• Matter and Radiation at Extremes
  • Vol. 5, Issue 3, 035402 (2020)
Xiangcao Li, Bao’an Liu, Chunyan Yan, Jie Ren..., Chang Liu and Xin Jua)|Show fewer author(s)
Author Affiliations
  • Department of Physics, University of Science and Technology Beijing, Beijing 100083, China
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    DOI: 10.1063/1.5143289 Cite this Article
    Xiangcao Li, Bao’an Liu, Chunyan Yan, Jie Ren, Chang Liu, Xin Ju. Defects of laser-irradiated KDP crystals with different fluences studied by photoluminescence spectroscopy[J]. Matter and Radiation at Extremes, 2020, 5(3): 035402 Copy Citation Text show less
    References

    [1] A. K. Burnham, J. J. De Yoreo, P. K. Whitman. Developing KH2PO4 and KD2PO4 crystals for the world’s most power laser. Int. Mater. Rev., 47, 113(2002).

    [2] P. Bräunlich, P. Kelly, A. Schmid. Optical breakdown in alkali halides. Phys. Rev. B, 16, 4569(1977).

    [3] S. Backus, H. Kapteyn, G. Mourou, M. Murnane, A.-C. Tien. Short-pulse laser damage in transparent materials as a function of pulse duration. Phys. Rev. Lett., 82, 3883(1999).

    [4] G. Duchateau, A. Dyan, G. Geoffroy, S. Guizard, H. Piombini. Electron-hole dynamics in normal and deuterated KH2PO4 illuminated by intense femtosecond laser pulses. Phys. Rev. B, 83, 075114(2011).

    [5] A. Belsky, G. Duchateau, N. Fedorov, G. Geoffroy, S. Guizard, P. Martin. Interaction of intense femtosecond laser pulses with KDP and DKDP crystals in the short wavelength regime. J. Phys.: Condens. Matter, 25, 435501(2013).

    [6] I. N. Ogorodnikov, V. A. Pustovarov et al. Low-temperature time-resolved vacuum ultraviolet luminescent spectroscopy of KH2PO4 crystals with defects. Opt. Spectrosc, 91, 224-231(2001).

    [7] V. S. Cheremnykh, M. Kirm, I. N. Ogorodnikov, V. A. Pustovarov. Low-temperature time-resolved vacuum ultraviolet spectroscopy of self-trapped excitons in KH2PO4 crystals. Opt. Spectrosc, 95, 385-389(2003).

    [8] V. S. Cheremnykh, M. Kirm, I. N. Ogorodnikov, V. A. Pustovarov. A time-resolved luminescence spectroscopy study of self-trapped excitons in KH2PO4 crystals. Radiat. Meas., 38, 331(2004).

    [9] I. N. Ogorodnikov, M. K. Satybaldieva, B. V. Shul’gin, V. Yu. Yakovlev. Transient optical absorption of hole polarons in ADP (NH4H2PO4) and KDP (KH2PO4) crystals. Phys. Solid State, 44, 880(2001).

    [10] P. DeMange, S. G. Demos, M. D. Feit, R. A. Negres. Investigation of the electronic and physical properties of defect structures responsible for laser-induced damage in DKDP crystals. Opt. Express, 18, 13788(2010).

    [11] R. Dai, Y. Li, C. Tong, C. Xu, L. Yang, Y. Zhu. Mineralization and optical properties of Eu3+-doped tricalcium silicate soaked in dilute K2HPO4 aqueous solution. Opt. Mater., 85, 32(2018).

    [12] R. Ba, B. Chen, L. Ding, J. Li, Y. Li, J. Na, H. Xu, X. Yang, J. Yuan, W. Zheng, Y. Zheng, X. Zhou. Characteristics of precursors responsible for bulk damage initiation in doubler KDP crystal at different wavelengths. Opt. Laser Technol., 96, 196(2017).

