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	<dc:title xml:lang="en-US">Halide bridged organophosphorus complexes of HgX2 (X: I, Br and Cl): Synthesis, structure and theoretical studies</dc:title>
	<dc:creator>Mondal, Jahangir</dc:creator>
	<dc:creator>Manna, Amit Kumar</dc:creator>
	<dc:creator>Patra, Goutam Kumar</dc:creator>
	<dc:subject xml:lang="en-US">DFT</dc:subject>
	<dc:subject xml:lang="en-US">Mercury halides</dc:subject>
	<dc:subject xml:lang="en-US">X-ray crystal structure</dc:subject>
	<dc:subject xml:lang="en-US">Hirshfeld surface studies</dc:subject>
	<dc:subject xml:lang="en-US">Halide bridged complexes</dc:subject>
	<dc:subject xml:lang="en-US">Triphenyl phosphine ligand</dc:subject>
	<dc:description xml:lang="en-US">Three organophosphorus mercury (II) coordination compounds [Hg2(µ-X)2X2(PPh3)2] {X: I (1), Br (2), and Cl (3)} have been synthesized by the reaction of mercury (II) halides with triphenylphosphine. The prepared complexes were characterized by spectroscopic techniques as well as by elemental analysis. The crystal structure of [Hg2(µ-I)2I2(PPh3)2] (1) was obtained by single-crystal X-ray diffraction study. Crystal data for [Hg2(µ-I)2I2(PPh3)2], C36H30Hg2I4P2: Monoclinic, space group P21/c (no. 14), a = 19.2115(13) Å, b = 11.1291(8) Å, c = 19.0599(14) Å, β = 90.461(2)°, V = 4075.0(5) Å3, Z = 4, T = 293.15 K, μ (MoKα) = 10.657 mm-1, Dcalc = 2.336 g/cm3, 46095 reflections measured (4.23° ≤ 2Θ ≤ 49.994°), 7182 unique (Rint = 0.0563, Rsigma = 0.0365) which were used in all calculations. The final R1 was 0.0322 (I &amp;gt; 2σ(I)) and wR2 was 0.0780 (all data). The single crystal analysis of [Hg2(µ-I)2I2(PPh3)2] complex revealed that it has dimeric structure with bridged halides. [Hg2(µ-I)2I2(PPh3)2] complex has also a supramolecular arrangement through I···H-C interactions. The crystal packing and supramolecular features of these coordination compounds have also been studied using geometrical analysis, Hirshfeld surface analysis and DFT studies. Hirshfeld surface analysis indicated that H···H (49.3%), C···H (10.6%), and I···H (12.8%) interactions are the primary contributors to the intermolecular stabilization in the crystal. The equilibrium geometries of the studied complexes are investigated theoretically at the B3LYP/LANL2DZ level of theory. The calculated energy gap between HOMO-LUMO orbitals for complexes 1, 2, and 3 are in the trend of complex 3 &amp;gt; 2 &amp;gt; 1.</dc:description>
	<dc:publisher xml:lang="en-US">Atlanta Publishing House LLC</dc:publisher>
	<dc:date>2021-03-31</dc:date>
	<dc:type>info:eu-repo/semantics/article</dc:type>
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	<dc:identifier>https://www.eurjchem.com/index.php/eurjchem/article/view/2039</dc:identifier>
	<dc:identifier>10.5155/eurjchem.12.1.23-31.2039</dc:identifier>
	<dc:source xml:lang="en-US">European Journal of Chemistry; Vol. 12 No. 1 (2021): March 2021; 23-31</dc:source>
	<dc:source>2153-2257</dc:source>
	<dc:source>2153-2249</dc:source>
	<dc:language>eng</dc:language>
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	<dc:relation>https://www.eurjchem.com/index.php/eurjchem/article/view/2039/2680</dc:relation>
	<dc:rights xml:lang="en-US">Copyright (c) 2021 Authors</dc:rights>
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