17. Synthetic Molecular Machines Based on Non-Interlocked Systems: From Concept to Applications
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Wesley R. Browne | Ben L. Feringa | Dirk Pijper | Michael M. Pollard | B. Feringa | W. Browne | M. M. Pollard | D. Pijper
[1] O. S. Akkerman,,et al. Optical activity of symmetrically substituted acetic acids. Part I: The stability against racemization of some ortho-alkyl-substituted diphenylacetic acids , 2010 .
[2] B. Feringa,et al. Following the autonomous movement of silica microparticles using fluorescence microscopy. , 2008, Small.
[3] B. Feringa,et al. Autonomous movement of silica and glass micro-objects based on a catalytic molecular propulsion system. , 2008, Chemistry.
[4] Ben L Feringa,et al. Autonomous propulsion of carbon nanotubes powered by a multienzyme ensemble. , 2008, Chemical communications.
[5] Vincenzo Balzani,et al. Molecular machines working on surfaces and at interfaces. , 2008, Chemphyschem : a European journal of chemical physics and physical chemistry.
[6] B. Feringa,et al. Photoresponsive rolling and bending of thin crystals of chiral diarylethenes. , 2008, Chemical communications.
[7] Euan R. Kay,et al. Beyond switches: Rotaxane- and catenane-based synthetic molecular motors , 2008 .
[8] R. Zentel,et al. Photoresponsive anisotropic and isotropic gels of semicarbazide-azobenzene organogelators: the use of magnetic polymer colloids to detect gel-sol transformation. , 2007, Soft matter.
[9] S. T. Picraux,et al. Photon control of liquid motion on reversibly photoresponsive surfaces. , 2007, Langmuir : the ACS journal of surfaces and colloids.
[10] Cees Dekker,et al. Motor Proteins at Work for Nanotechnology , 2007, Science.
[11] B. Feringa,et al. Molecular transmission: controlling the twist sense of a helical polymer with a single light-driven molecular motor. , 2007, Angewandte Chemie.
[12] I. Willner,et al. Photoswitchable electrocatalysis and catalyzed chemiluminescence using photoisomerizable monolayer-functionalized surfaces and pt nanoparticles. , 2007, Journal of the American Chemical Society.
[13] Tomoyuki Ishikawa,et al. Rapid and reversible shape changes of molecular crystals on photoirradiation , 2007, Nature.
[14] T. Aida,et al. Reversible operation of chiral molecular scissors by redox and UV light. , 2007, Chemical communications.
[15] J. Michl,et al. Artificial Surface‐Mounted Molecular Rotors: Molecular Dynamics Simulations , 2007 .
[16] Dirk Pijper,et al. Rate Acceleration of Light‐Driven Rotary Molecular Motors , 2007 .
[17] T. Rahman,et al. A Molecule Carrier , 2007, Science.
[18] Francesco Zerbetto,et al. Synthetic molecular motors and mechanical machines. , 2007, Angewandte Chemie.
[19] T. R. Kelly,et al. Progress toward a rationally designed, chemically powered rotary molecular motor. , 2007, Journal of the American Chemical Society.
[20] Itamar Willner,et al. Biomolecule-nanoparticle hybrids as functional units for nanobiotechnology. , 2007, Chemical communications.
[21] G. Guirado,et al. Electron-triggered motions in technomimetic molecules. , 2007, Dalton transactions.
[22] David A. Leigh,et al. Dynamic Chirality: Molecular Shuttles and Motors , 2006 .
[23] B. Branchaud,et al. 180° Unidirectional Bond Rotation in a Biaryl Lactone Artificial Molecular Motor Prototype , 2006 .
[24] Nathalie Katsonis,et al. Rotational reorganization of doped cholesteric liquid crystalline films. , 2006, Journal of the American Chemical Society.
[25] Ben L Feringa,et al. Amplification of chirality in liquid crystals. , 2006, Organic & biomolecular chemistry.
