Literature DB >> 20706618

A Wafer-Scale Etching Technique for High Aspect Ratio Implantable MEMS Structures.

R Bhandari1, S Negi, L Rieth, F Solzbacher.   

Abstract

Microsystem technology is well suited to batch fabricate microelectrode arrays, such as the Utah electrode array (UEA), intended for recording and stimulating neural tissue. Fabrication of the UEA is primarily based on the use of dicing and wet etching to achieve high aspect ratio (15:1) penetrating electrodes. An important step in the array fabrication is the etching of electrodes to produce needle-shape electrodes with sharp tips. Traditional etching processes are performed on a single array, and the etching conditions are not optimized. As a result, the process leads to variable geometries of electrodes within an array. Furthermore, the process is not only time consuming but also labor-intensive. This report presents a wafer-scale etching method for the UEA. The method offers several advantages, such as substantial reduction in the processing time, higher throughput and lower cost. More importantly, the method increases the geometrical uniformity from electrode to electrode within an array (1.5 ± 0.5 % non-uniformity), and from array to array within a wafer (2 ± 0.3 % non-uniformity). Also, the etching rate of silicon columns, produced by dicing, are studied as a function of temperature, etching time and stirring rate in a nitric acid rich HF-HNO(3) solution. These parameters were found to be related to the etching rates over the ranges studied and more-importantly affect the uniformity of the etched silicon columns. An optimum etching condition was established to achieve uniform shape electrode arrays on wafer-scale.

Entities:  

Year:  2010        PMID: 20706618      PMCID: PMC2917827          DOI: 10.1016/j.sna.2010.06.011

Source DB:  PubMed          Journal:  Sens Actuators A Phys        ISSN: 0924-4247            Impact factor:   3.407


  13 in total

1.  Biocompatibility considerations at stimulating electrode interfaces.

Authors:  R B Beard; B N Hung; R Schmukler
Journal:  Ann Biomed Eng       Date:  1992       Impact factor: 3.934

2.  Wafer-scale fabrication of penetrating neural microelectrode arrays.

Authors:  Rajmohan Bhandari; Sandeep Negi; Florian Solzbacher
Journal:  Biomed Microdevices       Date:  2010-10       Impact factor: 2.838

3.  Factors influencing the biocompatibility of insertable silicon microshafts in cerebral cortex.

Authors:  D J Edell; V V Toi; V M McNeil; L D Clark
Journal:  IEEE Trans Biomed Eng       Date:  1992-06       Impact factor: 4.538

4.  A Novel Method of Fabricating Convoluted Shaped Electrode Arrays for Neural and Retinal Prostheses.

Authors:  R Bhandari; S Negi; L Rieth; R A Normann; F Solzbacher
Journal:  Sens Actuators A Phys       Date:  2008       Impact factor: 3.407

5.  A peripheral nerve information transducer for amputees: long-term multichannel recordings from rabbit peripheral nerves.

Authors:  D J Edell
Journal:  IEEE Trans Biomed Eng       Date:  1986-02       Impact factor: 4.538

6.  Solid-state electrodes for multichannel multiplexed intracortical neuronal recording.

Authors:  S L BeMent; K D Wise; D J Anderson; K Najafi; K L Drake
Journal:  IEEE Trans Biomed Eng       Date:  1986-02       Impact factor: 4.538

7.  A micromachined silicon sieve electrode for nerve regeneration applications.

Authors:  T Akin; K Najafi; R H Smoke; R M Bradley
Journal:  IEEE Trans Biomed Eng       Date:  1994-04       Impact factor: 4.538

8.  In vitro comparison of sputtered iridium oxide and platinum-coated neural implantable microelectrode arrays.

Authors:  S Negi; R Bhandari; L Rieth; F Solzbacher
Journal:  Biomed Mater       Date:  2010-02-03       Impact factor: 3.715

9.  A silicon-based, three-dimensional neural interface: manufacturing processes for an intracortical electrode array.

Authors:  P K Campbell; K E Jones; R J Huber; K W Horch; R A Normann
Journal:  IEEE Trans Biomed Eng       Date:  1991-08       Impact factor: 4.538

10.  Neural electrode degradation from continuous electrical stimulation: comparison of sputtered and activated iridium oxide.

