4.7 Review

Advanced Metallic and Polymeric Coatings for Neural Interfacing: Structures, Properties and Tissue Responses

Journal

POLYMERS
Volume 13, Issue 16, Pages -

Publisher

MDPI
DOI: 10.3390/polym13162834

Keywords

neural interfacing; polymers; metals; coatings; electrodes; structure-property correlations; biocompatibility

Funding

  1. Guangdong Science and Technology Department [2018A030310075]
  2. National Natural Science Foundation of China [81801851]
  3. China Postdoctoral Science Foundation [2018M633230]
  4. Sun Yat-sen University

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Neural electrodes play a crucial role in various applications such as nerve signal recording, neurostimulation, neuroprosthetics, and neuroregeneration for advancing brain science and establishing next-generation brain-electronic interfaces. The existing neural electrodes face challenges like foreign body responses, low sensitivity, and limited functionalities. Surface coatings have been explored to enhance the functionalities of neural electrodes, with a focus on improving biocompatibilities and long-term stability during implantation. This review provides insights into the design, material selection, and structural configurations for future multifunctional coatings of neural electrodes.
Neural electrodes are essential for nerve signal recording, neurostimulation, neuroprosthetics and neuroregeneration, which are critical for the advancement of brain science and the establishment of the next-generation brain-electronic interface, central nerve system therapeutics and artificial intelligence. However, the existing neural electrodes suffer from drawbacks such as foreign body responses, low sensitivity and limited functionalities. In order to overcome the drawbacks, efforts have been made to create new constructions and configurations of neural electrodes from soft materials, but it is also more practical and economic to improve the functionalities of the existing neural electrodes via surface coatings. In this article, recently reported surface coatings for neural electrodes are carefully categorized and analyzed. The coatings are classified into different categories based on their chemical compositions, i.e., metals, metal oxides, carbons, conducting polymers and hydrogels. The characteristic microstructures, electrochemical properties and fabrication methods of the coatings are comprehensively presented, and their structure-property correlations are discussed. Special focus is given to the biocompatibilities of the coatings, including their foreign-body response, cell affinity, and long-term stability during implantation. This review article can provide useful and sophisticated insights into the functional design, material selection and structural configuration for the next-generation multifunctional coatings of neural electrodes.

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