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Original Articles

Formation of smectic mesophases in binary systems of short chain alkanoic acid salts

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Pages 701-705 | Received 30 Jan 1990, Accepted 21 Apr 1990, Published online: 05 Oct 2006

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Gertruda Klimusheva, Tatyana Mirnaya & Yuriy Garbovskiy. (2015) Versatile nonlinear-optical materials based on mesomorphic metal alkanoates: design, properties, and applications. Liquid Crystals Reviews 3:1, pages 28-57.
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G.I. Baranova, D.N. Glebovsky, T.V. Zhuchkova & I.A. Panteleev. (2001) Liquid Crystal Structures in a Vitreous Acetates of Alkali Metals. Molecular Crystals and Liquid Crystals Science and Technology. Section A. Molecular Crystals and Liquid Crystals 365:1, pages 639-644.
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Articles from other publishers (12)

Giacomo Saielli. (2020) Comparison of the Ionic Liquid Crystal Phase of [C12C1im][BF4] and [C12C1im]Cl by Atomistic MD Simulations. Crystals 10:4, pages 253.
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Giacomo Saielli, Tommaso Margola & Katsuhiko Satoh. (2017) Tuning Coulombic interactions to stabilize nematic and smectic ionic liquid crystal phases in mixtures of charged soft ellipsoids and spheres. Soft Matter 13:30, pages 5204-5213.
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J. Torroba & D.W. Bruce. 2013. Comprehensive Inorganic Chemistry II. Comprehensive Inorganic Chemistry II 837 917 .
F. J. Martínez Casado, M. Ramos Riesco, I. da Silva, M. I. Redondo Yélamos, A. Labrador & J. A. Rodríguez Cheda. (2011) Lithium and Lead(II) Butyrates Binary System. Pure Compounds and an Intermediate Salt: From 2D to 3D Coordination Polymers. Crystal Growth & Design 11:3, pages 759-767.
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Francisco Javier Martínez Casado, Miguel Ramos Riesco, Iván da Silva, María Isabel Redondo Yélamos & José Antonio Rodríguez Cheda. (2011) Lithium–thallium(i) butyrates binary system: an intermediate salt and liquid crystal from non-mesogenic compounds.. RSC Advances 1:1, pages 147.
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F. J. Martínez Casado, M. Ramos Riesco, I. da Silva, A. Labrador, M. I. Redondo, M. V. García Pérez, S. López-Andrés & J. A. Rodríguez Cheda. (2010) Thermal and Structural Study of the Crystal Phases and Mesophases in the Lithium and Thallium(I) Propanoates and Pentanoates Binary Systems: Formation of Mixed Salts and Stabilization of the Ionic Liquid Crystal Phase. The Journal of Physical Chemistry B 114:31, pages 10075-10085.
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F. J. Martínez Casado, M. Ramos Riesco, M. V. García Pérez, M. I. Redondo, S. López-Andrés & J. A. Rodríguez Cheda. (2009) Structural and Thermodynamic Study on Short Metal Alkanoates: Lithium Propanoate and Pentanoate. The Journal of Physical Chemistry B 113:39, pages 12896-12902.
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F. J. Martínez Casado, M. Ramos Riesco & J. A. R. Cheda. (2006) Rubidium and lithium butanoates binary phase diagram. Journal of Thermal Analysis and Calorimetry 87:1, pages 73-77.
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B. Donnio, D. Guillon, R. Deschenaux & D.W. Bruce. 2003. Comprehensive Coordination Chemistry II. Comprehensive Coordination Chemistry II 357 627 .
T. A. Mirnaya & S. V. Volkov. 2002. Green Industrial Applications of Ionic Liquids. Green Industrial Applications of Ionic Liquids 439 456 .
T. A. Mirnaya, A. P. Polishchuk, Y. V. Bereznitski & P. Ferloni. (1996) Phase Diagram of the Binary System of Barium and Sodium n -Butanoates . Journal of Chemical & Engineering Data 41:6, pages 1337-1339.
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T. A. Mirnaya, V. V. Trachevskii, S. V. Volkov & Yu. V. Bereznitsxmkii. (1994) Effect of the size of the aliphatic chain on the NMR spectra and the electrical conductivity of melts of alkali metal alkanoates in alkanoic acids. Theoretical and Experimental Chemistry 29:1, pages 59-62.
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