Interfacial Superassembly of Light-Responsive Mechanism-Switchable Nanomotors with Tunable Mobility and Directionality

材料科学 纳米技术 推进 气泡 方向性 纳米颗粒 光热治疗 成核 化学 航空航天工程 有机化学 生物 并行计算 计算机科学 工程类 遗传学
作者
Tianyi Liu,Lei Xie,Jie Zeng,Miao Yan,Beilei Qiu,Xinyao Wang,Shan Zhou,Xin Zhang,Hui Zeng,Qirui Liang,Yanjun He,Kang Liang,Jian Liu,Eirini Velliou,Lei Jiang,Biao Kong
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:14 (13): 15517-15528 被引量:38
标识
DOI:10.1021/acsami.1c25204
摘要

Mechanism-switchable nanomotors are expected to exhibit high adaptability and wide applicability. Herein, for the first time, we report a flask-shaped carbon@Pt@fatty-acid nanomotor with a light-induced switch between nonionic self-diffusiophoresis and bubble propulsion. This nanomotor is fabricated through superassembly of platinum nanoparticles on the surface of carbon nanobottles, and fatty acids are infused into the cavity of carbon nanobottles to serve as a light-sensitive switch. Such a nanomotor can be propelled via catalytic decomposition of H2O2 by platinum nanoparticles, exhibiting self-diffusiophoresis with opening-forward migration. Upon 980 nm laser irradiation, the fatty acids melt due to the photothermal effect and are released from the cavity, switching the dominant operational mechanism to bubble propulsion with bottom-forward migration. Compared with self-diffusiophoresis, bubble propulsion shows higher mobility and better directionality due to the hindered self-rotation. Simulation results further reveal that the confinement effect of the cavity, which facilitates the nucleation of nanobubbles, leads to the switch to bubble propulsion. This study offers an insight into the relationship between nanostructures, fundamental nanomotor operational mechanisms, and apparent propulsion performance, as well as provides a novel strategy for the regulation of movement, which is instructive for both the design and applications of nanomotors.
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