Authors:  Sandeep Negi; Rajmohan Bhandari; Loren Rieth; Rick Van Wagenen; Florian Solzbacher
Journal:  J Neurosci Methods       Date:  2009-10-28       Impact factor: 2.390

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  15 in total

1.  In Vitro/Ex Vivo Investigation of Modified Utah Electrode Array to Selectively Sense and Pace the Sub-Surface Cardiac His Bundle.

Authors:  Ankur R Shah; Muhammad S Khan; Annie M Hirahara; Matthias Lange; Ravi Ranjan; Derek J Dosdall
Journal:  ACS Biomater Sci Eng       Date:  2020-05-07

2.  Long-term reliability of Al2O3 and Parylene C bilayer encapsulated Utah electrode array based neural interfaces for chronic implantation.

Authors:  Xianzong Xie; Loren Rieth; Layne Williams; Sandeep Negi; Rajmohan Bhandari; Ryan Caldwell; Rohit Sharma; Prashant Tathireddy; Florian Solzbacher
Journal:  J Neural Eng       Date:  2014-03-24       Impact factor: 5.379

Review 3.  Progress towards biocompatible intracortical microelectrodes for neural interfacing applications.

Authors:  Mehdi Jorfi; John L Skousen; Christoph Weder; Jeffrey R Capadona
Journal:  J Neural Eng       Date:  2014-12-02       Impact factor: 5.379

4.  SELF ALIGNED TIP DEINSULATION OF ATOMIC LAYER DEPOSITED AL2O3 AND PARYLENE C COATED UTAH ELECTRODE ARRAY BASED NEURAL INTERFACES.

Authors:  Xianzong Xie; Loren Rieth; Sandeep Negi; Rajmohan Bhandari; Ryan Caldwell; Rohit Sharma; Prashant Tathireddy; Florian Solzbacher
Journal:  J Micromech Microeng       Date:  2014-03-01       Impact factor: 1.881

5.  Excimer laser deinsulation of Parylene-C on iridium for use in an activated iridium oxide film-coated Utah electrode array.

Authors:  Je-Min Yoo; Sandeep Negi; Prashant Tathireddy; Florian Solzbacher; Jong-In Song; Loren W Rieth
Journal:  J Neurosci Methods       Date:  2013-02-28       Impact factor: 2.390

6.  Characterization of a 3D optrode array for infrared neural stimulation.

Authors:  T V F Abaya; M Diwekar; S Blair; P Tathireddy; L Rieth; G A Clark; F Solzbacher
Journal:  Biomed Opt Express       Date:  2012-08-24       Impact factor: 3.732

Review 7.  Neural Interfaces for Intracortical Recording: Requirements, Fabrication Methods, and Characteristics.

Authors:  Katarzyna M Szostak; Laszlo Grand; Timothy G Constandinou
Journal:  Front Neurosci       Date:  2017-12-07       Impact factor: 4.677

8.  Direct Growth of Carbon Nanotubes on New High-Density 3D Pyramid-Shaped Microelectrode Arrays for Brain-Machine Interfaces.

Authors:  Bahareh Ghane Motlagh; May Choueib; Alireza Hajhosseini Mesgar; Md Hasanuzzaman; Mohamad Sawan
Journal:  Micromachines (Basel)       Date:  2016-09-08       Impact factor: 2.891

9.  A 3D glass optrode array for optical neural stimulation.

Authors:  T V F Abaya; S Blair; P Tathireddy; L Rieth; F Solzbacher
Journal:  Biomed Opt Express       Date:  2012-11-01       Impact factor: 3.732

10.  Transdermal Delivery of siRNA through Microneedle Array.

Authors:  Yan Deng; Jiao Chen; Yi Zhao; Xiaohui Yan; Li Zhang; Kwongwai Choy; Jun Hu; Himanshu J Sant; Bruce K Gale; Tao Tang
Journal:  Sci Rep       Date:  2016-02-18       Impact factor: 4.379

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