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Structural, Spectroscopic and Hirshfeld Surface Analysis of Anilinium Malonate
Asian Journal of Chemistry,
Vol. 31 No. 4 (2019): Vol 31 Issue 4
Abstract
The comprehensive elucidation of the crystal structure, vibrational and Hirshfeld surface analysis of new crystalline product anilinium malonate C6H5NH3+. C3H3O4– are presented in this communication. Single crystals of anilinium malonate have been grown by the method of slow evaporation at room temperature. Single crystal XRD study has been carried out to study the structural properties of the grown crystal and it reveals that the crystal crystallizes in the monoclinic system with centrosymmetric space group P2(1)/n. Room temperature powder infrared and Raman spectra of the aniline malonic acid molecular complex (1:1) were carried out. All the characteristic frequencies present in the crystal gives the notable vibrational effect. Hirshfeld surface analysis has been carried out to know the intercontact between the atoms in the structure of the grown crystal.
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References
D.S. Chemla and J. Zyss, Nonlinear Optical Properties of Organic Molecules and Crystals, Academic Press: New York, pp 110 (1987).
S. Shaji, S.M. Eappen, T.M.A. Rasheed and K.P.R. Nair, Spectrochim. Acta A Mol. Biomol. Spectrosc., 60, 351 (2004); https://doi.org/10.1016/S1386-1425(03)00233-6.
M. Arivazhagan, V.P. Subhasini and A. Austine, Spectrochim. Acta A, 86, 205 (2012); https://doi.org/10.1016/j.saa.2011.10.026.
E. Kavitha and N. Sundaraganesan, Indian J. Pure Appl. Phy., 48, 20 (2010).
D.P. Anand, S.S. Kumar, K. Ambujam, K. Rajarajan, M.G. Mohammed and A. Sagayaraj, Indian J. Pure Appl. Phys., 43, 863 (2005).
D. Avci, A. Basoglu and Y. Atalay, Z. Naturforsch. A, 63, 712 (2008); https://doi.org/10.1515/zna-2008-10-1115.
T. Tsunekawa, T. Gotoh and M. Iwamoto, Chem. Phys. Lett., 166, 353 (1990); https://doi.org/10.1016/0009-2614(90)85042-B.
P. Vivek, A. Suvitha and P. Murugakoothan, Spectrochim. Acta A, 134, 517 (2015); https://doi.org/10.1016/j.saa.2014.05.051.
N. Kanagathara, M.K. Marchewka, G. Anbalagan, A. Ben Ahmed and H. Feki, J. Optoelectron. Adv. Mater., 19, 251 (2017).
E. Sapina, E. Escriva, J.V. Folgado, A. Beltran, D. Beltran, A. Fuertes and M. Drillon, Inorg. Chem., 31, 3851 (1992); https://doi.org/10.1021/ic00044a031.
E. Colacio, J.M. Dominguez-Vera, J.P. Costes, R. Kivekas, J.P. Laurent, J. Ruiz and M. Sundberg, Inorg. Chem., 31, 774 (1992); https://doi.org/10.1021/ic00031a016.
F.S. Delgado, M. Hernández-Molina, J. Sanchiz, C. Ruiz-Pérez, Y. Rodríguez-Martín, T. López, F. Lloret and M. Julve, CrystEngComm, 6, 106 (2004); https://doi.org/10.1039/B403640A.
Q.-Z. Zhang, W.-B. Yang, S.-M. Chen and C.-Z. Lu, Bull. Korean Chem. Soc., 26, 1631 (2005); https://doi.org/10.5012/bkcs.2005.26.10.1631.
C. Oldham, in: G. Wilkinson, R.D. Gillard, J.A. McCleverty (Eds.), Comprehensive Coordination Chemistry, vol. 2, Pergamon Press, Oxford, 1987, 435.
S.-M. Zhu, Acta Cryst., E68, o2597 (2012).
