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◆ Carbon2026-01-28· Thermochromism

Spatially varying wettability and resistivity in laser-induced graphene for flexible microfluidics, programmable heaters, and thermochromic displays

Mirza Sahaluddin, Moataz Abdulhafez, Soumalya Ghosh, Mostafa Bedewy

原始摘要(英文原文)· Original abstract
ABSTRACT Flexible microfluidic systems and patterned heaters are critical for applications ranging from point-of-care diagnostics and wearable thermotherapy to de-icing and thermochromic displays, yet most existing platforms rely on multi-step fabrication, metal integration, or external addressing electronics. Here, we present a purely laser-based, single-process strategy to spatially program wettability and resistivity in laser-induced graphene (LIG) on polyimide. By combining controlled beam defocus with multiple laser passes, we define adjacent single-pass (R1) and double-pass (R2) LIG regions with similar porous morphologies and Raman signatures, yet markedly different surface and electrical properties. Specifically, R1 exhibits near-complete wetting (contact angle < 7°), while R2 is comparatively more hydrophobic, and the sheet resistance is reduced to 12 Ω/□ in R2. The contrast is tuned via the raster gap between laser scan lines, with an optimal gap of 356 μm maximizing property differences without compromising continuity. This spatial contrast enables pump-free capillary-driven microfluidic transport, including vertical flow against gravity, as well as programmable electrothermal behavior, with temperature differences exceeding 50 °C between R1 and R2 under a single bias voltage. A three-dimensional finite element model incorporating volumetric Joule heating and convective–radiative losses accurately reproduces the measured infrared temperature distributions. Finally, integration of commercial thermochromic pigments yields a flexible thermochromic display in which discrete pixels are addressed solely by the underlying LIG resistivity pattern, without additional electrodes or control circuitry. This work establishes a scalable, maskless route to all-carbon, self-reporting flexible devices that integrate fluidic, thermal, and visual functionality through spatially programmed laser processing.
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Spatially varying wettability and resistivity in laser-induced graphene for flexible microfluidics, programmable heaters, and thermochromic displays — 科研速览 Science Skim