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1. Fundamentals, Theory, and Modeling
- Phase transitions, symmetry, topology, and defects
- Hydrodynamics, rheology, and pattern formation
- Electromagnetic and physical properties (birefringence, elasticity, dielectric, flexoelectric, and ferroelectric)
- Mathematical modeling, simulation, and theory
- AI, Machine Learning, Inverse Design, and data-driven approaches in soft matter
2. New Liquid Crystalline Materials and Chemistry
- Molecular design, synthesis, and structural properties
- Macromolecular LCs, polymers, elastomers, and gels
- Ferroelectric nematics, ionic LCs, and stimuli-responsive materials
- Colloids, nanocomposites, and complex fluids
- Active matter, biodegradable LCs, and lyotropic systems
3. Nonlinear Optics and Light-Matter Interactions
- Laser-induced director reorientation and self-action effects
- Optical wave mixing, phase conjugation, and switching
- Ultrafast nonlinearities and light propagation
- Density and temperature fluctuations
4. Nanophotonics, Interfaces, and Confined Systems
- Photonic crystals, metamaterials, and metasurfaces
- Plasmonics and nanostructured systems
- Surfaces, thin films, confined systems, and photoalignment control
- Colloidal self-assembly and frustrated phases
5. Biophotonics and Biological Liquid Crystals
- Biological and bio-inspired liquid crystals
- Biophotonics, optical biosensors, and bioimaging
- Biofunctionalization and biomedical applications
- Instabilities, chaos, and fiber formation in biological systems
6. Advanced Optical Devices and Novel Applications
- Displays, AR/VR devices, and tunable optical elements (lenses, prisms, modulators)
- Quantum electronics, LC lasers, and optical computing/signal processing
- Smart windows, smart textiles, and wearable devices
- Actuators, haptic devices, and soft robotics
- Optoelectronics, energy harvesting, and environmental applications
- Holography, optical storage, encryption, and anti-forgery