Searcharxiv⌕ Search

arXiv subjects

Nikolai Liubimtsev

Publications and source records attributed to Nikolai Liubimtsev.

2 recordsLinked to original sources

Stress-driven photo-reconfiguration of surface microstructures via vectorial field-guided lithography

Pattern formation driven by mechanical stress plays a fundamental role in shaping structural organization in both natural and human-made systems. Using light as a vectorial stimulus may offer a powerful route to control stress-induced pattern formation in materials. However, achieving localized, programmable, and predictable control of individual microstructures via structured polarization fields has remained a major challenge. Here, we introduce vectorial field-guided lithography, a novel approach that leverages fully structured polarization fields as lithographic tools to enable the stress-driven reconfiguration of pre-patterned azopolymer microstructures with an unprecedented degree of flexibility, complexity, and diversity. By building on the Viscoplastic PhotoAlignment model, which describes the azopolymer deformation as stress response to structured light, we quantitatively demonstrate and predict complex surface architectures generated by programmable light-induced stress pathways using a digital polarization rotator implemented via a spatial light modulator. We model and experimentally achieve single-step formation of anisotropic, bent, and chiral microstructures from a single pre-patterned geometry. Our results reveal an exceptional control over local microstructure morphology and establish, for the first time, a comprehensive theoretical framework capable of quantitatively designing and fabricating target morphologies on azopolymers. This work moves beyond conventional intensity-based photopatterning and demonstrates that the full vectorial nature of light can dictate the mechanical reshaping of functional polymer surfaces, providing a new platform for the programmable design of complex micro-architectures with applications in photonics, microfluidics, and biology.

physics.optics↗

All-optical Lithography for Spatiotemporal Patterning of High-Modulation Azopolymer Microreliefs

Microstructured surfaces are central to photonics, biointerfaces, and coating technologies, but they are typically fabricated through multistep workflows involving masks, molds, and postprocessing. Azopolymers offer a direct light-driven route to surface structuring, yet holographic photopatterning of flat films has mainly remain limited to smooth, shallow, and engraving-like reliefs with limited vertical modulation. Here we show that computer-generated holograms with co-designed bright and dark regions can spatially confine inward mass transport and directly generate isolated protruding microstructures with several micrometer surface modulation from pristine flat azopolymer films. Single exposures produce individual protrusions and protrusion arrays, whereas sequential tailored exposures further reshape microrelief morphology over time. Using this spatiotemporal scheme, we fabricate flattenedtop micropillars, programmable arrays, freeform continuous microreliefs, and hierarchical structures from a pristine flat film, and we demonstrate write-erase-rewrite cycles in the same surface region. These results establish an all-optical strategy for generating and reconfiguring high modulation azopolymer microreliefs through combined control of spatial and temporal degrees of freedom of holographic illumination.

physics.optics↗