[26] Wesley R Browne,et al. Making molecular machines work , 2006, Nature nanotechnology.
[27] Dirk J. Broer,et al. High‐Contrast Thin‐Film Polarizers by Photo‐Crosslinking of Smectic Guest–Host Systems , 2006 .
[28] C. Joachim,et al. Design and synthesis of mono-molecular machines , 2006 .
[29] Frank Hampel,et al. "Giant" gyroscope-like molecules consisting of dipolar Cl-Rh-CO rotators encased in three-spoke stators that define 25-27-membered macrocycles. , 2006, Angewandte Chemie.
[30] J. McGarvey,et al. Raman scattering and FT-IR spectroscopic studies on dithienylethene switches--towards non-destructive optical readout. , 2006, Organic & biomolecular chemistry.
[31] O. Vaughan,et al. A chemically switchable molecular pinwheel. , 2006, Angewandte Chemie.
[32] Henry Hess,et al. Toward Devices Powered by Biomolecular Motors , 2006, Science.
[33] S. Shinkai,et al. Supramolecular Crosslinked Linear Poly(Trimethylene Iminium Trifluorosulfonimide) Polymer Gels Sensitive to Light and Thermal Stimuli , 2006 .
[34] M. Garcia‐Garibay,et al. Crystalline molecular machines: a quest toward solid-state dynamics and function. , 2006, Accounts of chemical research.
[35] Takanori Shima,et al. Gyroscope-like molecules consisting of PdX2/PtX2 rotators encased in three-spoke stators: synthesis via alkene metathesis, and facile substitution and demetalation. , 2006, Journal of the American Chemical Society.
[36] James M Tour,et al. En route to a motorized nanocar. , 2006, Organic letters.
[37] T. Aida,et al. Mechanical twisting of a guest by a photoresponsive host , 2006, Nature.
[38] James M Tour,et al. Surface-rolling molecules. , 2006, Journal of the American Chemical Society.
[39] Nathalie Katsonis,et al. Molecular machines: Nanomotor rotates microscale objects , 2006, Nature.
[40] Euan R Kay,et al. Beyond switches: ratcheting a particle energetically uphill with a compartmentalized molecular machine. , 2006, Journal of the American Chemical Society.
[41] K. Harris,et al. Large amplitude light-induced motion in high elastic modulus polymer actuators , 2005 .
[42] Kimihisa Yamamoto,et al. An electric cyclophane: cavity control based on the rotation of a paraphenylene by redox switching. , 2005, Journal of the American Chemical Society.
[43] Auke Meetsma,et al. Control of rotor motion in a light-driven molecular motor: towards a molecular gearbox. , 2005, Organic & biomolecular chemistry.
[44] Ben L. Feringa,et al. Unidirectional molecular motor on a gold surface , 2005, Nature.
[45] J. Tour,et al. Directional control in thermally driven single-molecule nanocars. , 2005, Nano letters.
[46] Michael M. Pollard,et al. A Reversible, Unidirectional Molecular Rotary Motor Driven by Chemical Energy , 2005, Science.
[47] Jay S. Siegel,et al. Inventing the Nanomolecular Wheel , 2005, Science.
[48] Dominik Horinek,et al. Surface-mounted altitudinal molecular rotors in alternating electric field: single-molecule parametric oscillator molecular dynamics. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[49] Bing Dai,et al. Intramolecular Rotation through Proton Transfer: [Fe(η5‐C5H4CO2−)2] versus [(η5‐C5H4CO2−)Fe(η5‐C5H4CO2H)] , 2005 .
[50] Francesco Zerbetto,et al. Macroscopic transport by synthetic molecular machines , 2005, Nature materials.
[51] M. Garcia‐Garibay,et al. Crystalline molecular machines: encoding supramolecular dynamics into molecular structure. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[52] Auke Meetsma,et al. Catalytic molecular motors: fuelling autonomous movement by a surface bound synthetic manganese catalase. , 2005, Chemical communications.