    [13] Z. Cao, G. Hu, T. Jitsuno, D. Li, X. Liu, Y. Luo, W. Rudolph, Y. Shan, J. Shao, L. Yang, Y. Zhao. Photoluminescence properties of KDP crystals under high power nanosecond laser irradiation. Proc. SPIE, 10339, 103390V(2017).

    [14] K. S. Bartwal, G. Bhagavannarayana, G. S. Lodha, S. K. Sharma, Y. Singh, M. K. Tiwari, S. Verma. Investigations of structural defects, crystalline perfection, metallic impurity concentration and optical quality of flat-top KDP crystal. Opt. Mater., 46, 329(2015).

    [15] B. Bertussi, C. Gouldieff, F. Guillet, J.-Y. Natoli, F. R. Wagner. Photoluminescence characterization of KH2PO4 crystal: Application to three-dimensional growth-sector identification. Appl. Opt., 53, 3063(2014).

    [16] X. Ju, X. Li, B. a. Liu, C. Liu, C. Yan. Investigating the surface electronic structures of retired components and irradiated KDP crystals with different fluences by XANES spectroscopy. Opt. Mater. Express, 8, 816(2018).

    [17] K. A. Müller. Electron spin and paramagnetic resonance in KH2PO4 and its isomorphs. Ferroelectrics, 72, 273(1987).

    [18] L. B. Harris, G. J. Vella. Direct current conduction in ammonium and potassium dihydrogen phosphate. J. Chem. Phys., 58, 4550(1971).

    [19] J. J. DeYoreo, L. E. Halliburton, S. D. Setzler, K. T. Stevens, M. Yan, N. P. Zaitseva. Hydrogen atoms in KH2PO4 crystals. Phys. Rev. B, 57, 2643(1997).

    [20] J. W. Fleming, E. J. Friebele, D. L. Griscom, K. J. Long. Fundamental defect centers in glass: Electron spin resonance and optical absorption studies of irradiated phosphorus-doped silica glass and optical fibers. J. Appl. Phys., 54, 3743(1983).

    [21] M. E. Archidi, F. Benyaïch, R. Berger, M. Haddad, A. Nadiri. Defect centers in X-irradiated alkali phosphate glasses: EPR studies. Nucl. Instrum. Methods Phys. Res., Sect. B, 116, 145(1996).

    [22] P. Ebeling, D. Ehrt, U. Natura. UV Transmission and radiation-induced defects in phosphate and fluoride–phosphate glasses. J. Non-Cryst. Solids, 263-264, 240(2000).

    [23] V. T. Kuanyshev, I. N. Ogorodnikov, V. A. Pustovarov, M. K. Satybaldieva, B. V. Shul’gin. Low-temperature time-resolved vacuum ultraviolet luminescent spectroscopy of KH2PO4 crystals with defects. Opt. Spectrosc., 91, 224(2001).

    [24] F. Agulló‐López, J. M. Cabrera, E. Diéguez. Optical absorption and luminescence induced by x rays in KDP, DKDP, and ADP. J. Chem. Phys., 81, 3369(1984).

    [25] J. W. Chan, J. S. Hayden, T. Huser, D. M. Krol, S. H. Risbud. Fluorescence spectroscopy of color centers generated in phosphate glasses after exposure to femtosecond laser pulses. J. Am. Ceram. Soc., 85, 1037(2002).

    [26] Y.-T. Chen, Y. D. Glinka, S.-H. Lin. The photoluminescence from hydrogen-related species in composites of SiO2 nanoparticles. Appl. Phys. Lett., 75, 778(1999).

    [27] B. Li, J. Zhou. Origins of a damage-induced green photoluminescence band in fused silica revealed by time-resolved photoluminescence spectroscopy. Opt. Mater. Express, 7, 2888(2017).

    Xiangcao Li, Bao’an Liu, Chunyan Yan, Jie Ren, Chang Liu, Xin Ju. Defects of laser-irradiated KDP crystals with different fluences studied by photoluminescence spectroscopy[J]. Matter and Radiation at Extremes, 2020, 5(3): 035402
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