Phase transition of docosane in nanopores
Tóm tắt
Từ khóa
Tài liệu tham khảo
Śliwińska-Bartkowiak M, Sterczyńska A, Long Y, Gubbins KE. Influence of microroughness on the wetting properties of nano-porous silica matrices. Mol Phys. 2014;112:2365–71.
Grząbka-Zasadzińska A, Amietszajew T, Borysiak S. Thermal and mechanical properties of chitosan nanocomposites with cellulose modified in ionic liquids. J Therm Anal Calorim. 2017;130:1–12.
Yan X, Wang TB, Gao CF, Lan XZ. Mesoscopic phase behavior of tridecane-tetradecane mixtures confined in porous materials: effects of pore size and pore geometry. J Phys Chem C. 2013;117:17245–55.
Ha J, Hillmyer MA, Ward MD. Thermotropic properties of organic nanocrystals embedded in ultrasmall crystallization chambers. J Phys Chem B. 2005;109:1392–9.
Czwartos J, Sliwinska-Bartkowiak M, Coasne B, Gubbins KE. Melting of mixtures in silica nanopores. Pure Appl Chem. 2009;81:1953–9.
Toriyama K, Okazaki M. Molecular packing of long-chain n-alkanes in the MCM-41 nanochannel as probed by the free radicals produced by γ-irradiation. J Phys Chem B. 2004;108:12917–20.
Huber P, Soprunyuk VP, Knorr K. Structural transformations of even-numbered n-alkanes confined in mesopores. Phys Rev E. 2006;74:031610–5.
Graubner G, Rengarajan GT, Anders N, Sonnenberger N, Enke D, Beiner M, Steinhart M. Morphology of porous hosts directs preferred polymorph formation and influences kinetics of solid/solid transitions of confined pharmaceuticals. Cryst Growth Des. 2014;14:78–86.
Huber P, Wallacher D, Albers J, Knorr K. Quenching of lamellar ordering in an n-alkane embedded in nanopores. Europhys Lett. 2004;65:351–7.
Cao L, Man T, Kruk M. Synthesis of ultra-large-pore SBA-15 Silica with two-dimensional hexagonal structure using triisopropylbenzene as micelle expander. Chem Mater. 2009;21:1144–53.
Liang C, Kruk M. Synthesis of large-pore SBA-15 silica from tetramethyl orthosilicate using triisopropylbenzene as micelle expander. Colloid Surface A. 2010;357:91–6.
Gao CF, Wang LP, Li QF, Wang C, Nan ZD, Lan XZ. Tuning thermal properties of latent heat storage material through confinement in porous media: the case of (1 − CnH2n+1NH3)2 ZnCl4 (n = 10 and 12). Sol Energy Mater Sol Cells. 2014;128:221–30.
Zhai M, Zhang SQ, Sui J, Tian F, Lan XZ. Solid-solid phase transition of tris(hydroxymethyl)aminomethane in nanopores of silica gel and porous glass for thermal energy storage. J Therm Anal Calorim. 2017;129:957–64.
Li JF, Lu W, Zeng YB, Luo ZP. Simultaneous enhancement of latent heat and thermal conductivity of docosane-based phase change material in the presence of spongy graphene. Sol Energy Mater Sol Cells. 2014;128:48–51.
Mondieig D, Rajabalee F, Metivaud V, Oonk HAJ, CuevasDiarte MA. n-Alkane binary molecular alloys. Chem Mater. 2009;16:786–98.
Wang LP, Sui J, Zhai M, Tian F, Lan XZ. Physical control of phase behavior of hexadecane in nanopores. J Phys Chem C. 2015;119:18697–706.
Albasimionesco C, Coasne B, Dosseh G, Dudziak G, Gubbins KE, Radhakrishnan R, Sliwinskabartkowiak M. Effects of confinement on freezing and melting. J Phys: Condens Matter. 2006;18:R15–68.
Kleitz F, Bérubé F, Guilletnicolas R, Yang CM, Thommes M. Probing adsorption, pore condensation, and hysteresis behavior of pure fluids in three-dimensional cubic mesoporous KIT-6 silica. J Phys Chem C. 2010;114:9344–55.
Jackson CL, Mckenna GB. The melting behavior of organic materials confined in porous solids. J Phys Chem. 1990;93:9002–11.
Fu D, Liu Y, Liu G, Su Y, Wang D. Confined crystallization of binary n-alkane mixtures: stabilization of a new rotator phase by enhanced surface freezing and weakened intermolecular interactions. Phys Chem Chem Phys. 2011;13:15031–6.
Zammit U, Marinelli M, Mercuri F, Paoloni S, Scudieri F. Effect of quenched disorder on the RI–Rv, RII–RI, and liquid–RII rotator phase transitions in alkanes. J Phys Chem B. 2011;115:2331–7.
Zhang W, Xue Y, Fu Q, Cui Z, Wang S. Size dependence of phase transition thermodynamics of nanoparticles: a theoretical and experimental study. Powder Technol. 2017;308:258–65.
Espeau P, Céolin R. A simple method to determine the specific volumes of liquids and melts as a function of the temperature: application to four n-alkanes (C16H34, C18H38, C19H40 and C21H44) under saturating vapour pressure in the 298–573 k range. Thermochim Acta. 2006;445:32–5.
Queimada AJ, Silva FAE, Caço AI, Marrucho IM, Coutinho JAP. Measurement and modeling of surface tensions of asymmetric systems: heptane, eicosane, docosane, tetracosane and their mixtures. Fluid Phase Equilib. 2003;214:211–21.