[53] Ben L Feringa,et al. A Light-Actuated Nanovalve Derived from a Channel Protein , 2005, Science.
[54] Hsian-Rong Tseng,et al. A reversible molecular valve. , 2005, Proceedings of the National Academy of Sciences of the United States of America.
[55] Peter Hänggi,et al. Introduction: 100 years of Brownian motion. , 2005, Chaos.
[56] Chih-Ming Ho,et al. Linear artificial molecular muscles. , 2005, Journal of the American Chemical Society.
[57] Josef Michl,et al. Toward self-assembled surface-mounted prismatic altitudinal rotors. A test case: trigonal and tetragonal prisms. , 2005, The Journal of organic chemistry.
[58] Dominik Horinek,et al. Artificial molecular rotors. , 2005, Chemical reviews.
[59] G. Rapenne,et al. Synthesis of technomimetic molecules: towards rotation control in single-molecular machines and motors. , 2005, Organic & biomolecular chemistry.
[60] A. Einstein. Über die von der molekularkinetischen Theorie der Wärme geforderte Bewegung von in ruhenden Flüssigkeiten suspendierten Teilchen [AdP 17, 549 (1905)] , 2005, Annalen der Physik.
[61] Walter F Paxton,et al. Catalytic nanomotors: remote-controlled autonomous movement of striped metallic nanorods. , 2005, Angewandte Chemie.
[62] Geoffrey A Ozin,et al. Synthetic self-propelled nanorotors. , 2005, Chemical communications.
[63] Yanyan Cao,et al. Catalytic nanomotors: autonomous movement of striped nanorods. , 2004, Journal of the American Chemical Society.
[64] T. Y. Tsong,et al. Catalytic Wheel as a Brownian Motor , 2004 .
[65] Yiliang Wu,et al. Photoinduced Chirality in Thin Films of Achiral Polymer Liquid Crystals Containing Azobenzene Chromophores , 2004 .
[66] Rohit Rosario,et al. Lotus Effect Amplifies Light-Induced Contact Angle Switching , 2004 .
[67] Viola Vogel,et al. Powering nanodevices with biomolecular motors. , 2004, Chemistry.
[68] J. Zink,et al. Electrical or Photocontrol of the Rotary Motion of a Metallacarborane , 2004, Science.
[69] Dominik Horinek,et al. Dipolar and nonpolar altitudinal molecular rotors mounted on an Au(111) surface. , 2004, Journal of the American Chemical Society.
[70] M. Garcia‐Garibay,et al. Molecular crystals with moving parts: synthesis, characterization, and crystal packing of molecular gyroscopes with methyl-substituted triptycyl frames. , 2004, The Journal of organic chemistry.
[71] Mitsuhiko Shionoya,et al. Heterotopic assemblage of two different disk-shaped ligands through trinuclear silver(I) complexation: ligand exchange-driven molecular motion. , 2004, Journal of the American Chemical Society.
[72] Jean-Pierre Launay,et al. Technomimetic molecules: synthesis of ruthenium(II) 1,2,3,4,5-penta(p-bromophenyl)cyclopentadienyl hydrotris(indazolyl)borate, an organometallic molecular turnstile. , 2003, Chemical communications.
[73] P. Baglioni,et al. Molecular switching in nano-structured photochromic films of biopolymers , 2003 .
[74] Mitsuhiko Shionoya,et al. Quantitative formation of sandwich-shaped trinuclear silver(I) complexes and dynamic nature of their P <=> M flip motion in solution. , 2003, Angewandte Chemie.
[75] Parag V Jog,et al. A redox-mediated molecular brake: dynamic NMR study of 2-[2-(methylthio)phenyl]isoindolin-1-one and S-oxidized counterparts. , 2003, The Journal of organic chemistry.
