Department of Electrical and Electronics Engineering, Koç University, Istanbul 34450, Turkey.
Graduate School of Biomedical Science and Engineering, Koç University, Istanbul 34450, Turkey.
ACS Appl Mater Interfaces. 2022 May 11;14(18):20468-20490. doi: 10.1021/acsami.1c25009. Epub 2022 Apr 28.
Optoelectronic modulation of neural activity is an emerging field for the investigation of neural circuits and the development of neural therapeutics. Among a wide variety of nanomaterials, colloidal quantum dots provide unique optoelectronic features for neural interfaces such as sensitive tuning of electron and hole energy levels via the quantum confinement effect, controlling the carrier localization via band alignment, and engineering the surface by shell growth and ligand engineering. Even though colloidal quantum dots have been frontier nanomaterials for solar energy harvesting and lighting, their application to optoelectronic neural interfaces has remained below their significant potential. However, this potential has recently gained attention with the rise of bioelectronic medicine. In this review, we unravel the fundamentals of quantum-dot-based optoelectronic biointerfaces and discuss their neuromodulation mechanisms starting from the quantum dot level up to electrode-electrolyte interactions and stimulation of neurons with their physiological pathways. We conclude the review by proposing new strategies and possible perspectives toward nanodevices for the optoelectronic stimulation of neural tissue by utilizing the exceptional nanoscale properties of colloidal quantum dots.
光电神经调制是神经回路研究和神经治疗发展的新兴领域。在各种各样的纳米材料中,胶体量子点为神经接口提供了独特的光电特性,例如通过量子限制效应灵敏地调谐电子和空穴能级、通过能带排列控制载流子局域化以及通过壳生长和配体工程来设计表面。尽管胶体量子点已成为太阳能收集和照明的前沿纳米材料,但它们在光电神经接口中的应用仍未充分发挥其巨大潜力。然而,随着生物电子医学的兴起,这种潜力最近引起了人们的关注。在这篇综述中,我们揭示了基于量子点的光电生物界面的基本原理,并从量子点层面讨论了它们的神经调节机制,一直到电极-电解质相互作用和通过其生理途径刺激神经元。最后,我们提出了新的策略和可能的观点,以利用胶体量子点的特殊纳米特性,为神经组织的光电刺激开发纳米器件。