Jin Dongdong, Yuan Ke, Du Xingzhou, Wang Qianqian, Wang Shijie, Zhang Li
Department of Mechanical and Automation Engineering, The Chinese University of Hong Kong, Shatin, Hong Kong SAR, 999077, China.
Department of Biomedical Engineering, The Chinese University of Hong Kong, Shatin, Hong Kong SAR, 999077, China.
Adv Mater. 2021 Sep;33(37):e2100070. doi: 10.1002/adma.202100070. Epub 2021 Aug 1.
Emulating natural swarm intelligence with group-level functionality in artificial micro/nanorobotic systems offers an opportunity to sublimate the limited functions of individuals and revolutionize their applications. However, achieving synchronous operation of microswarms with environmental adaptability and cooperative tasking capability remains a challenge. Here, an adaptive and heterogeneous colloidal magnetic microswarm with domino reaction encoded cooperative functions is presented. Through programming external magnetic fields, the system self-organizes into two swarm states, that is, vortex and ribbon microswarms, which can switch between each other reversibly within seconds, allowing to traverse tortuous, branched, and confined environments through adaptive morphological transformation. By specializing subgroups of building blocks with separate functions, cooperative tasking capability is integrated into the heterogeneous system following a "division of labor" manner. Given targeted therapy as a proof-of-concept task, the coordinated delivery of heterogeneous colloidal system across a complex environment with an access rate higher than 90% is demonstrated, and the specialization and cooperation between building blocks to disrupt multiple growth pathways of cancer cells via domino reaction are realized. The reconfigurable microswarm with hierarchical functionality presents a bioinspired approach to adapt to environmental variations and address multitasking requirements, which advances the development of microrobotic swarms and promises major benefits in biomedical fields.
在人工微纳机器人系统中模拟具有群体级功能的自然群体智能,为升华个体有限功能并彻底改变其应用提供了契机。然而,实现具有环境适应性和协作任务能力的微群体同步运行仍然是一项挑战。在此,提出了一种具有多米诺反应编码协作功能的自适应异质胶体磁性微群体。通过对外部磁场进行编程,该系统自组织成两种群体状态,即涡旋微群体和带状微群体,它们能在数秒内相互可逆切换,从而通过自适应形态转变穿越曲折、分支和受限环境。通过将具有不同功能的构建模块子群体专门化,协作任务能力以“分工”方式被整合到异质系统中。以靶向治疗作为概念验证任务,展示了异质胶体系统在复杂环境中的协同递送,接入率高于90%,并实现了构建模块之间通过多米诺反应破坏癌细胞多种生长途径的专门化与协作。具有分层功能的可重构微群体提出了一种受生物启发的方法来适应环境变化并满足多任务需求,这推动了微机器人群体的发展,并有望在生物医学领域带来重大益处。