The balance between electronic and steric effects in the template-directed syntheses of [2]catenanes
暂无分享,去创建一个
Andrew J. P. White | David J. Williams | J. F. Stoddart | F. Raymo | S. Rowan | D. Schiraldi | A. White | Z. Wang | Marta Pérez-Alvarez | D. Williams | J. Stoddart
[1] J. F. Stoddart,et al. Stimulating Concepts in Chemistry , 2000 .
[2] Stoddart,et al. Artificial Molecular Machines. , 2000, Angewandte Chemie.
[3] J. F. Stoddart,et al. A [2]Catenane-Based Solid State Electronically Reconfigurable Switch , 2000 .
[4] Masahiro Higuchi,et al. Current/Voltage Characteristics of Monolayers of Redox‐Switchable [2]Catenanes on Gold , 2000 .
[5] J. Fraser Stoddart,et al. Fabrication and Transport Properties of Single-Molecule-Thick Electrochemical Junctions , 2000 .
[6] Becher,et al. Macrocyclization and molecular interlocking via Mitsunobu alkylation: highlighting the role of C-H...O interactions in templating , 2000, Organic letters.
[7] Seel,et al. Templates, "wheeled reagents", and a new route to rotaxanes by anion complexation: the trapping method , 2000, Chemistry.
[8] Jean-Pierre Sauvage,et al. Rotaxanes as new architectures for photoinduced electron transfer and molecular motions , 1999 .
[9] P. Stang,et al. Templated organic synthesis , 1999 .
[10] Maurizio Licchelli,et al. Transition Metals as Switches , 1999 .
[11] Stoddart,et al. Electronically configurable molecular-based logic gates , 1999, Science.
[12] Jean-Pierre Sauvage,et al. Molecular Catenanes, Rotaxanes and Knots , 1999 .
[13] P. Piotrowiak. Photoinduced electron transfer in molecular systems: Recent developments , 1999 .
[14] A. Kaifer. Interplay Between Molecular Recognition and Redox Chemistry , 1999 .
[15] J. Rebek. Reversible Encapsulation and Its Consequences in Solution , 1999 .
[16] J. F. Stoddart,et al. Interwoven supramolecular arrays via the noncovalent polymerization of pseudorotaxanes , 1999 .
[17] David J. Williams,et al. C-H...O INTERACTIONS AS A CONTROL ELEMENT IN SUPRAMOLECULAR COMPLEXES : EXPERIMENTAL AND THEORETICAL EVALUATION OF RECEPTOR AFFINITIES FOR THE BINDING OF BIPYRIDINIUM-BASED GUESTS BY CATENATED HOSTS , 1999 .
[18] J. F. Stoddart,et al. A Poly(bis[2]catenane) Containing a Combination of Covalent, Mechanical, and Coordinative Bonds , 1998 .
[19] P. Rossky,et al. FROM MOLECULES TO MATERIALS : CURRENT TRENDS AND FUTURE DIRECTIONS , 1998 .
[20] J. Fraser Stoddart,et al. Origins of Selectivity in Molecular and Supramolecular Entities: Solvent and Electrostatic Control of the Translational Isomerism in [2]Catenanes† , 1998 .
[21] J. F. Stoddart,et al. The Mechanism of the Slippage Approach to Rotaxanes. Origin of the “All-or-Nothing” Substituent Effect† , 1998 .
[22] J. F. Stoddart,et al. Supramolecular science : where it is and where it is going , 1998 .
[23] Jean-Pierre Sauvage,et al. Functional Rotaxanes: From Controlled Molecular Motions to Electron Transfer Between Chemically Nonconnected Chromophores , 1998 .
[24] Jean-Pierre Sauvage,et al. Transition Metal-Containing Rotaxanes and Catenanes in Motion: Toward Molecular Machines and Motors , 1998 .
[25] T. Swager,et al. The Molecular Wire Approach to Sensory Signal Amplification , 1998 .
[26] P. Beer. Transition-Metal Receptor Systems for the Selective Recognition and Sensing of Anionic Guest Species , 1998 .
[27] David J. Williams,et al. Self-assembly of functionalized [2]catenanes bearing a reactive functional group on either one or both macrocyclic components : From monomeric [2]catenanes to polycatenanes , 1998 .
