Understanding the formation mechanism of subsurface damage in potassium dihydrogen phosphate crystals during ultra-precision fly cutting

Yong Zhang , Ning Hou , Liang-Chi Zhang

Advances in Manufacturing ›› 2019, Vol. 7 ›› Issue (3) : 270 -277.

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Advances in Manufacturing ›› 2019, Vol. 7 ›› Issue (3) : 270 -277. DOI: 10.1007/s40436-019-00265-2
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Understanding the formation mechanism of subsurface damage in potassium dihydrogen phosphate crystals during ultra-precision fly cutting

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Abstract

Potassium dihydrogen phosphate (KDP) crystals play an important role in high-energy laser systems, but the laser damage threshold (LDT) of KDP components is lower than expected. The LDT is significantly influenced by subsurface damage produced in KDP crystals. However, it is very challenging to detect the subsurface damage caused by processing because a KDP is soft, brittle, and sensitive to the external environment (e.g., humidity, temperature and applied stress). Conventional characterization methods such as transmission electron microscopy are ineffective for this purpose. This paper proposes a nondestructive detection method called grazing incidence X-ray diffraction (GIXD) to investigate the formation of subsurface damage during ultra-precision fly cutting of KDP crystals. Some crystal planes, namely (200), (112), (312), (211), (220), (202), (301), (213), (310) and (303), were detected in the processed subsurface with the aid of GIXD, which provided very different results for KDP crystal bulk. These results mean that single KDP crystals change into a lattice misalignment structure (LMS) due to mechanical stress in the subsurface. These crystal planes match the slip systems of the KDP crystals, implying that dislocations nucleate and propagate along slip systems to result in the formation of the LMS under shear and compression stresses. The discovery of the LMS in the subsurface provides a new insight into the nature of the laser-induced damage of KDP crystals.

Keywords

Potassium dihydrogen phosphate (KDP) crystals / Subsurface damage / Lattice misalignment structure / Slip systems

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Yong Zhang, Ning Hou, Liang-Chi Zhang. Understanding the formation mechanism of subsurface damage in potassium dihydrogen phosphate crystals during ultra-precision fly cutting. Advances in Manufacturing, 2019, 7(3): 270-277 DOI:10.1007/s40436-019-00265-2

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References

[1]

De Yoreo JJ, Burnham AK, Whitman PK. Developing KH2PO4 and KD2PO4 crystals for the world’s most power laser. Int Mater Rev, 2002, 47(3): 113-152.

[2]

Eimerl D. Electro-optic, linear, and nonlinear optical properties of KDP and its isomorphs. Ferroelectrics, 1987, 72(1): 95-139.

[3]

Zaitseva NP, De Yoreo JJ, DeHaven MR, et al. Rapid growth of large-scale (40–55 cm) KH2PO4 crystals. J Cryst Growth, 1997, 180(2): 255-262.

[4]

Chen G, Sun Y, An C, et al. Measurement and analysis for frequency domain error of ultra-precision spindle in a flycutting machine tool. J Eng Manuf, 2018, 232(9): 1501-1507.

[5]

Chen G, Sun Y, Zhang F, et al. Influence of ultra-precision flycutting spindle error on surface frequency domain error formation. Int J Adv Manuf Technol, 2017, 88(9–12): 3233-3241.

[6]

Salo VI, Atroschenko LV, Garnov SV et al (1996) Structure, impurity composition, and laser damage threshold of the subsurface layers in KDP and KD*P single crystals. In: 27th Annual boulder damage symposium: laser-induced damage in optical materials, pp 197–201

[7]

Tie G, Dai Y, Guan C, et al. Research on subsurface defects of potassium dihydrogen phosphate crystals fabricated by single point diamond turning technique. Opt Eng, 2013, 52(3): 033401.

[8]

Wang QG, Gao H, Pei ZJ, et al. Study on the subsurface damage of KDP crystal ground with ultrasonic vibration assistance. J Synth Cryst, 2010, 39(1): 67-71.

