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3D 打印微型机器人:从设计到转化。

3D-printed microrobots from design to translation.

机构信息

Department of Mechanical Engineering, Koç University, Sariyer, Istanbul, 34450, Turkey.

Koç University Arçelik Research Center for Creative Industries (KUAR), Koç University, Sariyer, Istanbul, 34450, Turkey.

出版信息

Nat Commun. 2022 Oct 5;13(1):5875. doi: 10.1038/s41467-022-33409-3.

Abstract

Microrobots have attracted the attention of scientists owing to their unique features to accomplish tasks in hard-to-reach sites in the human body. Microrobots can be precisely actuated and maneuvered individually or in a swarm for cargo delivery, sampling, surgery, and imaging applications. In addition, microrobots have found applications in the environmental sector (e.g., water treatment). Besides, recent advancements of three-dimensional (3D) printers have enabled the high-resolution fabrication of microrobots with a faster design-production turnaround time for users with limited micromanufacturing skills. Here, the latest end applications of 3D printed microrobots are reviewed (ranging from environmental to biomedical applications) along with a brief discussion over the feasible actuation methods (e.g., on- and off-board), and practical 3D printing technologies for microrobot fabrication. In addition, as a future perspective, we discussed the potential advantages of integration of microrobots with smart materials, and conceivable benefits of implementation of artificial intelligence (AI), as well as physical intelligence (PI). Moreover, in order to facilitate bench-to-bedside translation of microrobots, current challenges impeding clinical translation of microrobots are elaborated, including entry obstacles (e.g., immune system attacks) and cumbersome standard test procedures to ensure biocompatibility.

摘要

微机器人因其独特的特点而引起了科学家们的关注,这些特点可以使其在人体难以到达的部位完成任务。微机器人可以被精确地驱动和操纵,无论是单个还是成群地进行货物输送、采样、手术和成像应用。此外,微机器人在环境领域(例如,水处理)也有应用。此外,三维(3D)打印机的最新进展使得具有有限微制造技能的用户能够更快地设计和生产微机器人,并且能够以更高的分辨率制造微机器人。在这里,我们回顾了 3D 打印微机器人的最新终端应用(从环境到生物医学应用),并简要讨论了可行的驱动方法(例如, onboard 和 off-board)以及微机器人制造的实用 3D 打印技术。此外,作为未来的展望,我们讨论了将微机器人与智能材料集成的潜在优势,以及实施人工智能(AI)和物理智能(PI)的可想象的好处。此外,为了促进微机器人从实验室到临床的转化,我们详细阐述了阻碍微机器人临床转化的当前挑战,包括进入障碍(例如,免疫系统攻击)和繁琐的标准测试程序以确保生物相容性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f08f/9534872/1f727b168fe3/41467_2022_33409_Fig1_HTML.jpg

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