Emerging fiber-based neural interfaces with conductive composites.

IF 12.2 2区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Chihyeong Won, Sungjoon Cho, Kyung-In Jang, Jang-Ung Park, Jeong Ho Cho, Taeyoon Lee
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引用次数: 0

Abstract

Neural interfaces that enable bidirectional communication between neural systems and external devices are crucial for treating neurological disorders and advancing brain-machine interfaces. Key requirements for these neural interfaces are the ability to modulate electrophysiological activity without causing tissue damage in the nerve system and long-term usability. Recent advances in biomedical neural electrodes aim to reduce mechanical mismatch between devices and surrounding tissues/organs while maintaining their electrical conductivity. Among these, fiber electrodes stand out as essential candidates for future neural interfaces owing to their remarkable flexibility, controllable scalability, and facile integration with systems. Herein, we introduce fiber-based devices with conductive composites, along with their fabrication technologies, and integration strategies for future neural interfaces. Compared to conventional neural electrodes, fiber electrodes readily combine with conductive materials such as metal nanoparticles, carbon-based nanomaterials, and conductive polymers. Their fabrication technologies enable high electrical performance without sacrificing mechanical properties. In addition, the neural modulation techniques of fiber electrodes; electrical, optical, and chemical, and their applications in central and peripheral nervous systems are carefully discussed. Finally, current limitations and potential advancements in fiber-based neural interfaces are highlighted for future innovations.

新兴的基于纤维的导电复合材料神经接口。
神经接口能够实现神经系统和外部设备之间的双向通信,对于治疗神经系统疾病和推进脑机接口至关重要。对这些神经接口的关键要求是能够在不造成神经系统组织损伤的情况下调节电生理活动和长期可用性。生物医学神经电极的最新进展旨在减少设备与周围组织/器官之间的机械不匹配,同时保持其导电性。其中,光纤电极因其卓越的灵活性、可控的可扩展性和易于与系统集成而成为未来神经接口的重要候选者。在此,我们介绍了导电复合材料的纤维基器件,以及它们的制造技术,以及未来神经接口的集成策略。与传统的神经电极相比,纤维电极很容易与导电材料结合,如金属纳米颗粒、碳基纳米材料和导电聚合物。他们的制造技术在不牺牲机械性能的情况下实现了高电气性能。此外,纤维电极的神经调制技术;详细讨论了电学、光学和化学及其在中枢和周围神经系统中的应用。最后,强调了当前基于纤维的神经接口的局限性和潜在的进步,以促进未来的创新。
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来源期刊
Materials Horizons
Materials Horizons CHEMISTRY, MULTIDISCIPLINARY-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
18.90
自引率
2.30%
发文量
306
审稿时长
1.3 months
期刊介绍: Materials Horizons is a leading journal in materials science that focuses on publishing exceptionally high-quality and innovative research. The journal prioritizes original research that introduces new concepts or ways of thinking, rather than solely reporting technological advancements. However, groundbreaking articles featuring record-breaking material performance may also be published. To be considered for publication, the work must be of significant interest to our community-spanning readership. Starting from 2021, all articles published in Materials Horizons will be indexed in MEDLINE©. The journal publishes various types of articles, including Communications, Reviews, Opinion pieces, Focus articles, and Comments. It serves as a core journal for researchers from academia, government, and industry across all areas of materials research. Materials Horizons is a Transformative Journal and compliant with Plan S. It has an impact factor of 13.3 and is indexed in MEDLINE.
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