Noninterpenetrating Square-Grid Coordination Polymers With Dimensions of 25×25 Å2 Prepared by UsingN,N′-Type Ligands: The First Chiral Square-Grid Coordination Polymer
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Hans-Conrad zur Loye | Mark D. Smith | U. Bunz | H. Loye | Uwe H. F. Bunz | Neil Gregory Pschirer | Delia M. Ciurtin | N. Pschirer | D. M. Ciurtin
[1] K. Biradha,et al. Helical Coordination Polymers with Large Chiral Cavities. , 1999, Angewandte Chemie.
[2] J. Rebek,et al. Self-Assembled Molecular Capsule Catalyzes a Diels−Alder Reaction , 1998 .
[3] Bin Chen,et al. Interwoven Metal-Organic Framework on a Periodic Minimal Surface with Extra-Large Pores , 2001, Science.
[4] Michael J. Zaworotko,et al. Superstructural diversity in two dimensions: crystal engineering of laminated solids , 2001 .
[5] S. Rizzato,et al. Chiral packing of chiral quintuple layers polycatenated to give a three-dimensional network in the coordination polymer [Co5(bpe)9(H2O)8(SO4)4](SO4)·14H2O [bpe = 1,2-bis(4-pyridyl)ethane] , 2000 .
[6] R. Fischer,et al. Polymeres Tris[trimethylzinn(IV)]hexacyanocobaltat(III): Ein Verhindertes „Super‐Berlinerblau”︁‐Analogon und sein Tris[tris(cyclopentadienyl)uran(IV)]‐Homologes , 1985 .
[7] C. Che,et al. The first chiral 2-D molecular triangular grid , 2000 .
[8] G. Bernardinelli,et al. Stereoselective Synthesis of Coordination Compounds: Self-Assembly of a Polymeric Double Helix with Controlled Chirality. , 1999, Angewandte Chemie.
[9] A. V. Zelewsky,et al. Stereoselektive Synthese von Koordinationsverbindungen: Selbstorganisation einer polymeren Doppelhelix mit kontrollierter Chiralität , 1999 .
[10] Mark D. Smith,et al. A Novel Noninterpenetrating Polycyclohexane Network: A New Inorganic/Organic Coordination Polymer Structural Motif Generated by Self-Assembly of “T-Shaped” Moieties , 2000 .
[11] Davide M. Proserpio,et al. An unprecedented triply interpenetrated chiral network of ‘square-planar’ metal centres from the self-assembly of copper(II) nitrate and 1,2-bis(4-pyridyl)ethyne , 1998 .
[12] K. Biradha,et al. Selective formation of rectangular grid coordination polymers with grid dimensions 10 × 15, 10 × 20 and 15 × 20 Å , 2001 .
[13] Mark D. Smith,et al. New Crystalline Frameworks Formed from 1,2-Bis(4-pyridyl)ethyne and Co(NO3)2: Interpenetrating Molecular Ladders and an Unexpected Molecular Parquet Pattern from T-Shaped Building Blocks , 1999 .
[14] Y. Aoyama,et al. Helical Coordination Polymers from Achiral Components in Crystals. Homochiral Crystallization, Homochiral Helix Winding in the Solid State, and Chirality Control by Seeding , 1999 .
[15] R. Robson,et al. Einander durchdringende Netze: geordnete, periodische Verschlingung , 1998 .
[16] J. Rebek,et al. Diels−Alder Reactions through Reversible Encapsulation , 1998 .
[17] Mark D. Smith,et al. Novel M(II)–Hg(II) coordination polymers generated from metal-containing building blocks M(2-pyrazinecarboxylate)2 · (H2O)2 (M=Cu, Ni, Co) and HgCl2 , 2000 .
[18] Kumar Biradha,et al. Open Square-Grid Coordination Polymers of the Dimensions 20×20 Å: Remarkably Stable and Crystalline Solids Even after Guest Removal. , 2000, Angewandte Chemie.
[19] R. Fischer,et al. Polymeric Tris[trimethyltin(IV)]hexacyanocobaltate(III), a Compound Non‐Analogous to “Super Prussian Blue,” and Its Tris[tricyclopentadienyluranium(IV)] Homologue , 1985 .
[20] P. Stang,et al. Self-Assembly of Cationic, Tetranuclear, Pt(II) and Pd(II) Macrocyclic Squares. x-ray Crystal Structure of [Pt2+(dppp)(4,4'-bipyridyl).cntdot.2-OSO2CF3]4 , 1995 .
[21] R. Cao,et al. Chiral channels in a 3-D network of self-assembled tetranuclear copper(II) aggregates , 2000 .
[22] A. J. Blake,et al. Synthesis of a chiral adamantoid network— the role of solvent in the construction of new coordination networks with silver(I) , 2000 .
[23] Michael J. Zaworotko,et al. Helicale Koordinationspolymere mit großen chiralen Hohlräumen , 1999 .
[24] P. Stang,et al. Self-Assembly, Symmetry, and Molecular Architecture: Coordination as the Motif in the Rational Design of Supramolecular Metallacyclic Polygons and Polyhedra , 1997 .
[25] Mark D. Smith,et al. [Cu(2-pyrazinecarboxylato)2 HgI2 ]⋅HgI2 : An Open Noninterpenetrating CuII -HgII Mixed-Metal Cuboidal Framework Encapsulating Nearly Linear HgI2 Guest Molecules. , 2000, Angewandte Chemie.
[26] Stuart R Batten,et al. Interpenetrating Nets: Ordered, Periodic Entanglement. , 1998, Angewandte Chemie.