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Structure, Elastic Constants and XRD Spectra of Extended Solids under High Pressure

Published online by Cambridge University Press:  06 March 2018

I.G. Batyrev*
Affiliation:
US Army Research Laboratory, Aberdeen Proving Ground, MD21005
S.P. Coleman
Affiliation:
US Army Research Laboratory, Aberdeen Proving Ground, MD21005
J.A. Ciezak-Jenkins
Affiliation:
US Army Research Laboratory, Aberdeen Proving Ground, MD21005
E. Stavrou
Affiliation:
Lawrence Livermore National Laboratory, 7000 East Ave, Livermore, CA94550
J.M. Zaug
Affiliation:
Lawrence Livermore National Laboratory, 7000 East Ave, Livermore, CA94550
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Abstract

We present results of evolutionary simulations based on density functional calculations of a potentially new type of energetic materials called extended solids: P-N and N-H. High-density structures with covalent bonds generated using variable and fixed concentration methods were analysed in terms of thermo-dynamical stability and agreement with experimental X-ray diffraction (XRD) spectra. X-ray diffraction spectra were calculated using a virtual diffraction algorithm that computes kinematic diffraction intensity in three-dimensional reciprocal space before being reduced to a two-theta line profile. Calculated XRD patterns were used to search for the structure of extended solids present at experimental pressures by optimizing data according to experimental XRD peak position, peak intensity and theoretically calculated enthalpy. Elastic constants has been calculated for thermodynamically stable structures of P-N system.

Type
Articles
Copyright
Copyright © Materials Research Society 2018 

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References

REFERENCES

Lipp, M.J., Evans, W.J., Baer, B.J., Yoo, C.S., Nat. Mat. 4, 211 (2005).Google Scholar
Xia, K., Sun, J., Packard, C.J., Klug, D.D. and Needs, D.J., Phys. Rev. B95, 114102 (2017).Google Scholar
Goncharov, A.F., Holtgrewe, N., Qian, G.R., Hu, C. H., Oganov, A.R., Somayazulu, M., Stavrou, E.; Pickard, C.J., Berlie, A., Yen, F.; Mahmood, M., Lobanov, S.S., Konopkova, Z., Prakapenka, V.B., J. Chem. Phys. 142, 21 (2015).Google Scholar
Stavrou, E., Yao, Y., Zaug, J.M., Bastea, S., Kalkan, B., Konopkova, Z., Kunz, M., Sci Rep. 6, 30631 (2016).Google Scholar
Raza, Z., Errea, I., Oganov, A.R., Saitta, A.M., Sci Rep 4, 5889 (2014).Google Scholar
Coleman, S.P., Spearot, D.E., Capolungo, I., Model Simul Mat Sc 21, 5 (2013).Google Scholar
Oganov, A.R., Glass, C.W., J. Chem. Phys. 124, 24 (2006).Google Scholar
Kresse, G., Furthmuller, J., Comp Mater Sci 6 (1), 15 (1996).Google Scholar
Plimpton, S.F., J Comput. Phys. 117 (1), 1-19 (1995).CrossRefGoogle Scholar
Perdew, J. P., Burke, K., and Ernzerhof, M., Phys. Rev. Lett. 77, 3865 (1996).CrossRefGoogle Scholar
Lee, K., Murray, E.D., Kong, L., Lundqvist, B.I., and Langreth, D.C., Phys. Rev. B 82, 081101 (2010).CrossRefGoogle Scholar
Hamann, D.R., Schluter, M., Chiang, C., Phys. Rev. Lett. 43, 1494 (1979).Google Scholar
Batyrev, I.G.. J. Phys. Chem. A 121, 638 (2017).Google Scholar
Krukau, A.V.; Vydrov, A.O., Izmaylov, A.F., Scuseria, G.E.,.J. Chem. Phys. 125, 224106 (2006).Google Scholar
Batyrev, I.G., Coleman, S.P., Ciezak-Jenkins, J.A., Larentzos, J.P., J.P., in Proceeding of Denver X-ray diffraction conference, Rosemont, IL, 2016; (International Centre for Diffraction Data 2017 ISSN 1097-0002) 60, pp.34-40.Google Scholar