Department of Materials Science and Engineering, Yonsei University, Seoul 03722, Republic of Korea.
Center for Nanomedicine, Institute for Basic Science (IBS), Seoul 03722, Republic of Korea.
Sci Adv. 2024 Apr 5;10(14):eadn3784. doi: 10.1126/sciadv.adn3784. Epub 2024 Apr 3.
Conventional power-integrated wireless neural recording devices suffer from bulky, rigid batteries in head-mounted configurations, hindering the precise interpretation of the subject's natural behaviors. These power sources also pose risks of material leakage and overheating. We present the direct printing of a power-integrated wireless neural recording system that seamlessly conforms to the cranium. A quasi-solid-state Zn-ion microbattery was 3D-printed as a built-in power source geometrically synchronized to the shape of a mouse skull. Soft deep-brain neural probes, interconnections, and auxiliary electronics were also printed using liquid metals on the cranium with high resolutions. In vivo studies using mice demonstrated the reliability and biocompatibility of this wireless neural recording system, enabling the monitoring of neural activities across extensive brain regions without notable heat generation. This all-printed neural interface system revolutionizes brain research, providing bio-conformable, customizable configurations for improved data quality and naturalistic experimentation.
传统的集成电源无线神经记录设备在头戴式配置中使用体积庞大、刚性的电池,这阻碍了对受试者自然行为的精确解读。这些电源还存在材料泄漏和过热的风险。我们提出了一种集成电源的无线神经记录系统的直接印刷方法,该系统可无缝贴合颅骨。准固态 Zn 离子微电池被 3D 打印为内置电源,其几何形状与小鼠颅骨的形状同步。软深部脑神经探针、互连和辅助电子设备也使用液态金属在颅骨上进行高分辨率打印。使用小鼠进行的体内研究证明了这种无线神经记录系统的可靠性和生物相容性,能够在不产生明显热量的情况下监测广泛脑区的神经活动。这个全印刷神经接口系统彻底改变了大脑研究,为提高数据质量和自然实验提供了生物顺应性和可定制的配置。