[28] J. Fraser Stoddart,et al. SYNTHETIC SUPRAMOLECULAR CHEMISTRY , 1997 .
[29] J. Rebek,et al. Self-Assembling Capsules. , 1997, Chemical reviews.
[30] Fritz Vögtle,et al. A New Synthetic Strategy towards Molecules with Mechanical Bonds: Nonionic Template Synthesis of Amide-Linked Catenanes and Rotaxanes , 1997 .
[31] Christopher L. Brown,et al. Structure-reactivity relationship in interlocked molecular compounds and in their supramolecular model complexes , 1997 .
[32] K. Müllen,et al. Synthesis of a novel poly[2]-catenane containing rigid catenanes , 1997 .
[33] David J. Williams,et al. IMPROVED TEMPLATE-DIRECTED SYNTHESIS OF CYCLOBIS(PARAQUAT-P-PHENYLENE) , 1996 .
[34] J. Fraser Stoddart,et al. The art and science of self-assembling molecular machines , 1996 .
[35] J. F. Stoddart,et al. Interlocked and Intertwined Structures and Superstructures , 1996 .
[36] Ashok S. Shetty,et al. Aromatic π-Stacking in Solution as Revealed through the Aggregation of Phenylacetylene Macrocycles , 1996 .
[37] J. F. Stoddart,et al. Self-assembling cyclobis(paraquat-4,4'-biphenylene) , 1996 .
[38] K. Müllen,et al. Synthesis of oligo[2]catenanes , 1995 .
[39] Joel P. Schneider,et al. Templates That Induce .alpha.-Helical, .beta.-Sheet, and Loop Conformations , 1995 .
[40] C. Hunter. Arene—Arene Interactions: Electrostatic or Charge Transfer? , 1993 .
[41] Harry L. Anderson,et al. Expanding roles for templates in synthesis , 1993 .
[42] Jean-Pierre Sauvage,et al. From Classical Chirality to Topologically Chiral Catenands and Knots , 1993 .
[43] Jeffrey S. Moore,et al. Aggregation of Hexa(phenylacetylene) Macrocycles in Solution: A Model System for Studying π-π Interactions , 1992 .
[44] Jay S. Siegel,et al. Polar/.pi. interactions between stacked aryls in 1,8-diarylnaphthalenes , 1992 .
[45] G. Whitesides,et al. Molecular self-assembly and nanochemistry: a chemical strategy for the synthesis of nanostructures. , 1991, Science.
[46] Jonathan S. Lindsey,et al. Self-Assembly in Synthetic Routes to Molecular Devices. Biological Principles and Chemical Perspectives: A Review , 1991 .
[47] Christopher A. Hunter,et al. The nature of .pi.-.pi. interactions , 1990 .
[48] D. H. Busch,et al. Molecular organization, portal to supramolecular chemistry: Structural analysis of the factors associated with molecular organization in coordination and inclusion chemistry, including the coordination template effect , 1990 .
[49] Jean-Pierre Sauvage,et al. Interlocking of molecular threads: from the statistical approach to the templated synthesis of catenands , 1987 .
[50] B. Långström,et al. Synthesis and Switchable Condensation Reaction of Bifunctional [2]Catenane. , 1998 .
[51] A. Benniston,et al. Photo- and redox-active [2]rotaxanes and [2]catenanes , 1996 .
[52] J. A. Semlyen. Large ring molecules , 1996 .
[53] G. Whitesides,et al. Noncovalent Synthesis: Using Physical-Organic Chemistry To Make Aggregates , 1995 .
[54] James K. Gimzewski,et al. Ultimate Limits of Fabrication and Measurement , 1995 .
[55] L. Fabbrizzi,et al. Sensors and switches from supramolecular chemistry , 1995 .
[56] H. Gibson,et al. Rotaxanes, catenanes, polyrotaxanes, polycatenanes and related materials , 1994 .
[57] R. Cacciapaglia,et al. Catalysis by metal ions in reactions of crown ether substrates , 1993 .
[58] H. Gibson,et al. Polyrotaxanes: Molecular composites derived by physical linkage of cyclic and linear species , 1993 .
[59] David J. Williams,et al. Molecular meccano. 1. [2]Rotaxanes and a [2]catenane made to order , 1992 .
[60] D. D. Perrin,et al. Purification of Laboratory Chemicals , 2022 .