[76] M. Garcia‐Garibay,et al. Molecular compasses and gyroscopes with polar rotors: synthesis and characterization of crystalline forms. , 2003, Journal of the American Chemical Society.
[77] James M Tour,et al. En route to surface-bound electric field-driven molecular motors. , 2003, The Journal of organic chemistry.
[78] Takuzo Aida,et al. Light-driven open-close motion of chiral molecular scissors. , 2003, Journal of the American Chemical Society.
[79] Masayuki Takeuchi,et al. Allosteric binding of an Ag+ ion to cerium(IV) bis-porphyrinates enhances the rotational activity of porphyrin ligands. , 2002, Chemistry.
[80] M. Shionoya,et al. Triangular and tetrahedral array of silver(I) ions by a novel disk-shaped tridentate ligand: dynamic control of coordination equilibrium of the silver(I) complexes. , 2002, Journal of the American Chemical Society.
[81] Luis Moroder,et al. Single-Molecule Optomechanical Cycle , 2002, Science.
[82] Auke Meetsma,et al. Second generation light-driven molecular motors. Unidirectional rotation controlled by a single stereogenic center with near-perfect photoequilibria and acceleration of the speed of rotation by structural modification. , 2002, Journal of the American Chemical Society.
[83] Mihail Barboiu,et al. Dynamic chemical devices: Modulation of contraction/extension molecular motion by coupled-ion binding/pH change-induced structural switching , 2002, Proceedings of the National Academy of Sciences of the United States of America.
[84] M. Garcia‐Garibay,et al. Molecular compasses and gyroscopes. II. Synthesis and characterization of molecular rotors with axially substituted bis[2-(9-triptycyl)ethynyl]arenes. , 2002, Journal of the American Chemical Society.
[85] Anthony Tweed. AGU journals online , 2002 .
[86] G. Whitesides,et al. Autonomous Movement and Self‐Assembly , 2002 .
[87] Julius Rebek,et al. Metal ligation regulates conformational equilibria and binding properties of cavitands. , 2002, Organic letters.
[88] G M Whitesides,et al. The once and future nanomachine. , 2001, Scientific American.
[89] R. Astumian,et al. Making molecules into motors. , 2001, Scientific American.
[90] M. Fox,et al. Photoreactivity of Self-assembled Monolayers of Azobenzene or Stilbene Derivatives Capped on Colloidal Gold Clusters , 2001 .
[91] G. Oster,et al. The physics of molecular motors. , 2001, Accounts of chemical research.
[92] M. Ikeda,et al. Positive allosteric systems designed on dynamic supramolecular scaffolds: toward switching and amplification of guest affinity and selectivity. , 2001, Accounts of chemical research.
[93] Ben L. Feringa,et al. Light-Driven Molecular Rotor: Unidirectional Rotation Controlled by a Single Stereogenic Center , 2000 .
[94] M. Jiménez,et al. Towards Synthetic Molecular Muscles: Contraction and Stretching of a Linear Rotaxane Dimer , 2000 .
[95] Takuzo Aida,et al. Metal Bisporphyrinate Double-Decker Complexes as Redox-Responsive Rotating Modules. Studies on Ligand Rotation Activities of the Reduced and Oxidized Forms Using Chirality as a Probe , 2000 .
[96] Tomiki Ikeda,et al. Photochemical modulation of color and transmittance in chiral nematic liquid crystal containing an azobenzene as a photosensitive chromophore , 2000 .
[97] Ichimura,et al. Light-driven motion of liquids on a photoresponsive surface , 2000, Science.
[98] M. Ikeda,et al. Allosteric silver(I) ion binding with peripheral pi clefts of a Ce(IV) double decker porphyrin. , 2000, Organic letters.
[99] M. Jiménez,et al. A Hermaphrodite Molecule: Quantitative Copper(I)‐Directed Formation of a Doubly Threaded Assembly from a Ring Attached to a String , 2000 .
