Gabran S R I, Salam Muhammad Tariqus, Dian Joshua, El-Hayek Youssef, Perez Velazquez J L, Genov Roman, Carlen Peter L, Salama M M A, Mansour Raafat R
IEEE Trans Neural Syst Rehabil Eng. 2014 Sep;22(5):1072-82. doi: 10.1109/TNSRE.2014.2322077. Epub 2014 May 22.
We introduce a new 3-D flexible microelectrode array for high performance electrographic neural signal recording and stimulation. The microelectrode architecture maximizes the number of channels on each shank and minimizes its footprint. The electrode was implemented on flexible polyimide substrate using microfabrication and thin-film processing. The electrode has a planar layout and comprises multiple shanks. Each shank is three mm in length and carries six gold pads representing the neuro-interfacing channels. The channels are used in recording important precursors with potential clinical relevance and consequent electrical stimulation to perturb the clinical condition. The polyimide structure satisfied the mechanical characteristics required for the proper electrode implantation and operation. Pad postprocessing technique was developed to improve the electrode electrical performance. The planar electrodes were used for creating 3-D "Waterloo Array" microelectrode with controlled gaps using custom designed stackers. Electrode characterization and benchmarking against commercial equivalents demonstrated the superiority of the Flex electrodes. The Flex and commercial electrodes were associated with low-power implantable responsive neuro-stimulation system. The electrodes performance in recording and stimulation application was quantified through in vitro and in vivo acute and chronic experiments on human brain slices and freely-moving rodents. The Flex electrodes exhibited remarkable drop in the electric impedance (100 times at 100 Hz), improved electrode-electrolyte interface noise (dropped by four times) and higher signal-to-noise ratio (3.3 times).
我们推出了一种新型三维柔性微电极阵列,用于高性能的电图神经信号记录和刺激。这种微电极架构能使每个柄上的通道数量最大化,并将其占用面积最小化。该电极是在柔性聚酰亚胺基板上采用微加工和薄膜工艺实现的。电极具有平面布局,由多个柄组成。每个柄长3毫米,带有六个代表神经接口通道的金垫。这些通道用于记录具有潜在临床相关性的重要前体,并进行后续的电刺激以干扰临床状况。聚酰亚胺结构满足了电极正确植入和操作所需的机械特性。开发了焊盘后处理技术以改善电极的电学性能。使用定制设计的堆叠器,将平面电极用于创建具有可控间隙的三维“滑铁卢阵列”微电极。电极表征以及与商业同类产品的基准测试证明了柔性电极的优越性。柔性电极和商业电极与低功耗植入式响应神经刺激系统相关联。通过在人脑切片和自由活动的啮齿动物上进行的体外和体内急性及慢性实验,对电极在记录和刺激应用中的性能进行了量化。柔性电极的电阻抗显著下降(在100赫兹时下降了100倍),电极 - 电解质界面噪声得到改善(下降了四倍),信噪比更高(提高了3.3倍)。