Carbon fiber microelectrodes are promising for long-term neural interfaces due to their small size and mechanical compatibility with brain tissue. However, they typically require functional coatings to achieve the electrochemical performance necessary for high-fidelity recording and effective stimulation. Two-dimensional MXenes offer exceptional electrical properties for neural interfaces, but existing fabrication methods are often complex and hinder translation. Here, we introduce a novel, simplified approach that employs MXene as a counter-ion dopant for in-situ PEDOT polymerization directly on carbon fibers. This MXene-PEDOT composite coating simultaneously reduces electrochemical impedance and significantly enhances charge injection capacity compared to standard PEDOT:PSS. We demonstrate the functional efficacy of these MXene-doped microelectrodes through ex vivo stimulation of retinal ganglion cells and in vivo cortical recording with high signal-to-noise ratios, while also confirming their in vitro biocompatibility. This work establishes a straightforward method to leverage the advantages of both carbon fibers and MXene for neural interfaces, creating a unified coating that advances both recording and stimulation capabilities for next-generation dual functional neural interfaces. • Introduces MXene as a novel dopant for simplified PEDOT coating on neural probes. • Achieves superior electrochemical performance: lower impedance and higher charge injection capacity. • Validates functionality with in vitro retinal stimulation and high-quality in vivo cortical recording. • Demonstrates a biocompatible, unified coating that advances both recording and stimulation.
León et al. (Wed,) studied this question.
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