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Ultra-small carbon fiber electrode recording site optimization and improved in vivo chronic recording yield.
Welle, Elissa J; Patel, Paras R; Woods, Joshua E; Petrossians, Artin; Della Valle, Elena; Vega-Medina, Alexis; Richie, Julianna M; Cai, Dawen; Weiland, James D; Chestek, Cynthia A.
Affiliation
  • Welle EJ; Department of Biomedical Engineering, University of Michigan, Ann Arbor, MI, United States of America.
J Neural Eng ; 17(2): 026037, 2020 04 29.
Article in En | MEDLINE | ID: mdl-32209743
ABSTRACT

OBJECTIVE:

Carbon fiber electrodes may enable better long-term brain implants, minimizing the tissue response commonly seen with silicon-based electrodes. The small diameter fiber may enable high-channel count brain-machine interfaces capable of reproducing dexterous movements. Past carbon fiber electrodes exhibited both high fidelity single unit recordings and a healthy neuronal population immediately adjacent to the recording site. However, the recording yield of our carbon fiber arrays chronically implanted in the brain typically hovered around 30%, for previously unknown reasons. In this paper we investigated fabrication process modifications aimed at increasing recording yield and longevity.

APPROACH:

We tested a new cutting method using a 532nm laser against traditional scissor methods for the creation of the electrode recording site. We verified the efficacy of improved recording sites with impedance measurements and in vivo array recording yield. Additionally, we tested potentially longer-lasting coating alternatives to PEDOTpTS, including PtIr and oxygen plasma etching. New coatings were evaluated with accelerated soak testing and acute recording. MAIN

RESULTS:

We found that the laser created a consistent, sustainable 257 ± 13.8 µm2 electrode with low 1 kHz impedance (19 ± 4 kΩ with PEDOTpTS) and low fiber-to-fiber variability. The PEDOTpTS coated laser cut fibers were found to have high recording yield in acute (97% > 100 µV pp , N = 34 fibers) and chronic (84% > 100 µV pp , day 7; 71% > 100 µV pp , day 63, N = 45 fibers) settings. The laser cut recording sites were good platforms for the PtIr coating and oxygen plasma etching, slowing the increase in 1 kHz impedance compared to PEDOTpTS in an accelerated soak test.

SIGNIFICANCE:

We have found that laser cut carbon fibers have a high recording yield that can be maintained for over two months in vivo and that alternative coatings perform better than PEDOTpTS in accelerated aging tests. This work provides evidence to support carbon fiber arrays as a viable approach to high-density, clinically-feasible brain-machine interfaces.
Subject(s)

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Silicon / Neurons Language: En Journal: J Neural Eng Journal subject: NEUROLOGIA Year: 2020 Document type: Article Affiliation country: United States

Full text: 1 Collection: 01-internacional Database: MEDLINE Main subject: Silicon / Neurons Language: En Journal: J Neural Eng Journal subject: NEUROLOGIA Year: 2020 Document type: Article Affiliation country: United States