[9]

Wu DJ, Cao XS, Wang QG, et al. Damage detection and analysis of machined KDP crystal subsurface. Opt Precis Eng, 2007, 15(11): 1721-1726.

[10]

Hou N, Zhang Y, Zhang LC, et al. Assessing microstructure changes in potassium dihydrogen phosphate crystals induced by mechanical stresses. Scripta Mater, 2016, 113: 48-50.

[11]

Fu YJ, Gao ZS, Sun X, et al. Effects of anions on rapid growth and growth habit of KDP crystals. Prog Cryst Growth Charact Mater, 2000, 40(1–4): 211-220.

[12]

Cai W, Katrusiak A. Structure of the high-pressure phase IV of KH2PO4 (KDP). Dalton Trans, 2013, 42(4): 863-866.

[13]

Zhang Q, Chen F, Kioussis N, et al. Ab initio study of the electronic and structural properties of the ferroelectric transition in KH2PO4. Phys Rev B, 2001, 65(2): 024108.

[14]

Peng J, Zhang LC, Lu XC. Elastic-plastic deformation of KDP crystals under nanoindentation. Mater Sci Forum, 2014, 773–774: 705-711.

[15]

Gloaguen D, Fajoui J, Girault B. Residual stress fields analysis in rolled Zircaloy-4 plates: grazing incidence diffraction and elastoplastic self-consistent model. Acta Mater, 2014, 71: 136-144.

[16]

Angerer P, Strobl S. Equi-penetration grazing incidence X-ray diffraction method: stress depth profiling of ground silicon nitride. Acta Mater, 2014, 77: 370-378.

[17]

Kobayashi Y, Endo S, Ming LC, et al. Phase transitions and amorphization in KD2PO4 and KH2PO4 under high pressure. Phys Rev B, 2002, 65(13): 132105.

[18]

Wang B, Wang SL, Fang CS, et al. Effects of Fe3+ ion on the growth habit of KDP crystal. J Synth Cryst, 2005, 34(2): 205-208.

[19]

Sun X, Zhang YZ, Xu MX, et al. Effect of Fe3+ ion on the optical properties of KDP crystal. J Synth Cryst, 2007, 36(6): 1240-1244.

[20]

Fang FZ, Venkatesh VC. Diamond cutting of silicon with nanometric finish. CIRP Ann-Manuf Technol, 1998, 47(1): 45-49.

[21]

Guin CH, Katrich MD, Savinkov AI, et al. Plastic strain and dislocation structure of the KDP group crystals. Cryst Res Technol, 1980, 15(4): 479-488.

[22]

Zhang Y, Zhang LC, Liu M, et al. Revealing the mechanical properties of KDP crystals by nanoindentation. J Mater Res, 2016, 31(8): 1056-1064.

[23]

Koslowski M, Cuitino AM, Ortiz M. A phase-field theory of dislocation dynamics, strain hardening and hysteresis in ductile single crystals. J Mech Phys Solids, 2002, 50(12): 2597-2635.

[24]

Endert H, Melle W. Influence of dislocations in KDP crystals on laser damage threshold. Cryst Res Technol, 1981, 16(7): 815-819.

[25]

Negres RA, Kucheyev SO, DeMange P, et al. Decomposition of KH2PO4 crystals during laser-induced breakdown. Appl Phys Lett, 2005, 86(17): 171107.

[26]

Zhu SJ, Wang SL, Liu LL, et al. Refractive index homogeneity of large scale potassium dihydrogen phosphate crystal. Acta Phys Sin, 2014, 63(10): 107701

[27]

Schaffer CB, Brodeur A, Mazur E. Laser-induced breakdown and damage in bulk transparent materials induced by tightly focused femtosecond laser pulses. Meas Sci Technol, 2001, 12(11): 1784-1794.

[28]

Fleck JJ, Layne C. Study of self-focusing damage in a high-power Nd: glass-rod amplifier. Appl Phys Lett, 1973, 22(9): 467-469.

Funding

NSFC(51875137)

Heilongjiang Provincial Postdoctoral Science Foundation (CN)(E2018033)

ARC(DP170100567)

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