[100] Richard A. Silva,et al. Unidirectional rotary motion in a molecular system , 1999, Nature.
[101] N. Harada,et al. Light-driven monodirectional molecular rotor , 2022 .
[102] Anthony P. Davis,et al. Nanotechnology: Synthetic molecular motors , 1999, Nature.
[103] Ben L. Feringa,et al. Chemistry of Unique Chiral Olefins. 4. Theoretical Studies of the Racemization Mechanism of trans- and cis-1,1',2,2',3,3',4,4'-Octahydro-4,4'-biphenanthrylidenes. , 1999, The Journal of organic chemistry.
[104] Masayuki Takeuchi,et al. A Strong Positive Allosteric Effect in the Molecular Recognition of Dicarboxylic Acids by a Cerium(IV) Bis[tetrakis(4-pyridyl)porphyrinate] Double Decker. , 1998, Angewandte Chemie.
[105] E. Corey,et al. Reduction of Carbonyl Compounds with Chiral Oxazaborolidine Catalysts: A New Paradigm for Enantioselective Catalysis and a Powerful New Synthetic Method. , 1998, Angewandte Chemie.
[106] Joachim,et al. Rotation of a single molecule within a supramolecular bearing , 1998, Science.
[107] Kazuhiko Kinosita,et al. F1-ATPase Is a Highly Efficient Molecular Motor that Rotates with Discrete 120° Steps , 1998, Cell.
[108] A. P. Davis,et al. Tilting at Windmills? The Second Law Survives. , 1998, Angewandte Chemie.
[109] K. Mislow,et al. A CHEMICALLY ACHIRAL MOLECULE WITH NO RIGIDLY ACHIRAL PRESENTATIONS , 1997 .
[110] T. Ross Kelly,et al. In Search of Molecular Ratchets , 1997 .
[111] N. Harada,et al. Chemistry of Unique Chiral Olefins. 3. Synthesis and Absolute Stereochemistry of trans- and cis-1,1‘,2,2‘,3,3‘,4,4‘- Octahydro-3,3‘-dimethyl-4,4‘-biphenanthrylidenes , 1997 .
[112] N. Harada,et al. Chemistry Of Unique Chiral Olefins. 1. Synthesis, Enantioresolution, Circular Dichroism, And Theoretical Determination Of The Absolute Stereochemistry Of Trans- And Cis-1,1',2,2',3,3',4,4'-octahydro-4,4'-biphenanthrylidenes , 1997 .
[113] Akira Saito,et al. Chemistry of Unique Chiral Olefins. 2. Unexpected Thermal Racemization of cis-1,1‘,2,2‘,3,3‘,4,4‘-Octahydro-4,4‘- biphenanthrylidene , 1997 .
[114] Ben L. Feringa,et al. Toward a switchable molecular rotor. Unexpected dynamic behavior of functionalized overcrowded alkenes , 1997 .
[115] I. Willner,et al. Light-controlled electron transfer reactions at photoisomerizable monolayer electrodes by means of electrostatic interactions: active interfaces for the amperometric transduction of recorded optical signals , 1997 .
[116] R. Astumian. Thermodynamics and kinetics of a Brownian motor. , 1997, Science.
[117] Takuzo Aida,et al. Enantiomeric Resolution of Chiral Metallobis(porphyrin)s: Studies on Rotatability of Electronically Coupled Porphyrin Ligands , 1997 .
[118] Ben L. Feringa,et al. Dynamic Control and Amplification of Molecular Chirality by Circular Polarized Light , 1996, Science.
[119] M. Fontana,et al. Photoresponsive behaviour of Langmuir-Blodgett films of azopoly-L-lisine , 1996 .
[120] B. Feringa,et al. Chiroptical Molecular Switches. , 1996, Chemical reviews.
[121] S. Tsuzuki,et al. Conformational analysis of n-alkanes using density functional theory. Comparison with ab initio calculations , 1995 .
