Chen Yufen, Li Chunyu, Ferrer Campos Rebeca, Esplandiu María José, Fraxedas Jordi, Liguori Nicoletta, Villa Katherine
Institute of Chemical Research of Catalonia (ICIQ), The Barcelona Institute of Science and Technology (BIST), Tarragona E-43007, Spain.
Institut de Ciències Fotòniques (ICFO), The Barcelona Institute of Science and Technology, Barcelona 08860, Spain.
Nano Lett. 2025 Jun 25;25(25):10169-10177. doi: 10.1021/acs.nanolett.5c02177. Epub 2025 Jun 16.
Photocatalytic micro/nanomotors have emerged as promising tools for environmental remediation, biosensing, and targeted delivery. To enhance their light-driven propulsion, significant efforts have focused on engineering semiconductor heterostructures, which promote charge separation. However, a clear understanding of how these architectures govern photocatalytic mechanisms and influence motion performance remains limited. Here, we design a visible light-responsive nanomotor based on a FeO-Pt-TiO trilayered heterostructure, combining narrow-bandgap α-FeO and wide-bandgap TiO with an intermediate Pt layer. Remarkably, FeO-TiO nanomotors without the Pt layer exhibit only modest propulsion under visible light, whereas the inclusion of Pt significantly enhances their motility. Through advanced techniques, including synchrotron radiation-based near-ambient pressure X-ray photoelectron spectroscopy and transient absorption spectroscopy, we reveal that Pt serves as an efficient electron mediator, enabling directional charge transfer across the heterojunction. This study provides fundamental insights into charge transport in multicomponent nanomotors and introduces a rational strategy for designing efficient photoactive systems.
光催化微纳马达已成为环境修复、生物传感和靶向递送领域颇具前景的工具。为增强其光驱动推进能力,大量研究致力于构建促进电荷分离的半导体异质结构。然而,对于这些结构如何调控光催化机制以及影响运动性能的清晰认识仍较为有限。在此,我们基于FeO-Pt-TiO三层异质结构设计了一种可见光响应纳米马达,将窄带隙α-FeO和宽带隙TiO与中间的Pt层相结合。值得注意的是,不含Pt层的FeO-TiO纳米马达在可见光下仅表现出适度的推进,而Pt层的加入显著增强了它们的运动能力。通过先进技术,包括基于同步辐射的近常压X射线光电子能谱和瞬态吸收光谱,我们揭示Pt作为高效的电子媒介,实现了跨异质结的定向电荷转移。本研究为多组分纳米马达中的电荷传输提供了基础见解,并引入了一种设计高效光活性系统的合理策略。