3 Quantum Optical Phenomena in Nuclear Resonant Scattering
167
54. E. Gerdau, H. de Waard (eds.), Nuclear resonant scattering of synchrotron radiation, part B,
in Hyperfine Interactions, vol. 125 (Springer, 2000)
55. W. Sturhahn, E. Gerdau, Evaluation of time-differential measurements of nuclear-resonance
scattering of x rays. Phys. Rev. B 49, 9285–9294 (1994)
56. W.E. Lamb, Robert C. Retherford, Fine structure of the hydrogen atom by a microwave
method. Phys. Rev. 72, 241–243 (1947)
57. R. Friedberg, J.T. Manassah, The dynamical cooperative Lamb shift in a system of two-level
atoms in a slab-geometry. Phys. Lett. A 373, 3423–3429 (2009)
58. J.T. Manassah, The dynamical cooperative Lamb shift in a system of two-level atoms in a
sphere in the scalar photon theory. Laser Phys. 20, 259–269 (2010)
59. C. Greiner, B. Boggs, T.W. Mossberg, Superradiant emission dynamics of an optically thin
material sample in a short-decay-time optical cavity. Phys. Rev. Lett. 85, 3793–3796 (2000)
60. D. Fröhlich, A. Kulik, B. Uebbing, A. Mysyrowicz, V. Langer, H. Stolz, W. von der Osten,
Coherent propagation and quantum beats of quadrupole polaritons in Cu 2 O. Phys. Rev. Lett.
67, 2343–2346 (1991)
61. R. Röhlsberger, Cooperative emission from nuclei: the collective Lamb shift and electromagnetically induced transparency. Fortschritte der Physik 61, 360–376 (2013)
62. A.A. Svidzinsky, J.-T. Chang, Marlan O. Scully, Dynamical evolution of correlated spontaneous emission of a single photon from a uniformly excited cloud of n atoms. Phys. Rev. Lett.
100, 160504 (2008)
63. A.A. Svidzinsky, Nonlocal effects in single-photon superradiance. Phys. Rev. A 85, 013821
(2012)
64. Yu.V. Shvyd’ko, G.V. Smirnov, Experimental study of time and frequency properties of collective nuclear excitations in a single crystal (gamma-ray resonance). J. Phys. Condensed
Matter 1, 10563 (1989)
65. J.T. Manassah, Giant cooperative Lamb shift in a density-modulated slab of two-level atoms.
Phys. Lett. A 374, 1985–1988 (2010)
66. R. Röhlsberger, Theory of x-ray grazing incidence reflection in the presence of nuclear resonance excitation. Hyperfine Interactions 123(124), 301–325 (1999)
67. R. Röhlsberger, J. Evers, S. Shwartz. Quantum and Nonlinear Optics with Hard X-Rays, ed.
by E. Jaeschke, S. Khan, J.R. Schneider, J.B. Hastings (Springer International Publishing,
Cham, 2014), pp. 1–28
68. P. Longo, C.H. Keitel, J. Evers, Tailoring superradiance to design artificial quantum systems.
Sci. Rep. 6, 23628 (2016)
69. F. Pfeiffer, C. David, M. Burghammer, C. Riekel, T. Salditt, Two-dimensional x-ray waveguides and point sources. Science 297, 230–234 (2002)
70. K.J. Vahala, Optical microcavities. Nature 424, 839–846 (2003)
71. K.-J. Boller, A. Imamo˘ glu, S.E. Harris, Observation of electromagnetically induced transparency. Phys. Rev. Lett. 66, 2593–2596 (1991)
72. M. Fleischhauer, A. Imamoglu, J.P. Marangos, Electromagnetically induced transparency:
optics in coherent media. Rev. Mod. Phys. 77, 633–673 (2005)
73. L.G. Parratt, Surface studies of solids by total reflection of x-rays. Phys. Rev. 95, 359–369
(1954)
74. W. Sturhahn, CONUSS and PHOENIX: evaluation of nuclear resonant scattering data. Hyperfine Interactions 125, 149–172 (2000)
75. A. Taflove, S.C. Hagness, Computational Electrodynamics: The Finite-difference Timedomain Method, 3rd edn. (Artech House, Norwood MA, 2005)
