光极
电阻抗
材料科学
传感器
信号(编程语言)
光电子学
接口(物质)
声学
光学
电气工程
计算机科学
物理
工程类
毛细管数
毛细管作用
复合材料
荧光
程序设计语言
作者
Reem M. Almasri,Amr Al Abed,Yuan Wei,Han Wang,Josiah Firth,Laura A. Poole‐Warren,François Ladouceur,Torsten Lehmann,Nigel H. Lovell
标识
DOI:10.1109/tbme.2021.3126849
摘要
Recording and monitoring electrically-excitable cells is critical to understanding the complex cellular networking within organs as well as the processes underlying many electro-physiological pathologies. Biopotential recording using an optical-electrode (optrode) is a novel approach which has potential to significantly improve interface-instrumentation impedance mismatching as recording contact-sizes become smaller and smaller. Optrodes incorporate a conductive interface that can sense extracellular potential and an underlying layer of liquid crystals that passively transduces electrical signals into measurable optical signals. This study investigates the impedance properties of this optical technology by varying the diameter of recording sites and observing the corresponding changes in the impedance values. The results show that the liquid crystals in this optrode platform exhibit input impedance values (1 MΩ - 100 GΩ) that are three orders of magnitude higher than the corresponding interface impedance, which is appropriate for voltage sensing. The automatic scaling of the input impedance enabled within the optrode system maintains a relatively constant ratio between input and total system impedance of about one for sensing areas with diameters ranging from 40 µm to 1 mm, at which the calculated signal loss is predicted to be <1%. This feature preserves the interface-transducer impedance ratio, regardless of the size of the recording site, allowing development of passive optrode arrays capable of very high spatial-resolution recordings.
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