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Theoretical and experimental study of the nanoparticle-driven blue phase stabilisation
Authors:B Rožič  V Tzitzios  E Karatairi  U Tkalec  G Nounesis  Z Kutnjak  G Cordoyiannis  R Rosso  E G Virga  I Muševič  S Kralj
Institution:1. Condensed Matter Physics Department, Jo?ef Stefan Institute, Jamova cesta 39, 1000, Ljubljana, Slovenia
2. Institute of Materials Science, National Centre for Scientific Research “Demokritos,”, 15310, Aghia Paraskevi, Greece
3. Institute of Radioisotopes and Radiodiagnostic Products, National Centre for Scientific Research “Demokritos,”, 15310, Aghia Paraskevi, Greece
4. Department of Materials Science, University of Patras, 26500, Patras, Greece
5. NAMASTE Centre of Excellence, Jamova 39, 1000, Ljubljana, Slovenia
6. EN FIST Centre of Excellence, Dunajska 156, 1000, Ljubljana, Slovenia
7. Dipartimento di Matematica and SMMM, Università di Pavia, via Ferrata 1, I-27100, Pavia, Italy
8. Department of Physics, University of Maribor, Koro?ka cesta 160, 2000, Maribor, Slovenia
Abstract:We have studied theoretically and experimentally the effects of various types of nanoparticles (NPs) on the temperature stability range Formula: see text] T (BP) of liquid-crystalline (LC) blue phases. Using a mesoscopic Landau-de Gennes type approach we obtain that the defect core replacement (DCR) mechanism yields in the diluted regime Formula: see text] T (BP)(x) Formula: see text] 1/(1 - xb) , where x stands for the concentration of NPs and b is a constant. Our calculations suggest that the DCR mechanism is efficient if a local NP environment resembles the core structure of disclinations, which represent the characteristic property of BP structures. These predictions are in line with high-resolution ac calorimetry and optical polarising microscopy experiments using the CE8 LC and CdSe or aerosil NPs. In mixtures with CdSe NPs of 3.5nm diameter and hydrophobic coating the BPIII stability range has been extended up to 20K. On the contrary, the effect of aerosil silica nanoparticles of 7.0nm diameter and hydrophilic coating is very weak.
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