88
P. Lecoq
References
1. B. Rossi, High Energy Particles, Prentice-Hall, Inc. Englewood Cliffs, NY, 1952.
2. U. Fano, Annu. Rev. Nucl. Sci. 13 (1963) 1.
3. J.D. Jackson, Classical Electrodynamics, 2 nd ed., Wiley, New York, 1975, chap. 13.
4. R.D. Evans, The Atomic Nucleus, Krieger, New York, 1982.
5. A. Lempicki et al., Fundamental limits of scintillator performance, Nucl. Instrum. Meth. A
333 (1993) 304-311.
6. P. Lecoq et al., Lead Tungstate (PbWO 4 ) scintillators for LHC EM calorimetry, Nucl. Instrum.
Meth. A 365 (1995) 291-298.
7. Scintillation Detectors, Catalog, Saint Gobain, Ceramiques Industrielles, March 1992.
8. A. Annenkov et al., Suppression of the radiation damage in Lead Tungstate scintillation
crystal, Nucl. Instrum. Meth. A 426 (1999) 486-490.
9. The CMS Collaboration (2015) Technical proposal for the phase II upgrade of the compact
muon solenoid, CERN-LHCC-2015-010/LHCC-P-008
10. Gundacker S. et al, (2013), Time of Flight positron emission tomography towards 100ps
resolution with L(Y)SO: an experimental and theoretical analysis, JINST 8:P07014
11. P. Lecoq, A. Annenkov, A. Gektin, M. Korzhik, C. Pedrini, Inorganic Scintillators for
Detector Systems, Springer-Verlag, 2006. Second edition 2017, ISBN 978-3-319-45521-1 doi
10.1007/978-3-319-45522-8
12. A.J. Dean, Imaging in high-energy astronomy, in: Heavy Scintillators for scientific and
industrial applications, Proc. Int. Workshop Cristal 2000, Sep 22-26, 1992, Chamonix, France,
F. De Notaristefani, P. Lecoq, M. Schneegans (eds.), Editions Frontières France, 1992, pp. 5364.
13. C. Kuntner et al., Intrinsic energy resolution and light output of the Lu0.7Y0.3AP:Ce
scintillator, Nucl. Instrum. Meth. A 493 (2002) 131-136.
14. M.C. Abreu et al., ClearPEM: A PET imaging system dedicated to breast cancer diagnostics,
Nucl. Instrum. Meth. A 571, (2007) p. 81-84.
15. J.B. Birks, The Theory and Practice of Scintillation Counting, Pergamon, London, 1964.
16. A. Vasiliev, Relaxation of hot electronic excitations in scintillators: account for scattering,
track effects, complicated electronic structure, Proc. Fifth Int. Conf. Inorganic Scintillators and
their Applications, SCINT99, V.V. Mikhailin (ed.), Moscow State University, Moscow, 2000,
pp. 43-52.
17. C. Pedrini et al., Time-resolved luminescence of CeF 3 crystals excited by X-ray synchrotron
radiation, Chem. Phys. Lett. 206 (1993) 470–474.
18. M. Kronberger, E. Auffray, P. Lecoq, Probing the concept of Photonics Crystals on Scintillating
Materials, Proc. 9 th Int. Conf. Inorganic Scintillators and their Applications, Winston-Salem,
NC, June 4-8, 2007, IEEE Trans. Nucl. Sci. 55(3) (2008) 1102-1106.
19. A. Knapitsch, P. Lecoq, Review on photonic crystal coatings for scintillators, International
Journal of Modern Physics A, Vol. 29 (2014) 1430070 (31 pages) https://doi.org/10.1142/
S0217751X14300701
20. R.B. Murray, A. Meyer, Scintillation response of activated inorganic crystals to various
charged particles, Phys. Rev. 122 (1961) 815-826.
21. W.W. Moses, S.A. Payne, W.S. Choong, Scintillator Non-Proportionality: Present Understanding and Future Challenges, IEEE Trans. Nucl. Sci. 55(3) (2008) 1049-1053.
22. B.D. Rooney, J.D. Valentine, Scintillator Light Yield Non-proportionality: Calculating Photon
Response Using Measured Electron Response, IEEE Trans. Nucl. Sci. 44(3) (1997) 509-516.
23. P. Lecoq, M. Korzik, A. Vasiliev, Can transient phenomena help improving time resolution in
scintillators?, IEEE Trans. Nucl. Sciences, Vol. 61, NO. 1, February 2014
24. J.Q. Grim et al., Continuous-Wave Biexciton Lasing at Room Temperature Using SolutionProcessed Quantum Wells, Nat. Nanotechnol. 9, 891–895 (2014)
25. P. Lecoq, Metamaterials for novel X- or γ -ray detector designs, 2008 IEEE Nuclear Science
Symposium Conference Record, N07-1, pp.680-684
P. Lecoq
References
1. B. Rossi, High Energy Particles, Prentice-Hall, Inc. Englewood Cliffs, NY, 1952.
2. U. Fano, Annu. Rev. Nucl. Sci. 13 (1963) 1.
3. J.D. Jackson, Classical Electrodynamics, 2 nd ed., Wiley, New York, 1975, chap. 13.
4. R.D. Evans, The Atomic Nucleus, Krieger, New York, 1982.
5. A. Lempicki et al., Fundamental limits of scintillator performance, Nucl. Instrum. Meth. A
333 (1993) 304-311.
