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April 20, 2026ACS Applied Polymer Materials0 citations

Smart Surfaces with Photothermally Switchable Topography

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ISIlia SadilovDSDennis SchönfeldTPThorsten Pretsch

Key Points

  • The aim is to create smart surfaces that can change shape and topography using light and heat.
  • Fabrication of lamellar structures using melt electrowriting with polyester urethane.
  • Incorporation of graphene nanoplates or multiwalled carbon nanotubes for photothermal properties.
  • Application of near-infrared laser for localized heating.
  • Utilization of capillary forces for controlled droplet movement in lamellar spaces.
  • Achieved reversible buckling of lamellar structures through localized heating.
  • Demonstrated programmable topography with adjustable interlamellar spacing.
  • Enabled droplet displacement and merging, leading to crystallization in controlled environments.

Abstract

Here, we report smart, photothermal, remotely reversibly controllable, high-aspect-ratio lamellar structures fabricated by melt electrowriting (MEW) using a polyester urethane based on poly(1,10-decylene adipate) incorporating 0.2 wt % graphene nanoplates (GNP) or multiwalled carbon nanotubes (MWCNT). The addition of these carbon-based fillers enables efficient photothermal conversion under near-infrared (NIR) laser irradiation, allowing localized heating of individual lamella. As a result, reversible buckling of the lamellar structures is achieved through the melting of the soft segments, enabling tunable interlamellar spacing and programmable topography. Moreover, the direction of bending can be guided by the capillary forces applied within the interlamellar space─by applying a water droplet. The switchable lamellar topography enables displacement of droplets and their controlled merging within a single interlamellar groove, which is demonstrated using FeCl3 and K4Fe(CN)6 solutions, leading to the formation of Prussian blue crystals upon contact. This remotely controlled, light-responsive smart lamellar architecture provides promising applications in microfluidics, smart surfaces, and soft robotic systems.

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Cite This Study

Sadilov et al. (2026) studied this question.

synapsesocial.com/papers/69e5c2d003c2939914028cfahttps://doi.org/10.1021/acsapm.6c01139
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