Guo Liang, Deweerth Stephen P
Department of Biomedical Engineering, Georgia Institute of Technology and Emory University, Atlanta, GA 30332 USA.
Annu Int Conf IEEE Eng Med Biol Soc. 2009;2009:1619-22. doi: 10.1109/IEMBS.2009.5333218.
To meet the emerging demand of high-throughput intimate interfaces in neuroscience research and neural prosthetics, a multilayer wiring interconnect technology for implementing high-density, integratable polydimethylsiloxane (PDMS) based conformable microelectrode arrays (MEAs) is developed. This technology has two parts: first, multilayer interconnects are fabricated within PDMS, which provides the potential for implementing high-density, large-capacity PDMS-based MEAs; second, interconnects are fabricated between PDMS and a substrate material, e.g., glass or silicon, which provides the potential for directly integrating PDMS-based MEAs with silicon-based ICs to achieve an integrated system solution for neural interfacing. Preliminary muscle surface recording experiments using a connector-integrated MEA have successfully demonstrated multichannel recording capability with good device conformability to the muscle surface during contraction. Important and promising applications will be found in neural prostheses, functional electrical stimulation (FES), and basic electrophysiology research.
为满足神经科学研究和神经假体中对高通量紧密接口不断增长的需求,开发了一种用于实现基于聚二甲基硅氧烷(PDMS)的高密度、可集成顺应性微电极阵列(MEA)的多层布线互连技术。该技术有两个部分:第一,在PDMS内制造多层互连,这为实现基于PDMS的高密度、大容量MEA提供了潜力;第二,在PDMS和衬底材料(如玻璃或硅)之间制造互连,这为将基于PDMS的MEA与基于硅的集成电路直接集成以实现用于神经接口的集成系统解决方案提供了潜力。使用集成连接器的MEA进行的初步肌肉表面记录实验已成功证明了多通道记录能力,并且在收缩过程中该设备对肌肉表面具有良好的顺应性。在神经假体、功能性电刺激(FES)和基础电生理学研究中将发现重要且有前景的应用。