2009/T134/014008
中图分类号
O4 [物理学];
学科分类号
0702 ;
摘要
Cosmological investigations, using high-redshift quasi-stellar object (QSO) absorption spectra, of possible variations of the fine-structure constant (alpha) require very accurate laboratory wavelengths for a number of resonance transitions from several different species. A change in alpha could be detected as a shift in the wavelengths of atomic transitions in the QSO systems and to accurately determine the values of such shifts it is essential that the laboratory rest wavelengths are known to a high degree of accuracy and precision. The present status of such laboratory wavelengths is discussed with emphasis on our recent study including laboratory wavelengths and wavenumbers of ultraviolet (UV) resonance lines from seven species, measured using the UV high-resolution Fourier transform spectrometer in Lund. The high relative accuracy of the wavenumbers has been obtained by the use of a composite hollow-cathode light source, which enables the spectra of the different species to be recorded simultaneously and thereby minimizes the effects from several steps of calibration. Much emphasis has been put on investigations of possible wavenumber shifts from line structure and self-absorption as well as pressure shifts and calibration effects. The absolute as well as the relative wavenumber accuracy is discussed and the wavenumbers are compared with values from other investigations.
引用
收藏
页数:8
相关论文
共 50 条
  • [21] MANIFESTATIONS OF SPACE-TIME VARIATION OF COUPLING CONSTANTS AND FUNDAMENTAL MASSES
    Flambaum, V. V.
    Berengut, J. C.
    QUANTUM MECHANICS, ELEMENTARY PARTICLES, QUANTUM COSMOLOGY AND COMPLEXITY, 2011, : 383 - 396
  • [22] Connecting fundamental constants
    Di Mario, D.
    FRONTIERS OF FUNDAMENTAL AND COMPUTATIONAL PHYSICS, 2008, 1018 : 116 - 119
  • [23] The fundamental constants in physics
    Fritzsch, H.
    PHYSICS-USPEKHI, 2009, 52 (04) : 359 - 367
  • [24] Fundamental constants and units and the search for temporal variations
    Peik, Ekkehard
    NUCLEAR PHYSICS B-PROCEEDINGS SUPPLEMENTS, 2010, 203-04 : 18 - 32
  • [25] Fundamental constants and high-resolution spectroscopy
    Bonifacio, P.
    Rahmani, H.
    Whitmore, J. B.
    Wendt, M.
    Centurion, M.
    Molaro, P.
    Srianand, R.
    Murphy, M. T.
    Petitjean, P.
    Agafonova, I. I.
    D'Odorico, S.
    Evans, T. M.
    Levshakov, S. A.
    Lopez, S.
    Martins, C. J. A. P.
    Reimers, D.
    Vladilo, G.
    ASTRONOMISCHE NACHRICHTEN, 2014, 335 (01) : 83 - 91
  • [26] Cosmology with Varying Constants from a Thermodynamic Viewpoint
    Gohar, Hussain
    UNIVERSE, 2017, 3 (01)
  • [27] In Search of the Ideal Systems to Constrain the Variation of Fundamental Constants
    Petitjean, Patrick
    Srianand, Ragunathan
    Noterdaeme, Pasquier
    Ledoux, Cedric
    Gupta, Neeraj
    FROM VARYING COUPLINGS TO FUNDAMENTAL PHYSICS, 2011, : 115 - +
  • [28] The Relation between Fundamental Constants and Particle Physics Parameters
    Thompson, Rodger I.
    UNIVERSE, 2017, 3 (01):
  • [29] Testing the variation of fundamental constants with astrophysical and spectroscopic data
    Olive, Keith A.
    CANADIAN JOURNAL OF PHYSICS, 2011, 89 (04) : 361 - 369
  • [30] Revising Your World-View of the Fundamental Constants
    Ralston, John P.
    NATURE OF LIGHT: WHAT ARE PHOTONS? V, 2013, 8832