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    KCI등재 SCOPUS SCIE

    Syntheses and Crystal Structures of Mercury(II) and Copper(II) Complexes of an 18-Membered NS4-Macrocycle

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    https://www.riss.kr/link?id=A103920801

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    An 18-membered NS4-macrocycle was employed, and its complexation behaviors with hard and soft metal ions were investigated. Reactions of L with mercury(II) nitrate and thiocyanate afforded endocyclic mononuclear complexes [Hg(L)(NO3)2] (1) and [Hg(L)(SCN)2] (2), respectively, with anion coordinations. In the nitrato complex 1, the mercury(II) center is six-coordinate, being bound to three S donors and one pyridine N atom in L, and the coordination sphere is completed by two monodentate nitrate ions from both sides of the macrocyclic plane adopting a distorted octahedral geometry. The thiocyanato complex 2, which contains two crystallographically independent but almost isostructural complex units is five-coordinate, being bound to NS2 donors in L and two monodentate thiocyanate ions on the same side of the bound macrocycle unlike 1, adopting a distorted square pyramidal geometry. Reaction of L with CuCl2.2H2O yielded a dark-green bis(macrocycle) trinuclear complex, [Cu3(L)2Cl6].0.5CH2Cl2 (3), in which two endocyclic monocopper(II) complex units are linked by an exocyclic one Cu and two bridging Cl atoms. In 3, interestingly, the local coordination environments of the three copper(II) atoms are different, with four, five, or six coordination, adopting a distorted square pyramidal, tetrahedral, or octahedral geometry, respectively. From these results, it is found that the ditopic ligand L reacts with both soft and hard metal-ion species to give diverse types of endocyclic complexes whose structures are also dependent on the anions used.
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    An 18-membered NS4-macrocycle was employed, and its complexation behaviors with hard and soft metal ions were investigated. Reactions of L with mercury(II) nitrate and thiocyanate afforded endocyclic mononuclear complexes [Hg(L)(NO3)2] (1) and [Hg(L)(...

    An 18-membered NS4-macrocycle was employed, and its complexation behaviors with hard and soft metal ions were investigated. Reactions of L with mercury(II) nitrate and thiocyanate afforded endocyclic mononuclear complexes [Hg(L)(NO3)2] (1) and [Hg(L)(SCN)2] (2), respectively, with anion coordinations. In the nitrato complex 1, the mercury(II) center is six-coordinate, being bound to three S donors and one pyridine N atom in L, and the coordination sphere is completed by two monodentate nitrate ions from both sides of the macrocyclic plane adopting a distorted octahedral geometry. The thiocyanato complex 2, which contains two crystallographically independent but almost isostructural complex units is five-coordinate, being bound to NS2 donors in L and two monodentate thiocyanate ions on the same side of the bound macrocycle unlike 1, adopting a distorted square pyramidal geometry. Reaction of L with CuCl2.2H2O yielded a dark-green bis(macrocycle) trinuclear complex, [Cu3(L)2Cl6].0.5CH2Cl2 (3), in which two endocyclic monocopper(II) complex units are linked by an exocyclic one Cu and two bridging Cl atoms. In 3, interestingly, the local coordination environments of the three copper(II) atoms are different, with four, five, or six coordination, adopting a distorted square pyramidal, tetrahedral, or octahedral geometry, respectively. From these results, it is found that the ditopic ligand L reacts with both soft and hard metal-ion species to give diverse types of endocyclic complexes whose structures are also dependent on the anions used.

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    참고문헌 (Reference)

    1 S. Park, 12 : 1320-, 2012

    2 A. W. Addison, 1349-, 1984

    3 E. Lee, 15 : 1814-, 2013

    4 E. Lee, 50 : 5803-, 2011

    5 C. S. Park, 50 : 671-, 2009

    6 R. E. Jr. Wolf, 109 : 4328-, 1987

    7 A. G. Blake, 35 : 1-, 1990

    8 S. E. Hill, 104 : 652-, 2000

    9 E. Lee, 257 : 3125-, 2013

    10 S. Park, 45 : 39-, 2012

    1 S. Park, 12 : 1320-, 2012

    2 A. W. Addison, 1349-, 1984

    3 E. Lee, 15 : 1814-, 2013

    4 E. Lee, 50 : 5803-, 2011

    5 C. S. Park, 50 : 671-, 2009

    6 R. E. Jr. Wolf, 109 : 4328-, 1987

    7 A. G. Blake, 35 : 1-, 1990

    8 S. E. Hill, 104 : 652-, 2000

    9 E. Lee, 257 : 3125-, 2013

    10 S. Park, 45 : 39-, 2012

    11 J. Y. Lee, 130 : 13838-, 2008

    12 J. Y. Lee, 130 : 6902-, 2008

    13 S. Y. Lee, 47 : 1913-, 2008

    14 A. D. Siewe, 53 : 393-, 2014

    15 H. J. Kim, 3532-, 2008

    16 E.-J. Kang, 49 : 7510-, 2010

    17 S. Park, 12 : 1320-, 2012

    18 H. J. Kim, 10 : 3850-, 2010

    19 I. -H. Park, 14 : 4589-, 2012

    20 H. J. Kim, 47 : 10807-, 2008

    21 H. J. Kim, 12 : 1494-, 2010

    22 S. Y. Lee, 12 : 347-, 2010

    23 H. -H. Lee, 53 : 4763-, 2014

    24 S. J. Lee, 8 : 1641-, 2006

    25 S. J. Lee, 17 : 3441-, 2007

    26 H. Lee, 11 : 1393-, 2009

    27 J. Seo, 48 : 2770-, 2009

    28 L. Pauling, "The Nature of the Chemical Bond" Cornell University Press 260-, 1960

    29 L. F. Lindoy, "The Chemistry of Macrocyclic Complexes" Cambridge University Press 1989

    30 Bruker, "SHELXTL-PC Version 6.22: Program for Solution and Refinement of Crystal Structures" Bruker AXS Inc 2001

    31 J.-M. Lehn, "Concept and Perspectives" VCH 1995

    32 Bruker, "APEX2 Version 2009.1–0 Data collection and Processing Software" Bruker AXS Inc 2009

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