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具有可重构性和磁控性的离子交换双功能群集

Ion-Exchange Enabled Dual-Functional Swarms with Reconfigurability and Magnetic Controllability.

作者信息

Chen Ling, Feng Kai, Zhang Xinle, Gong Jiang, Qu Jinping, Niu Ran

机构信息

Key Laboratory of Material Chemistry for Energy Conversion and Storage, Ministry of Education, Hubei Key Laboratory of Material Chemistry and Service Failure, Hubei Engineering Research Center for Biomaterials and Medical Protective Materials, Semiconductor Chemistry Center, School of Chemistry and Chemical Engineering, Huazhong University of Science and Technology, Wuhan, 430074, P. R. China.

School of Mechanical and Automotive Engineering, South China University of Technology, Guangzhou, 510641, P. R. China.

出版信息

Small. 2024 Jun;20(26):e2308318. doi: 10.1002/smll.202308318. Epub 2024 Jan 23.

Abstract

In nature, many organisms are capable of self-organizing into collective groups through local communications to perform complex tasks that individuals cannot complete. To date, the reported artificial microswarms either rely on toxic chemical reactions for communication or lack the hierarchical controllability and functionality, which is unfavorable for practical applications. To this end, this exploits the ion-exchange reaction enabled hierarchical swarm composed of cationic ion exchange resin and magnetic microspheres of internal information exchange. The swarm is reconfigurable under magnetic fields, generating ordered structures of controllable mobilities and even reversed hierarchy, able to navigate in confined and complex environments. Moreover, the swarm shows interesting communications among each other, such as merging, splitting, and member exchange, forming multi-leader groups, living crystals, and complex vortices. Furthermore, the swarm functions as a dual-functional microreactor, which can load, transport, and release drugs in a pH-enhanced manner, as well as effectively degrade antibiotics via light-enhanced Fenton-like reaction in polluted water. The organized structure of the swarm greatly improves the drug loading/transport efficiency and the local concentration of catalysts for fast pollutant removal. This design lays the foundation for the design of dual-functional micro/nanorobots for intelligent drug delivery and advanced environmental remediation.

摘要

在自然界中,许多生物体能够通过局部通信自组织成集体群体,以执行个体无法完成的复杂任务。迄今为止,报道的人工微群要么依赖有毒化学反应进行通信,要么缺乏层次可控性和功能性,这不利于实际应用。为此,本文利用由阳离子交换树脂和磁性微球组成的基于离子交换反应的层次微群进行内部信息交换。该微群在磁场作用下可重构,产生具有可控迁移率甚至反向层次结构的有序结构,能够在受限和复杂环境中导航。此外该微群还表现出有趣的相互通信,如合并、分裂和成员交换,形成多领导群体、活晶体和复杂涡旋。此外,该微群还作为一种双功能微反应器,能够以pH增强的方式加载、运输和释放药物,并通过光增强类芬顿反应在污染水中有效降解抗生素。微群的组织结构大大提高了药物加载/运输效率以及用于快速去除污染物的催化剂的局部浓度。该设计为用于智能药物递送和高级环境修复的双功能微/纳米机器人的设计奠定了基础。

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