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X-ORIGINAL-URL:https://web-f1.ijs.si
X-WR-CALDESC:Events for Department of Theoretical Physics
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TZID:Europe/Ljubljana
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TZOFFSETFROM:+0100
TZOFFSETTO:+0200
TZNAME:CEST
DTSTART:20260329T010000
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TZOFFSETFROM:+0200
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DTSTART:20261025T010000
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BEGIN:VEVENT
DTSTART;TZID=Europe/Ljubljana:20260728T140000
DTEND;TZID=Europe/Ljubljana:20260728T150000
DTSTAMP:20260731T123815
CREATED:20260726T192204Z
LAST-MODIFIED:20260728T123925Z
UID:103097-1785247200-1785250800@web-f1.ijs.si
SUMMARY:Michael Dimitriyev\, "Transformations and defect structures in liquid networks"
DESCRIPTION:The lyotropic liquid crystals formed by amphiphiles include lamellar and cylindrical phases with smectic A and columnar order\, respectively\, representing both 2D and 1D layered liquids. Bicontinuous networks form at intermediate compositions and consist of liquid-like interfaces\, combining both layer and cylindrical geometries\, that percolate all three dimensions. Of the bicontinuous networks\, the predominant structures are based on gyroid\, diamond\, and primitive minimal surfaces\, all of which have cubic crystal symmetries. While possessing a rigidity and 3D elasticity description of conventional solids\, mass transport along interfaces lead to complex\, non-affine relaxation modes. We consider a liquid network model that is able to capture the non-affine deformations observed in bicontinuous networks formed by block copolymers. We additionally identify topology-preserving transformation pathways between different network phases enabled by mass transport along interfaces\, uncovering conditions under which the bicontinuous double diamond is a transition state between stable double gyroid and a metastable tetragonal network phase. Finally\, we consider a new model of the general structure and free energy of inhomogeneous deformations and defects in bicontinuous networks.\nhttps://indico.ijs.si/event/4010/
URL:https://web-f1.ijs.si/event/michael-dimitriyev-transformations-and-defect-structures-in-liquid-networks/
LOCATION:C/2-X – F1 čajnica (Jamova)
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=Europe/Ljubljana:20260730T140000
DTEND;TZID=Europe/Ljubljana:20260730T150000
DTSTAMP:20260731T123815
CREATED:20260726T192204Z
LAST-MODIFIED:20260730T124310Z
UID:103098-1785420000-1785423600@web-f1.ijs.si
SUMMARY:Sascha Hilgenfeldt\, "Tissue modeling: Insight from continuum mechanics"
DESCRIPTION:Two-dimensional vertex models have been used extensively to study and simulate the mechanical behavior of monolayer tissues\, a simplified approach that allows for detailed study of structure and disorder in large systems. Morphological indicators from the structure are then taken as indicators for mechanical behavior and even biological fitness. The most common 2D vertex models use generic elasticity terms whose validity has not been closely scrutinized. Starting from experimental data from MDCK epithelial cells\, we question (i) the appropriateness of a 2D model in the light of severe breaking of mechanical symmetry along the apical-basal axis\, and (ii) the accuracy of the functional form of the standard modeling terms. To make progress in both cases\, we describe cells as continuum materials and use the equations of continuum elasticity to derive correlations between elastic deformation energy and shape parameters. Representing the cortex of a three-dimensional cell as a cylindrical shell\, we find that agreement with experimental data requires proper modeling of the 3D deformation\, i.e.\, the non-uniformity along the apical-basal axis caused primarily by anisotropic actin contractility at the basal side. The relationship between elastic energy and perimeter is then found to be non-harmonic\, even in the limit of vanishing actin content. Therefore\, we construct a 2D model modeling cytoplasm and cortex as different materials\, but uniform in the apical-basal direction. Here\, we can analytically compute the deformation shape and energy for arbitrary outlines of the deformed cell. We find that the non-harmonic relationship between energy and perimeter persists\, pointing towards a revised vertex model that retains the simplicity of the standard vertex model\, but is informed by and consistent with continuum mechanics.\nhttps://indico.ijs.si/event/4011/
URL:https://web-f1.ijs.si/event/sascha-hilgenfeldt-tissue-modeling-insight-from-continuum-mechanics/
LOCATION:A/1-106 – Seminarska soba fizike (F5) (Jamova)
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=Europe/Ljubljana:20261001T110000
DTEND;TZID=Europe/Ljubljana:20261001T120000
DTSTAMP:20260731T123816
CREATED:20260722T113926Z
LAST-MODIFIED:20260728T072325Z
UID:102654-1790852400-1790856000@web-f1.ijs.si
SUMMARY:Sheng Fong
DESCRIPTION:https://indico.ijs.si/event/4007/
URL:https://web-f1.ijs.si/event/sheng-fong/
LOCATION:A/1-106 – Seminarska soba fizike (F5) (Jamova)
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=Europe/Ljubljana:20261001T140000
DTEND;TZID=Europe/Ljubljana:20261001T150000
DTSTAMP:20260731T123816
CREATED:20260407T191334Z
LAST-MODIFIED:20260731T102058Z
UID:92776-1790863200-1790866800@web-f1.ijs.si
SUMMARY:Urška Andrenšek\, "Elasto-capilary vertex model of epithelia"
DESCRIPTION:https://indico.ijs.si/event/3732/
URL:https://web-f1.ijs.si/event/urska-andrensek-tba-2/
LOCATION:A/1-106 – Seminarska soba fizike (F5) (Jamova)
END:VEVENT
BEGIN:VEVENT
DTSTART;TZID=Europe/Ljubljana:20261029T140000
DTEND;TZID=Europe/Ljubljana:20261029T153000
DTSTAMP:20260731T123816
CREATED:20260731T000707Z
LAST-MODIFIED:20260731T102058Z
UID:103472-1793282400-1793287800@web-f1.ijs.si
SUMMARY:Seminars for Theoretical and Computational Biophysics
DESCRIPTION:https://indico.ijs.si/event/3161/
URL:https://web-f1.ijs.si/event/seminars-for-theoretical-and-computational-biophysics/
LOCATION:A/1-106 – Seminarska soba fizike (F5) (Jamova)
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