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Fabrication of iridium oxide neural electrodes at the wafer level 被引量:2

Fabrication of iridium oxide neural electrodes at the wafer level
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摘要 Electro-deposition, electrical activation, thermal oxidation, and reactive ion sputtering are the four primary methods to fabricate iridium oxide film. Among these methods, reactive ion sputtering is a commonly used method in standard micro-fabrication processes. In different sputtering conditions, the component, texture, and electrochemistry character of iridium oxide varies considerably. To fabricate the iridium oxide film compatible with the wafer-level processing of neural electrodes, the quality of iridium oxide film must be able to withstand the mechanical and chemical impact of post-processing, and simultaneously achieve good performance as a neural electrode. In this study, parameters of sputtering were researched and developed to achieve a balance between mechanical stability and good electrochemical characteristics of iridium oxide film on electrode. Iridium oxide fabricating process combined with fabrication flow of silicon electrodes, at wafer-level, is introduced to produce silicon based planar iridium oxide neural electrodes. Compared with bare gold electrodes, iridium oxide electrodes fabricated with this method exhibit particularly good electrochemical stability, low impedance of 386 kW at 1 kH z, high safe charge storage capacity of 3.2 m C/cm^2, and good impedance consistency of less than 25% fluctuation.
作者 ZHANG He PEI WeiHua ZHAO ShanShan YANG XiaoWei LIU RuiCong LIU YuanYuan WU Xian GUO DongMei GUI Qiang GUO XuHong XING Xiao WANG YiJun CHEN HongDa ZHANG He;PEI WeiHua;ZHAO ShanShan;YANG XiaoWei;LIU RuiCong;LIU YuanYuan;WU Xian;GUO DongMei;GUI Qiang;GUO XuHong;XING Xiao;WANG YiJun;CHEN HongDa(State Key Laboratory on Integrated Optoelectronics, Institute of Semiconductors, Chinese Academy of Sciences;Engineering Research Center for Semiconductor Integrated Technology, Institute of Semiconductors, Chinese Academy of Sciences)
出处 《Science China(Technological Sciences)》 SCIE EI CAS CSCD 2016年第9期1399-1406,共8页 中国科学(技术科学英文版)
基金 supported by the National Natural Science Foundation of China(Grant Nos.61335010,61275145,61275200&61275145) the National Hi-Tech Research and Development Program of China("863"Project)(Grant No.2013AA032204) the Brain Vanguard Technology Crossover Cooperation Projects of Chinese Academy of Sciences(GrantNo.KJZD-EW-L11-01) the Recruitment Program for Young Professionals
关键词 reactive ion sputtering iridium oxide wafer-level neural electrode 制备方法 氧化铱 金电极 神经 晶片 微制造工艺 电化学性质 机械稳定性
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  • 1Verzeano M, Negishi K. Neuronal activity in cortical and thalamic networks. J Gen Physiol, 1960,43: 177-195.
  • 2Hoogerwerf A C, Wise K D. A three-dimensional microelectrode array for chronic neural recording. IEEE T Bio-Med Eng, 1994, 41: 1136-1146.
  • 3Kozai T D, Langhals N B, Patel P R, et al. Ultrasmall implantable composite microelectrodes with bioactive surfaces for chronic neural interfaces. Nat Mater, 2012,11: 1065-1073.
  • 4Kipke D R, Vetter R J, Williams J C, et al. Silicon-substrate intracortical microelectrode arrays for long-term recording of neuronal spike activity in cerebral cortex. IEEE T Neur Sys Reh, 2003,11: 151-155.
  • 5Vetter R J, Williams J C, Hetke J F, et al. Chronic neural recording using silicon-substrate microelectrode arrays implanted in cerebral cortex. IEEE T Bio-Med Eng, 2004, 51: 896-904.
  • 6Fujishiro A, Kaneko H, Kawashima T, et al. In vivo neuronal action potential recordings via three-dimensional microscale needleelectrode arrays. Scientific Reports, 2014,4: 4868.
  • 7Foley C P, Nishimura N, Neeves K B, et al. Flexible microfluidic devices supported by biodegradable insertion scaffolds for convection-enhanced neural drug delivery. Biomed Microdevices, 2009, 11: 915-924.
  • 8Shin] H, Kim G B, Lee E J, et al. Carbon-nanotube-modified electrodes for highly efficient acute neural recording. Adv Health Mater, 2014,3:245-252.
  • 9Keefer E W, Botterman B R, Romero M I, et al. Carbon nanotube coating improves neuronal recordings. Nature Nanotechnol, 2008, 3: 434-439.
  • 10Song P A, Yang H T, Fu S Y, et al. Effect of carbon nanotubes on the mechanical properties of polypropylene/wood flour composites: reinforcement mechanism. J Macromol Sci, 2011, 50: 907-921.

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