Ho Trung Dung
University of Jena
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Publication
Featured researches published by Ho Trung Dung.
Physical Review A | 1998
Ho Trung Dung; L. Knöll; Dirk-Gunnar Welsch
A quantization scheme for the phenomenological Maxwell theory of the full electromagnetic field in an inhomogeneous three-dimensional, dispersive and absorbing dielectric medium is developed. The classical Maxwell equations with spatially varying and Kramers-Kronig consistent permittivity are regarded as operator-valued field equations, introducing additional current- and charge-density operator fields in order to take into account the noise associated with the dissipation in the medium. It is shown that the equal-time commutation relations between the fundamental electromagnetic fields
Physical Review A | 2000
Ho Trung Dung; L. Knöll; Dirk-Gunnar Welsch
\hat E
Physical Review A | 2003
Ho Trung Dung; Stefan Yoshi Buhmann; L. Knöll; Dirk-Gunnar Welsch; Stefan Scheel; Jürgen Kästel
and
Physical Review A | 2004
Stefan Yoshi Buhmann; L. Knöll; Dirk-Gunnar Welsch; Ho Trung Dung
\hat B
Physical Review A | 2002
Ho Trung Dung; L. Knöll; Dirk-Gunnar Welsch
and the potentials
Physical Review A | 2002
Ho Trung Dung; L. Knöll; Dirk-Gunnar Welsch
\hat A
Physical Review A | 2001
Ho Trung Dung; L. Knöll; Dirk-Gunnar Welsch
and
Physical Review A | 2006
Hassan Safari; Stefan Yoshi Buhmann; Dirk-Gunnar Welsch; Ho Trung Dung
\hat \phi
European Physical Journal D | 2005
Stefan Yoshi Buhmann; Ho Trung Dung; Thomas Kampf; Dirk-Gunnar Welsch
in the Coulomb gauge can be expressed in terms of the Green tensor of the classical problem. From the Green tensors for bulk material and an inhomogeneous medium consisting of two bulk dielectrics with a common planar interface it is explicitly proven that the well-known equal-time commutation relations of QED are preserved.
Open Systems & Information Dynamics | 2006
Stefan Yoshi Buhmann; Hassan Safari; Dirk-Gunnar Welsch; Ho Trung Dung
A formalism for studying spontaneous decay of an excited two-level atom in the presence of dispersing and absorbing dielectric bodies is developed. An integral equation, which is suitable for numerical solution, is derived for the atomic upper-state-probability amplitude. The emission pattern and the power spectrum of the emitted light are expressed in terms of the Green tensor of the dielectric-matter formation, including absorption and dispersion. The theory is applied to the spontaneous decay of an excited atom at the center of a three-layered spherical cavity, with the cavity wall being modeled by a band-gap dielectric of Lorentz type. Both weak and strong coupling are studied, the latter with a special emphasis on cases where the atomic transition is (i) in the normal-dispersion zone near the medium resonance, and (ii) in the anomalous-dispersion zone associated with the band gap. In a single-resonance approximation, conditions of the appearance of Rabi oscillations and closed solutions to the evolution of the atomic state population are derived, which are in good agreement with the exact numerical results.