6. P. Lecoq et al., Lead Tungstate (PbWO 4 ) scintillators for LHC EM calorimetry, Nucl. Instrum.
Meth. A 365 (1995) 291-298.
7. Scintillation Detectors, Catalog, Saint Gobain, Ceramiques Industrielles, March 1992.
8. A. Annenkov et al., Suppression of the radiation damage in Lead Tungstate scintillation
crystal, Nucl. Instrum. Meth. A 426 (1999) 486-490.
9. The CMS Collaboration (2015) Technical proposal for the phase II upgrade of the compact
muon solenoid, CERN-LHCC-2015-010/LHCC-P-008
10. Gundacker S. et al, (2013), Time of Flight positron emission tomography towards 100ps
resolution with L(Y)SO: an experimental and theoretical analysis, JINST 8:P07014
11. P. Lecoq, A. Annenkov, A. Gektin, M. Korzhik, C. Pedrini, Inorganic Scintillators for
Detector Systems, Springer-Verlag, 2006. Second edition 2017, ISBN 978-3-319-45521-1 doi
10.1007/978-3-319-45522-8
12. A.J. Dean, Imaging in high-energy astronomy, in: Heavy Scintillators for scientific and
industrial applications, Proc. Int. Workshop Cristal 2000, Sep 22-26, 1992, Chamonix, France,
F. De Notaristefani, P. Lecoq, M. Schneegans (eds.), Editions Frontières France, 1992, pp. 5364.
13. C. Kuntner et al., Intrinsic energy resolution and light output of the Lu0.7Y0.3AP:Ce
scintillator, Nucl. Instrum. Meth. A 493 (2002) 131-136.
14. M.C. Abreu et al., ClearPEM: A PET imaging system dedicated to breast cancer diagnostics,
Nucl. Instrum. Meth. A 571, (2007) p. 81-84.
15. J.B. Birks, The Theory and Practice of Scintillation Counting, Pergamon, London, 1964.
16. A. Vasiliev, Relaxation of hot electronic excitations in scintillators: account for scattering,
track effects, complicated electronic structure, Proc. Fifth Int. Conf. Inorganic Scintillators and
their Applications, SCINT99, V.V. Mikhailin (ed.), Moscow State University, Moscow, 2000,
pp. 43-52.
17. C. Pedrini et al., Time-resolved luminescence of CeF 3 crystals excited by X-ray synchrotron
radiation, Chem. Phys. Lett. 206 (1993) 470–474.
18. M. Kronberger, E. Auffray, P. Lecoq, Probing the concept of Photonics Crystals on Scintillating
Materials, Proc. 9 th Int. Conf. Inorganic Scintillators and their Applications, Winston-Salem,
NC, June 4-8, 2007, IEEE Trans. Nucl. Sci. 55(3) (2008) 1102-1106.
19. A. Knapitsch, P. Lecoq, Review on photonic crystal coatings for scintillators, International
Journal of Modern Physics A, Vol. 29 (2014) 1430070 (31 pages) https://doi.org/10.1142/
S0217751X14300701
20. R.B. Murray, A. Meyer, Scintillation response of activated inorganic crystals to various
charged particles, Phys. Rev. 122 (1961) 815-826.
21. W.W. Moses, S.A. Payne, W.S. Choong, Scintillator Non-Proportionality: Present Understanding and Future Challenges, IEEE Trans. Nucl. Sci. 55(3) (2008) 1049-1053.
22. B.D. Rooney, J.D. Valentine, Scintillator Light Yield Non-proportionality: Calculating Photon
Response Using Measured Electron Response, IEEE Trans. Nucl. Sci. 44(3) (1997) 509-516.
23. P. Lecoq, M. Korzik, A. Vasiliev, Can transient phenomena help improving time resolution in
scintillators?, IEEE Trans. Nucl. Sciences, Vol. 61, NO. 1, February 2014
24. J.Q. Grim et al., Continuous-Wave Biexciton Lasing at Room Temperature Using SolutionProcessed Quantum Wells, Nat. Nanotechnol. 9, 891–895 (2014)
25. P. Lecoq, Metamaterials for novel X- or γ -ray detector designs, 2008 IEEE Nuclear Science
Symposium Conference Record, N07-1, pp.680-684
