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有机电散射天线:具有高空间分辨率的无线和多部位电势探测

Organic electro-scattering antenna: Wireless and multisite probing of electrical potentials with high spatial resolution.

作者信息

Desbiolles Benoit, Hanna Jad, Ausilio Raphael, Leccardi Marta Airaghi, Yu Yang, Sarkar Deblina

机构信息

Nano-Cybernetic Biotrek, Media Lab, Massachusetts Institute of Technology, Cambridge, MA 02139, USA.

Raith, Troy, NY 12180, USA.

出版信息

Sci Adv. 2024 Dec 20;10(51):eadr8380. doi: 10.1126/sciadv.adr8380.

Abstract

Monitoring electrical potentials with high recording site density and micrometer spatial resolution in liquid is critical in biosensing. Organic electronic materials have driven remarkable advances in the field because of their unique material properties, yet limitations in spatial resolution and recording density remain. Here, we introduce organic electro-scattering antennas (OCEANs) for wireless, light-based probing of electrical signals with micrometer spatial resolution, potentially from thousands of sites. The technology relies on the unique dependence of poly(3,4-ethylenedioxythiophene):polystyrene sulfonate light scattering properties to its doping level. Electro-optic characteristics of individual antennas varying in diameters and operating voltages were systematically characterized in saline solution. Signal-to-noise ratios up to 48 were achieved in response to 100-mV stimuli, with 2.5-mV detection limits. OCEANs demonstrated millisecond time constants and exceptional long-term stability, enabling continuous recordings over 10 hours. By offering spatial resolution of 5 μm and a recording density of 4 × 10 cm, OCEANs unlock new readout capabilities, potentially accelerating fundamental and clinical research.

摘要

在液体中以高记录位点密度和微米级空间分辨率监测电势在生物传感中至关重要。有机电子材料因其独特的材料特性推动了该领域的显著进展,但在空间分辨率和记录密度方面仍存在局限性。在此,我们引入有机电散射天线(OCEANs),用于对电信号进行无线、基于光的探测,具有微米级空间分辨率,潜在地可从数千个位点进行探测。该技术依赖于聚(3,4 - 亚乙基二氧噻吩):聚苯乙烯磺酸盐光散射特性对其掺杂水平的独特依赖性。在盐溶液中系统地表征了不同直径和工作电压的单个天线的电光特性。在响应100 mV刺激时,信噪比高达48,检测限为2.5 mV。OCEANs表现出毫秒级的时间常数和出色的长期稳定性,能够进行超过10小时的连续记录。通过提供5μm的空间分辨率和4×10 cm的记录密度,OCEANs开启了新的读出能力,有望加速基础研究和临床研究。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cc56/11661451/2afb6d2adbe6/sciadv.adr8380-f1.jpg

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