Light-directing chiral liquid crystal nanostructures: from 1D to 3D.

Endowing external, remote, and dynamic control to self-organized superstructures with desired functionalities is a principal driving force in the bottom-up nanofabrication of molecular devices. Light-driven chiral molecular switches or motors in liquid crystal (LC) media capable of self-organizing into optically tunable one-dimensional (1D) and three-dimensional (3D) superstructures represent such an elegant system. As a consequence, photoresponsive cholesteric LCs (CLCs), i.e., self-organized 1D helical superstructures, and LC blue phases (BPs), i.e., self-organized 3D periodic cubic lattices, are emerging as a new generation of multifunctional supramolecular 1D and 3D photonic materials in their own right because of their fundamental academic interest and technological significance. These smart stimuli-responsive materials can be facilely fabricated from achiral LC hosts by the addition of a small amount of a light-driven chiral molecular switch or motor. The photoresponsiveness of these materials is a result of both molecular interaction and geometry changes in the chiral molecular switch upon light irradiation. The doped photoresponsive CLCs undergo light-driven pitch modulation and/or helix inversion, which has many applications in color filters, polarizers, all-optical displays, optical lasers, sensors, energy-saving smart devices, and so on. Recently, we have conceptualized and rationally synthesized different light-driven chiral molecular switches that have very high helical twisting powers (HTPs) and exhibit large changes in HTP in different states, thereby enabling wide phototunability of the systems by the addition of very small amounts of the molecular switches into commercially available achiral LCs. The light-driven chiral molecular switches are based on well-recognized azobenzene, dithienylcyclopentene, and spirooxazine derivatives. We have demonstrated high-resolution and lightweight photoaddressable displays without patterned electronics on flexible substrates. The wide tunability of the HTP furnishes reflection colors encompassing the whole visible spectrum and beyond in a reversible manner. Photomodulation of the helical pitch of the CLCs has been achieved by UV, visible, and near-infrared (NIR) light irradiation. NIR-light-induced red, green, and blue (RGB) reflections have been leveraged only by varying the power density of the IR laser. Some chiral switches are found to confer helix inversion to the cholesteric systems, which qualifies the CLCs for applications where circularly polarized light is involved. Dynamic and static primary RGB reflection colors have been achieved in a single film. LC BPs have been fabricated and investigated in the context of self-organized 3D photonic band gap (PBG) materials, and dynamic phototuning of the PBG over the visible region has been achieved. Omnidirectional lasing and tuning of the laser emission wavelength have also been attained in monodisperse photoresponsive CLC microshells fabricated by a capillary-based microfluidic technique. This Account covers the research and development in our laboratory starting from the design concepts and synthesis of photodynamic chiral molecular switches to their applications in the fabrication of photoresponsive CLCs and BPs. Potential and demonstrated practical applications of photoresponsive CLCs, microshells, and BPs are discussed, and the Account concludes with a brief forecast of what lies beyond the horizon in this rapidly expanding and fascinating field.

[1]  A. Ferrarini,et al.  Chirality transfer across length-scales in nematic liquid crystals: fundamentals and applications. , 2011, Chemical Society reviews.

[2]  Nathalie Katsonis,et al.  Controlling chirality with helix inversion in cholesteric liquid crystals , 2012 .

[3]  Timothy J White,et al.  Directing Dynamic Control of Red, Green, and Blue Reflection Enabled by a Light‐Driven Self‐Organized Helical Superstructure , 2011, Advanced materials.

[4]  R. S. Zola,et al.  Thermally, Photochemically and Electrically Switchable Reflection Colors From Self-Organized Chiral Bent-Core Liquid Crystals , 2011 .

[5]  A. Urbas,et al.  Reversible light-directed red, green, and blue reflection with thermal stability enabled by a self-organized helical superstructure. , 2012, Journal of the American Chemical Society.

[6]  Nobuyuki Tamaoki,et al.  Cholesteric Liquid Crystals for Color Information Technology , 2001 .

[7]  Yan Wang,et al.  Light‐Driven Chiral Molecular Switches or Motors in Liquid Crystals , 2012, Advanced materials.

[8]  Quan Li,et al.  Intelligent stimuli-responsive materials : from well-defined nanostructures to applications , 2013 .

[9]  T. White,et al.  Electrically switchable, photoaddressable cholesteric liquid crystal reflectors. , 2010, Optics express.

[10]  T. White,et al.  Phototunable Azobenzene Cholesteric Liquid Crystals with 2000 nm Range , 2009 .

