Hang Chen, Rao Qingyan, Wu Jialu, Qi Jie, Jiang Xingyu
Shenzhen Key Laboratory of Smart Healthcare Engineering, Guangdong Provincial Key Laboratory of Advanced Biomaterials, Department of Biomedical Engineering, Southern University of Science and Technology, No. 1088, Xueyuan Rd., Nanshan District, Shenzhen, Guangdong 518055, PR China.
ACS Nano. 2025 Apr 8;19(13):13118-13127. doi: 10.1021/acsnano.4c18309. Epub 2025 Mar 30.
Mechanical mismatches at the microscale between bioelectronics and cells severely hinder the successful acquisition of high-quality and stable electrophysiological signals. Room-temperature liquid metals (EGaIn), which possess a near-zero Young's modulus, present a promising material for achieving stable conformal contact with biological tissues. However, the fluidity of liquid metals limits the elastic encapsulation of the patterned circuits with cellular resolution. To address this challenge, we develop a bilayer microfluidics-based method to elastically encapsulate a high-resolution electrode array (20 μm) within several minutes (<3 min). The alignment-free method overcomes the limitations of packaging polymers and high-resolution aligners, enabling cost-effective, scalable manufacturing for devices. These electronics exhibit excellent wear resistance, high flexibility (>300% strain), and excellent biocompatibility, facilitating long-term stable interfacing with cardiomyocytes and enabling the collection of high-quality (∼30 dB) cell field potential signals as well as epicardial signals (∼42 dB) from living rat models. This rapid and straightforward encapsulation approach improves the precision and integration of liquid metal-based flexible electronics, holding the promise of high-resolution monitoring and treatment, such as electrophysiological mapping, electrical stimulation, and other therapeutic interventions at the cellular levels.
生物电子学与细胞在微观尺度上的机械失配严重阻碍了高质量、稳定电生理信号的成功采集。室温液态金属(镓铟合金)的杨氏模量近乎为零,是一种有望与生物组织实现稳定共形接触的材料。然而,液态金属的流动性限制了具有细胞分辨率的图案化电路的弹性封装。为应对这一挑战,我们开发了一种基于双层微流体的方法,可在几分钟内(<3分钟)对高分辨率电极阵列(20μm)进行弹性封装。这种无需对准的方法克服了包装聚合物和高分辨率对准器的局限性,实现了器件的经济高效、可扩展制造。这些电子产品具有出色的耐磨性、高柔韧性(>300%应变)和优异的生物相容性,便于与心肌细胞进行长期稳定的连接,并能够从活体大鼠模型中采集高质量(约30dB)的细胞场电位信号以及心外膜信号(约42dB)。这种快速直接的封装方法提高了基于液态金属的柔性电子产品的精度和集成度,有望实现高分辨率监测和治疗,如细胞水平的电生理标测、电刺激和其他治疗干预。