Cochleate‐Doped Liquid Crystal as Switchable Metamaterial Window Mediated by Molecular Orientation Modified Aggregation
暂无分享,去创建一个
[1] Shuddhodana,et al. Continuous, high-throughput production of artemisinin-loaded supramolecular cochleates using simple off-the-shelf flow focusing device. , 2020, Materials science & engineering. C, Materials for biological applications.
[2] A. Schenning,et al. Stable and scalable smart window based on polymer stabilized liquid crystals , 2020 .
[3] Rui Huang,et al. Bending of Multilayer van der Waals Materials. , 2019, Physical review letters.
[4] P. L. Madhuri,et al. Novel easy to fabricate liquid crystal composite with potential for electrically or thermally controlled transparency windows. , 2019, Optics express.
[5] M. Ravnik,et al. Optical properties of metamaterial split ring nematic colloids , 2019, Scientific Reports.
[6] I. Abdulhalim,et al. Voltage controlled scattering from porous silicon Mie-particles in liquid crystals , 2019, Journal of Molecular Liquids.
[7] R. Gross,et al. Switchable Liquid Crystal Composite Windows Using Bacterial Cellulose (BC) Mat Substrates , 2019, ACS Applied Polymer Materials.
[8] Yang Yang,et al. Fast-Tunable Terahertz Metamaterial Absorber Based on Polymer Network Liquid Crystal , 2018, Applied Sciences.
[9] Zhenhe Ma,et al. Liquid Crystal Enabled Dynamic Nanodevices , 2018, Nanomaterials.
[10] H. Kwok,et al. Normally transparent smart window with haze enhancement via inhomogeneous alignment surface , 2018, Liquid Crystals.
[11] Guangsheng Deng,et al. Electrically tunable terahertz dual-band metamaterial absorber based on a liquid crystal , 2018 .
[12] Lei Wang,et al. Graphene-assisted high-efficiency liquid crystal tunable terahertz metamaterial absorber. , 2017, Optics express.
[13] Taylor H. Ware,et al. Liquid crystal elastomer actuators: Synthesis, alignment, and applications , 2017 .
[14] M. Sims. Dyes as guests in ordered systems: current understanding and future directions , 2016 .
[15] D. Danino,et al. Cochleate characterization by cryogenic electron microscopy methods: Cryo-TEM and Cryo-SEM , 2015 .
[16] A. Pawar,et al. An insight into cochleates, a potential drug delivery system , 2015 .
[17] Nikolay I. Zheludev,et al. Electrically Controlled Nanostructured Metasurface Loaded with Liquid Crystal: Toward Multifunctional Photonic Switch , 2015 .
[18] F. Schacher,et al. Electron microscopy and theoretical modeling of cochleates. , 2014, Langmuir : the ACS journal of surfaces and colloids.
[19] S. K. Prasad,et al. A photo-driven dual-frequency addressable optical device of banana-shaped molecules , 2014 .
[20] Hongrui Jiang,et al. Actuators based on liquid crystalline elastomer materials. , 2013, Nanoscale.
[21] Reza Abbasi,et al. Chemical and biological sensing using liquid crystals , 2013, Liquid crystals reviews.
[22] N. Abbott,et al. Liquid Crystalline Materials for Biological Applications. , 2012, Chemistry of materials : a publication of the American Chemical Society.
[23] N. Zheludev,et al. From metamaterials to metadevices. , 2012, Nature materials.
[24] E. Brasselet,et al. Electrically controlled topological defects in liquid crystals as tunable spin-orbit encoders for photons. , 2011, Optics letters.
[25] S. Bernet,et al. What spatial light modulators can do for optical microscopy , 2011 .
[26] G. Zhai,et al. Lyotropic liquid crystal systems in drug delivery. , 2010, Drug discovery today.
[27] Enrico Santamato,et al. Photon spin-to-orbital angular momentum conversion via an electrically tunable q-plate , 2010, 1010.4473.
[28] I. Abdulhalim,et al. Planar polar liquid crystalline alignment in nanostructured porous silicon one-dimensional photonic crystals , 2010 .
[29] Tamas Kosa,et al. Guest-host liquid crystal devices for adaptive window application , 2010, OPTO.
[30] Arild Gustavsen,et al. Properties, Requirements and Possibilities of Smart Windows for Dynamic Daylight and Solar Energy Control in Buildings: A State-of-the-Art Review , 2010 .
[31] Hsueh-Ling Yu,et al. Comparison of different measurement methods for transmittance haze , 2009 .
[32] Gregory P. Crawford,et al. Liquid-crystal materials find a new order in biomedical applications. , 2007, Nature materials.
[33] T Belenguer,et al. Liquid-crystal variable retarders for aerospace polarimetry applications. , 2007, Applied optics.
[34] V. Shalaev. Optical negative-index metamaterials , 2007 .
[35] D. Durand,et al. Are liquid crystalline properties of nucleosomes involved in chromosome structure and dynamics? , 2006, Philosophical Transactions of the Royal Society A: Mathematical, Physical and Engineering Sciences.
[36] D. Werner,et al. Liquid-Crystals for Tunable Photonic Crystals, Frequency Selective Surfaces and Negative Index Material Development , 2006 .
[37] F. Livolant,et al. Double helical arrangement of spread dinoflagellate chromosomes , 1980, Chromosoma.
[38] L. Zarif,et al. Elongated supramolecular assemblies in drug delivery. , 2002, Journal of controlled release : official journal of the Controlled Release Society.
[39] Kurt Busch,et al. Liquid-Crystal Photonic-Band-Gap Materials: The Tunable Electromagnetic Vacuum , 1999 .
[40] P. Yeagle. Cholesterol and the cell membrane. , 1985, Biochimica et biophysica acta.
[41] D. Papahadjopoulos,et al. Ca2+-induced fusion of phospholipid vesicles monitored by mixing of aqueous contents , 1979, Nature.
[42] G. Vineyard. GEOMETRICAL OPTICS AND THE THEORY OF MULTIPLE SMALL ANGLE SCATTERING , 1952 .