[11]  Nathalie Katsonis,et al.  Molecular machines: Nanomotor rotates microscale objects , 2006, Nature.

[12]  Timothy J. Bunning,et al.  Dynamic color in stimuli-responsive cholesteric liquid crystals , 2010 .

[13]  A. Urbas,et al.  Synthesis and characterization of light-driven dithienylcyclopentene switches with axial chirality. , 2011, The Journal of organic chemistry.

[14]  Chun-Hua Yan,et al.  Reversible near-infrared light directed reflection in a self-organized helical superstructure loaded with upconversion nanoparticles. , 2014, Journal of the American Chemical Society.

[15]  R. S. Zola,et al.  Light-driven reversible handedness inversion in self-organized helical superstructures. , 2010, Journal of the American Chemical Society.

[16]  Soon Moon Jeong,et al.  Fabrication of a simultaneous red-green-blue reflector using single-pitched cholesteric liquid crystals. , 2008, Nature materials.

[17]  Stephen M. Morris,et al.  Liquid-crystal lasers , 2010 .

[18]  T. White,et al.  Light-driven molecular switches with tetrahedral and axial chirality. , 2009, Organic & biomolecular chemistry.

[19]  J. W. Doane,et al.  Reversible photoswitchable axially chiral dopants with high helical twisting power. , 2007, Journal of the American Chemical Society.

[20]  G. Gottarelli,et al.  The control of the cholesteric pitch by some azo photochemical chiral switches. , 2004, Chemistry.

[21]  R. Eelkema Photo-responsive doped cholesteric liquid crystals , 2011 .

[22]  Lalgudi V. Natarajan,et al.  Electromechanical and light tunable cholesteric liquid crystals , 2010 .

[23]  Hung-Chang Jau,et al.  Red, Green and Blue Reflections Enabled in an Optically Tunable Self‐Organized 3D Cubic Nanostructured Thin Film , 2013, Advanced materials.

[24]  Nobuyuki Tamaoki,et al.  Reversible photo-regulation of the properties of liquid crystals doped with photochromic compounds , 2010 .

[25]  Quan Li,et al.  Photochemically reversible and thermally stable axially chiral diarylethene switches. , 2012, Organic letters.

[26]  Quan Li,et al.  Synthesis of novel thermally reversible photochromic axially chiral spirooxazines. , 2010, Organic letters.

[27]  Augustine Urbas,et al.  Reversible visible-light tuning of self-organized helical superstructures enabled by unprecedented light-driven axially chiral molecular switches. , 2012, Journal of the American Chemical Society.

[28]  Quan Li,et al.  60.2: Novel Optically Addressable Photochiral Displays Erica Montbach , 2008 .

[29]  T. White,et al.  Light-driven nanoscale chiral molecular switch: reversible dynamic full range color phototuning. , 2010, Chemical communications.

[30]  T. White,et al.  Azoarenes with opposite chiral configurations: light-driven reversible handedness inversion in self-organized helical superstructures. , 2013, Angewandte Chemie.

[31]  A. Urbas,et al.  A Photoswitchable and Thermally Stable Axially Chiral Dithienylperfluorocyclopentene Dopant With High Helical Twisting Power , 2013 .

[32]  A. Urbas,et al.  Synthesis and characterization of thermally irreversible photochromic cholesteric liquid crystals. , 2011, The journal of physical chemistry. B.

[33]  Mohan Srinivasarao,et al.  Structural Origin of Circularly Polarized Iridescence in Jeweled Beetles , 2009, Science.

[34]  Michel Mitov,et al.  Cholesteric Liquid Crystals with a Broad Light Reflection Band , 2012, Advanced materials.

[35]  Erica Montbach,et al.  Thin flexible photosensitive cholesteric displays , 2009 .

[36]  A. Urbas,et al.  Photodynamic chiral molecular switches with thermal stability: from reflection wavelength tuning to handedness inversion of self-organized helical superstructures. , 2013, Angewandte Chemie.

[37]  Quan Li,et al.  Nanoscience with Liquid Crystals: From Self-Organized Nanostructures to Applications , 2014 .

[38]  D. Weitz,et al.  Photoresponsive Monodisperse Cholesteric Liquid Crystalline Microshells for Tunable Omnidirectional Lasing Enabled by a Visible Light‐Driven Chiral Molecular Switch , 2014 .

[39]  Ben L Feringa,et al.  Amplification of chirality in liquid crystals. , 2006, Organic & biomolecular chemistry.