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◆ ACS applied materials & interfaces2026-09-24

Bio-Templated Ultra-Sensitive Magneto-Plasmonic Photocatalytic Particles Integrated into Soft Robotics.

Stav Studnik Nagar, Ido Rachbuch, Pini Shekhter, Herman Haustein, Gilad Yossifon, Shachar Richter

原始摘要(英文原文)· Original abstract
Plasmonic photocatalysts that combine magnetic maneuverability with visible-light activity offer a promising avenue for autonomous water purification. However, integrating these functionalities into a scalable, reusable architecture remains challenging. Here, we report a mucin-mediated green synthesis of a gold/maghemite heterostructured nanoparticle system. X-ray diffraction confirmed the formation of spinel γ-Fe2O3 and face-centered-cubic Au, with crystallite sizes of 4.6 ± 0.8 and 25.7 ± 4.3 nm, respectively. STEM-EDS revealed Au-rich nanoparticles distributed on the γ-Fe2O3-mucin scaffold, while XPS confirmed metallic Au0 and Fe3+ characteristic of maghemite. Valence-band analysis indicated the formation of a Schottky-type Au/γ-Fe2O3 junction. The resulting millimeter-scale beads exhibited a soft magnetic response with a saturation magnetization of approximately 10.8 emu g-1, enabling magnetic steering and recovery. While dispersed nanoparticles achieved ∼90% pollutant degradation, the beads maintained ∼75% efficiency within 80 min under visible-light irradiation and exhibited enhanced stability across multiple cycles. After three photocatalytic cycles, the beads retained approximately 65% degradation efficiency, compared with approximately 53% for the dispersed catalyst. Finally, we demonstrate magnetically guided swarms of these beads for active remediation using only natural light. This work establishes a versatile platform for magnetically addressable, bio-templated soft robots capable of sustainable, reusable water treatment.
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Bio-Templated Ultra-Sensitive Magneto-Plasmonic Photocatalytic Particles Integrated into Soft Robotics. — 科研速览 Science Skim