Louie Shayan, Jiang Qifeng, Wisniewski Duncan J, Bao Si Tong, Zhang Honghu, Chivukula Kaushik, Fang Qiyi, Garudapalli Ashutosh, Docherty Scott R, Ng Fay, Steigerwald Michael, Zhong Yu, Khodagholy Dion, Nuckolls Colin
Department of Chemistry, Columbia University, New York, NY 10027, USA.
Department of Electrical Engineering, Columbia University, New York, NY 10027, USA.
Sci Adv. 2025 Apr 4;11(14):eadu2356. doi: 10.1126/sciadv.adu2356. Epub 2025 Apr 2.
Organic materials that conduct both electrons and ions are integral to implantable bioelectronics because of their conformable nature. There is a dearth of these materials that are highly sensitive to cations, which are the majority ions on the surface of neurons. This manuscript offers a solution using an extended ribbon structure that is defect-free, providing high electronic mobility along its fused backbone, while the edge structure of these ribbons promotes high ionic conductivity. We incorporated these mixed ion/electron conductors into neural probes and implanted them in a rodent brain where they offer a suite of useful properties: high cation sensitivity, stability over several weeks after implantation, and biocompatibility. These materials represent an innovative class of implantable biosensors.
由于其可贴合的特性,能够传导电子和离子的有机材料对于可植入生物电子学至关重要。对阳离子高度敏感的这类材料十分匮乏,而阳离子是神经元表面的主要离子。本论文提出了一种解决方案,即使用无缺陷的延伸带状结构,该结构沿其融合主链具有高电子迁移率,同时这些带状物的边缘结构促进了高离子传导率。我们将这些混合离子/电子导体整合到神经探针中,并将其植入啮齿动物大脑,它们展现出一系列有用的特性:高阳离子敏感性、植入后数周的稳定性以及生物相容性。这些材料代表了一类创新的可植入生物传感器。