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多刺激响应的蝌蚪状聚合物/脂质介观双转子微机器人在先进智能材料中的应用。

Multi-Stimuli-Responsive Tadpole-like Polymer/Lipid Janus Microrobots for Advanced Smart Material Applications.

机构信息

Department of Chemical Engineering, Hacettepe University, Beytepe, 06800 Ankara, Turkey.

出版信息

ACS Appl Mater Interfaces. 2024 Mar 27;16(12):15533-15547. doi: 10.1021/acsami.3c18826. Epub 2024 Feb 15.

Abstract

Microrobots are of significant interest due to their smart transport capabilities, especially for precisely targeted delivery in dynamic environments (blood, cell membranes, tumor interstitial matrixes, blood-brain barrier, mucosa, and other body fluids). To perform a more complex micromanipulation in biological applications, it is highly desirable for microrobots to be stimulated with multiple stimuli rather than a single stimulus. Herein, the biodegradable and biocompatible smart micromotors with a Janus architecture consisting of PrecirolATO 5 and polycaprolactone compartments inspired by the anisotropic geometry of tadpoles and sperms are newly designed. These bioinspired micromotors combine the advantageous properties of polypyrrole nanoparticles (NPs), a high near-infrared light-absorbing agent with high photothermal conversion efficiency, and magnetic NPs, which respond to the magnetic field and exhibit multistimulus-responsive behavior. By combining both fields, we achieved an "on/off" propulsion mechanism that can enable us to overcome complex tasks and limitations in liquid environments and overcome the limitations encountered by single actuation applications. Moreover, the magnetic particles offer other functions such as removing organic pollutants via the Fenton reaction. Janus-structured motors provide a broad perspective not only for biosensing, optical detection, and on-chip separation applications but also for environmental water treatment due to the catalytic activities of multistimulus-responsive micromotors.

摘要

微机器人因其智能运输能力而备受关注,特别是在动态环境(血液、细胞膜、肿瘤间质基质、血脑屏障、黏膜和其他体液)中进行精确靶向输送方面。为了在生物应用中执行更复杂的微操作,微机器人受到多种刺激而不是单一刺激的激励是非常理想的。本文受蝌蚪和精子各向异性几何形状的启发,设计了一种由 PrecirolATO5 和聚己内酯组成的各向异性结构的可生物降解和生物相容的智能微马达。这些仿生微马达结合了聚吡咯纳米粒子(NPs)的优势特性,NPs 是一种具有高光热转换效率的高近红外光吸收剂,以及磁性 NPs,它们可以响应磁场并表现出多刺激响应行为。通过结合这两个领域,我们实现了一种“开/关”推进机制,使我们能够克服液体环境中的复杂任务和限制,并克服单一驱动应用中遇到的限制。此外,磁性颗粒还具有通过芬顿反应去除有机污染物等功能。各向异性结构的马达不仅为生物传感、光学检测和片上分离应用提供了广阔的视角,而且由于多刺激响应微马达的催化活性,也为环境水处理提供了广阔的视角。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d1ea/10983008/76100e648734/am3c18826_0001.jpg

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