O. Kaman, L. Smrcok, R. Gyepes, D. Havlýcek, Acta Cryst., C68, o57 (2012).
K. Diffraction, KM4/CCD Users’ Guide, Version 1.169 (Release April, 2000), Wroclaw, Poland, 2000.
G.M. Sheldrick, X.L.SHEL, Program for Crystal Structure Refinement, University of Gottingen, Germany, 1993.
G.M. Sheldrick, Acta Crystallogr. A, 64, 112 (2008); https://doi.org/10.1107/S0108767307043930.
J.A. Paixâo, A. Matos Beja, M. Ramos Silva and L. Alte da Veiga, Z. Kristallogr. NCS, 214, 85 (1999).
C.F. Macrae, P.R. Edgington, P. McCabe, E. Pidcock, G.P. Shields, R. Taylor, M. Towler and J. van de Streek, J. Appl. Cryst., 39, 453 (2006); https://doi.org/10.1107/S002188980600731X.
R.M. Siverstein and F.X. Webster, Spectrometric Identification of Organic Compounds, Sixth Ed., Wiley 1998, Chapter 3, pp. 102.
M. Drozd and M.K. Marchewka, J. Mol. Struct. THEOCHEM, 716, 175 (2005); https://doi.org/10.1016/j.theochem.2004.11.020.
N. Kanagathara, M.K. Marchewka, M. Drozd, S. Gunasekaran, P.R. Rajakumar and G. Anbalagan, Spectrochim. Acta A, 145, 394 (2015); https://doi.org/10.1016/j.saa.2015.03.002.
A. Poiyamozhi, N. Sundaraganesan, M. Karabacak, O. Tanrýverdi and M. Kurt, J. Mol. Struct., 1024, 1 (2012); https://doi.org/10.1016/j.molstruc.2012.05.008.
V. Krishnakumar, V. Balachandran and T. Chithambarathanu, Spectrochim. Acta A, 62, 918 (2005); https://doi.org/10.1016/j.saa.2005.02.051.
H. Spedding and D.H. Whiffen, Proc. R. Soc. Lond. A Math. Phys. Sci., 238, 245 (1956).
D.N. Sathyanarayana, Vibrational Spectroscopy, Theory and Applications, New Age International (P) Ltd. Publishers: New Delhi (1996).
M.K. Marchewka, S. Debrus, M. Drozd, J. Baran, A.J. Barnes, D. Xue and H. Ratajczak, Pol. J. Chem., 77, 1625 (2003).
R.M. Silverstein, G.C. Bassler and T.C. Morril, Spectrophotometric Identification of Organic Compounds (1981) John Wiley and Sons, New York.
K.C. Russell, J.-M. Lehn, N. Kyritsakas, A. DeCian and J. Fischer, New J. Chem., 22, 123 (1998); https://doi.org/10.1039/a708318a.
R.F.M. Lange and E.W. Meijer, Macromol. Symp., 102, 301 (1996); https://doi.org/10.1002/masy.19961020136.
P. Tarakeshwar and S. Manogaran, J. Mol. Struct. THEOCHEM, 362, 77 (1996); https://doi.org/10.1016/0166-1280(95)04375-6.
J. Kidriè, J. Mavri, M. Podobnik and D. Had•i, J. Mol. Struct., 237, 265 (1990); https://doi.org/10.1016/0022-2860(90)80144-9.
M.J. Turner, J.J. McKinnon, S.K. Wolff, D.J. Grimwood, P.R. Spackman, D. Jayatilaka and M.A. Spackman, CrystalExplorer17 (2017). University of Western Australia. http://hirshfeldsurface.net.
M.A. Spackman, J.J. McKinnon and D. Jayatilaka, CrystEngComm, 10, 377 (2008).
M.A. Spackman and J.J. McKinnon, CrystEngComm, 4, 378 (2002); https://doi.org/10.1039/B203191B.
S. K. Wolff, D. J. Greenwood, J. J. McKinnon, M. J. Turner, D. Jayatilaka, M. A. Spackman. (2012) Crystal Explorer, Version 3.1.