Suppr超能文献

具有驱动屏蔽输入以降低电噪声的生物放大器及其在电生理实验室教学中的应用。

Bio-amplifier with Driven Shield Inputs to Reduce Electrical Noise and its Application to Laboratory Teaching of Electrophysiology.

作者信息

Matsuzaka Yoshiya, Ichihara Toshiaki, Abe Toshihiko, Mushiake Hajime

机构信息

Department of Physiology, Graduate School of Medicine, Tohoku University, Sendai 980-8575, JAPAN;

出版信息

J Undergrad Neurosci Educ. 2012 Spring;10(2):A118-24. Epub 2012 Mar 15.

Abstract

We describe a custom-designed bio-amplifier and its use in teaching neurophysiology to undergraduate students. The amplifier has the following features: 1) differential amplification with driven shield inputs, which makes it workable even in electrically unshielded environments, 2) high input impedance to allow recordings of small signals through high signal source impedance, 3) dual fixed frequency bandpass filters (1-340Hz for surface EMG, EEG, local field potential etc and 320Hz - 3.4kHz for neuronal action potential recording) and independent gain controllers (up to x107,000) to allow the recording of different signals from the same source (e.g., local field potential and spiking activity of neurons), and 4) printed circuit board technology for easy replication with consistent quality. We compared its performance with a commercial amplifier in an electrically noisy environment. Even without any electrostatic shield, it recorded clear electromyographic activity with little interference from other electric appliances. In contrast, the commercial amplifier's performance severely deteriorated under the same condition. We used this amplifier to build a computer-controlled stimulation and measurement system for electroencephalographic recordings by undergraduate students. The students successfully recorded various sensory evoked potentials with clarity that otherwise would have required costly instruments. This amplifier is a low-cost yet reliable instrument for electro-physiological recording both in education and research.

摘要

我们描述了一种定制设计的生物放大器及其在本科神经生理学教学中的应用。该放大器具有以下特点:1)带驱动屏蔽输入的差分放大,使其即使在无电气屏蔽的环境中也能正常工作;2)高输入阻抗,可通过高信号源阻抗记录小信号;3)双固定频率带通滤波器(用于表面肌电图、脑电图、局部场电位等的1 - 340Hz,以及用于神经元动作电位记录的320Hz - 3.4kHz)和独立增益控制器(高达x107,000),以允许从同一源记录不同信号(例如,神经元的局部场电位和放电活动);4)采用印刷电路板技术,便于以一致的质量进行复制。我们在电噪声环境中将其性能与商用放大器进行了比较。即使没有任何静电屏蔽,它也能清晰地记录肌电活动,几乎不受其他电器的干扰。相比之下,商用放大器在相同条件下性能严重下降。我们使用该放大器为本科生构建了一个用于脑电图记录的计算机控制刺激和测量系统。学生们成功清晰地记录了各种感觉诱发电位,否则这需要昂贵的仪器。这种放大器在教育和研究中都是一种低成本且可靠的电生理记录仪器。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c5e5/3598091/c9ea534ad21a/june-10-118f1.jpg

文献AI研究员

20分钟写一篇综述,助力文献阅读效率提升50倍。

立即体验

用中文搜PubMed

大模型驱动的PubMed中文搜索引擎

马上搜索

文档翻译

学术文献翻译模型,支持多种主流文档格式。

立即体验