[122] Abraham Shanzer,et al. Molecular redox switches based on chemical triggering of iron translocation in triple-stranded helical complexes , 1995, Nature.
[123] S. Shinkai,et al. Study on monolayers of metal complexes of calixarenes and their luminescence properties , 1995 .
[124] B. Feringa,et al. A Highly Stereoselective Optical Switching Process Based on Donor–Acceptor Substituted Dissymmetric Alkenes , 1995 .
[125] H. Rüterjans,et al. Metal Complexes with Tetrapyrrole Ligands, LXVI. Synthesis, Characterization, and Variable‐Temperature 1H‐ and 19F‐NMR Investigations of Cerium(IV) Double‐Deckers Derived from Monofunctionalized Tetraarylporphyrins , 1994 .
[126] David Bebbington,et al. A Molecular Brake , 1994 .
[127] K. Suslick,et al. Electronically Asymmetric Bis(porphyrin) Sandwich Complexes , 1994 .
[128] D. Waldeck. Photoisomerization Dynamics of Stilbenes , 1991 .
[129] Hiizu Iwamura,et al. Stereochemical consequences of dynamic gearing , 1988 .
[130] John M. Wright,et al. Synthesis, molecular structure, and 2-D NMR analysis of bis(tetraphenylcyclopentadienyl)iron(II) , 1986 .
[131] Andrew Streitwieser,et al. Barriers to ring rotation in 1,1',4,4'-tetra-tert-butyluranocene and 1,1',3,3'-tetra-tert-butylferrocene , 1981 .
[132] Alberto Guenzi,et al. Stereoisomerism and correlated rotation in molecular gear systems. Residual diastereomers of bis(2,3-dimethyl-9-triptycyl)methane , 1981 .
[133] Gaku Yamamoto,et al. TWO CONSECUTIVE GEAR MOTIONS IN CONFORMATIONAL INTERCONVERSION IN 9-(2-METHYLBENZYL)TRIPTYCENE DERIVATIVES , 1979 .
[134] J. W. Rakshys,et al. Nuclear magnetic resonance studies of chirality in triarylmethyl cations. Mechanism of enantiomer and diastereomer interconversion , 1970 .
[135] R. Breslow,et al. Carbonium ions with multiple neighboring groups. II. Physical studies , 1968 .
[136] R. Kurland,et al. Fluorine Magnetic Resonance Studies of Conformational Equilibria in Triphenylcarbonium Ions , 1965 .
[137] A. Attalla,et al. Activation Energies for Reorientation Processes in Ferrocene and Some of its Derivatives: A Study of Proton Magnetic Resonance Spectra , 1963 .
[138] Christian Joachim,et al. A rack-and-pinion device at the molecular scale. , 2007, Nature materials.
[139] E. Isacoff,et al. Allosteric control of an ionotropic glutamate receptor with an optical switch , 2006, Nature chemical biology.
[140] Miguel A. Garcia-Garibay,et al. Molecular Compasses and Gyroscopes: Engineering Molecular Crystals with Fast Internal Rotation , 2004 .
[141] Jeffrey S. Moore,et al. Design and Synthesis of a “Molecular Turnstile” , 1995 .
[142] S. Shinkai,et al. Photoresponsive crown ethers. Part 20. Reversible photocontrol of association–dissociation equilibria between azobis(benzo-18-crown-6) and diammonium cations , 1988 .
[143] H. Wynberg,et al. Torsionally Distorted Olefins. Resolution of cis- and trans-4,4'-Bi-1,1',2,2',3,3'-hexahydrophenanthrylidene , 1977 .
[144] G. Christie,et al. LXXI.—The molecular configurations of polynuclear aromatic compounds. Part I. The resolution of γ-6 : 6′-dinitro- and 4 : 6 : 4′ : 6′-tetranitro-diphenic acids into optically active components , 1922 .