76. D. Lentrodt, J. Evers, Ab initio few-mode theory for quantum potential scattering problems.
Phys. Rev. X 10, 011008 (2020)
77. C. Gardiner, P. Zoller (eds.), Quantum Noise: A Handbook of Markovian and Non-Markovian
Quantum Stochastic Methods with Applications to Quantum Optics (Springer Series in Synergetics, Springer, Heidelberg, 2004)
78. B. Marx, K.S. Schulze, I. Uschmann, T. Kämpfer, R. Lötzsch, O. Wehrhan, W. Wagner,
C. Detlefs, T. Roth, J. Härtwig, E. Förster, T. Stöhlker, G.G. Paulus, High-precision x-ray
polarimetry. Phys. Rev. Lett. 110, 254801 (2013)
167
54. E. Gerdau, H. de Waard (eds.), Nuclear resonant scattering of synchrotron radiation, part B,
in Hyperfine Interactions, vol. 125 (Springer, 2000)
55. W. Sturhahn, E. Gerdau, Evaluation of time-differential measurements of nuclear-resonance
scattering of x rays. Phys. Rev. B 49, 9285–9294 (1994)
56. W.E. Lamb, Robert C. Retherford, Fine structure of the hydrogen atom by a microwave
method. Phys. Rev. 72, 241–243 (1947)
57. R. Friedberg, J.T. Manassah, The dynamical cooperative Lamb shift in a system of two-level
atoms in a slab-geometry. Phys. Lett. A 373, 3423–3429 (2009)
58. J.T. Manassah, The dynamical cooperative Lamb shift in a system of two-level atoms in a
sphere in the scalar photon theory. Laser Phys. 20, 259–269 (2010)
59. C. Greiner, B. Boggs, T.W. Mossberg, Superradiant emission dynamics of an optically thin
material sample in a short-decay-time optical cavity. Phys. Rev. Lett. 85, 3793–3796 (2000)
60. D. Fröhlich, A. Kulik, B. Uebbing, A. Mysyrowicz, V. Langer, H. Stolz, W. von der Osten,
Coherent propagation and quantum beats of quadrupole polaritons in Cu 2 O. Phys. Rev. Lett.
67, 2343–2346 (1991)
61. R. Röhlsberger, Cooperative emission from nuclei: the collective Lamb shift and electromagnetically induced transparency. Fortschritte der Physik 61, 360–376 (2013)
62. A.A. Svidzinsky, J.-T. Chang, Marlan O. Scully, Dynamical evolution of correlated spontaneous emission of a single photon from a uniformly excited cloud of n atoms. Phys. Rev. Lett.
100, 160504 (2008)
63. A.A. Svidzinsky, Nonlocal effects in single-photon superradiance. Phys. Rev. A 85, 013821
(2012)
64. Yu.V. Shvyd’ko, G.V. Smirnov, Experimental study of time and frequency properties of collective nuclear excitations in a single crystal (gamma-ray resonance). J. Phys. Condensed
Matter 1, 10563 (1989)
65. J.T. Manassah, Giant cooperative Lamb shift in a density-modulated slab of two-level atoms.
Phys. Lett. A 374, 1985–1988 (2010)
66. R. Röhlsberger, Theory of x-ray grazing incidence reflection in the presence of nuclear resonance excitation. Hyperfine Interactions 123(124), 301–325 (1999)
67. R. Röhlsberger, J. Evers, S. Shwartz. Quantum and Nonlinear Optics with Hard X-Rays, ed.
by E. Jaeschke, S. Khan, J.R. Schneider, J.B. Hastings (Springer International Publishing,
Cham, 2014), pp. 1–28
68. P. Longo, C.H. Keitel, J. Evers, Tailoring superradiance to design artificial quantum systems.
Sci. Rep. 6, 23628 (2016)
69. F. Pfeiffer, C. David, M. Burghammer, C. Riekel, T. Salditt, Two-dimensional x-ray waveguides and point sources. Science 297, 230–234 (2002)
70. K.J. Vahala, Optical microcavities. Nature 424, 839–846 (2003)
71. K.-J. Boller, A. Imamo˘ glu, S.E. Harris, Observation of electromagnetically induced transparency. Phys. Rev. Lett. 66, 2593–2596 (1991)
72. M. Fleischhauer, A. Imamoglu, J.P. Marangos, Electromagnetically induced transparency:
optics in coherent media. Rev. Mod. Phys. 77, 633–673 (2005)
73. L.G. Parratt, Surface studies of solids by total reflection of x-rays. Phys. Rev. 95, 359–369
(1954)
74. W. Sturhahn, CONUSS and PHOENIX: evaluation of nuclear resonant scattering data. Hyperfine Interactions 125, 149–172 (2000)
75. A. Taflove, S.C. Hagness, Computational Electrodynamics: The Finite-difference Timedomain Method, 3rd edn. (Artech House, Norwood MA, 2005)
76. D. Lentrodt, J. Evers, Ab initio few-mode theory for quantum potential scattering problems.
Phys. Rev. X 10, 011008 (2020)
77. C. Gardiner, P. Zoller (eds.), Quantum Noise: A Handbook of Markovian and Non-Markovian
Quantum Stochastic Methods with Applications to Quantum Optics (Springer Series in Synergetics, Springer, Heidelberg, 2004)
78. B. Marx, K.S. Schulze, I. Uschmann, T. Kämpfer, R. Lötzsch, O. Wehrhan, W. Wagner,
C. Detlefs, T. Roth, J. Härtwig, E. Förster, T. Stöhlker, G.G. Paulus, High-precision x-ray
polarimetry. Phys. Rev. Lett. 110, 254801 (2013)
