Chen Bin, Tan Haixin, Ding Miaomiao, Liu Lu, Wang Shuanghu, Peng Xiuyun, Tian Hao, Jiang Jiamiao, Gao Junbin, Huang Weichang, Li Huaan, Ye Yicheng, Wang Fei, Wilson Daniela A, Tu Yingfeng, Peng Fei
School of Materials Science and Engineering, Sun Yat-Sen University, Guangzhou 510275, China.
Guangdong Provincial Key Laboratory of New Drug Screening, School of Pharmaceutical Sciences, Southern Medical University, Guangzhou 510515, China.
ACS Nano. 2023 Jul 25;17(14):13826-13839. doi: 10.1021/acsnano.3c03575. Epub 2023 Jul 14.
Interactions between active materials lead to collective behavior and even intelligence beyond the capability of individuals. Such behaviors are prevalent in nature and can be observed in animal colonies, providing these species with diverse capacities for communication and cooperation. In artificial systems, however, collective intelligence systems interacting with biological entities remains unexplored. Herein, we describe black (B)-TiO@N/Au nanorobots interacting through photocatalytic pure water splitting-induced electrophoresis that exhibit periodic swarming oscillations under programmed near-infrared light. The periodic chemical-electric field generated by the oscillating B-TiO@N/Au nanorobot swarm leads to local neuron activation . The field oscillations and neurotransmission from synchronized neurons further trigger the resonance oscillation of neuron populations without synaptic contact (about 2 mm spacing), in different ways from normal neuron oscillation requiring direct contact. We envision that the oscillating nanorobot swarm platforms will shed light on contactless communication of neurons and offer tools to explore interactions between neurons.
活性材料之间的相互作用会导致集体行为,甚至产生超越个体能力的智能。这种行为在自然界中很普遍,在动物群体中也能观察到,为这些物种提供了多样的交流与合作能力。然而,在人工系统中,与生物实体相互作用的集体智能系统仍未得到探索。在此,我们描述了通过光催化纯水分解诱导电泳相互作用的黑色(B)-TiO@N/Au纳米机器人,它们在编程的近红外光下呈现周期性群体振荡。振荡的B-TiO@N/Au纳米机器人群体产生的周期性化学电场会导致局部神经元激活。电场振荡和同步神经元的神经传递进一步触发了无突触接触(约2毫米间距)的神经元群体的共振振荡,其方式与需要直接接触的正常神经元振荡不同。我们设想,振荡的纳米机器人群体平台将为神经元的非接触式通信提供启示,并为探索神经元之间的相互作用提供工具。