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共轭聚合物在生物电子学中的应用

Conjugated Polymers in Bioelectronics.

机构信息

Biological and Environmental Sciences and Engineering Division , King Abdullah University of Science and Technology (KAUST) , Thuwal 23955-6900 , Kingdom of Saudi Arabia.

Department of Biomedical Engineering , Northwestern University , Evanston , Illinois 60208 , United States.

出版信息

Acc Chem Res. 2018 Jun 19;51(6):1368-1376. doi: 10.1021/acs.accounts.7b00624. Epub 2018 Jun 6.

DOI:10.1021/acs.accounts.7b00624
PMID:29874033
Abstract

The emerging field of organic bioelectronics bridges the electronic world of organic-semiconductor-based devices with the soft, predominantly ionic world of biology. This crosstalk can occur in both directions. For example, a biochemical reaction may change the doping state of an organic material, generating an electronic readout. Conversely, an electronic signal from a device may stimulate a biological event. Cutting-edge research in this field results in the development of a broad variety of meaningful applications, from biosensors and drug delivery systems to health monitoring devices and brain-machine interfaces. Conjugated polymers share similarities in chemical "nature" with biological molecules and can be engineered on various forms, including hydrogels that have Young's moduli similar to those of soft tissues and are ionically conducting. The structure of organic materials can be tuned through synthetic chemistry, and their biological properties can be controlled using a variety of functionalization strategies. Finally, organic electronic materials can be integrated with a variety of mechanical supports, giving rise to devices with form factors that enable integration with biological systems. While these developments are innovative and promising, it is important to note that the field is still in its infancy, with many unknowns and immense scope for exploration and highly collaborative research. The first part of this Account details the unique properties that render conjugated polymers excellent biointerfacing materials. We then offer an overview of the most common conjugated polymers that have been used as active layers in various organic bioelectronics devices, highlighting the importance of developing new materials. These materials are the most popular ethylenedioxythiophene derivatives as well as conjugated polyelectrolytes and ion-free organic semiconductors functionalized for the biological interface. We then discuss several applications and operation principles of state-of-the-art bioelectronics devices. These devices include electrodes applied to sense/trigger electrophysiological activity of cells as well as electrolyte-gated field-effect and electrochemical transistors used for sensing of biochemical markers. Another prime application example of conjugated polymers is cell actuators. External modulation of the redox state of the underlying conjugated polymer films controls the adhesion behavior and viability of cells. These smart surfaces can be also designed in the form of three-dimensional architectures because of the processability of conjugated polymers. As such, cell-loaded scaffolds based on electroactive polymers enable integrated sensing or stimulation within the engineered tissue itself. A last application example is organic neuromorphic devices, an alternative computing architecture that takes inspiration from biology and, in particular, from the way the brain works. Leveraging ion redistribution inside a conjugated polymer upon application of an electrical field and its coupling with electronic charges, conjugated polymers can be engineered to act as artificial neurons or synapses with complex, history-dependent behavior. We conclude this Account by highlighting main factors that need to be considered for the design of a conjugated polymer for applications in bioelectronics-although there can be various figures of merit given the broad range of applications, as emphasized in this Account.

摘要

新兴的有机生物电子学领域将基于有机半导体器件的电子世界与生物学中主要为离子的软世界联系起来。这种交流可以双向进行。例如,生化反应可能会改变有机材料的掺杂状态,从而产生电子读数。相反,来自设备的电子信号可能会刺激生物事件。该领域的前沿研究导致了广泛的有意义的应用的发展,从生物传感器和药物输送系统到健康监测设备和脑机接口。共轭聚合物在化学“性质”上与生物分子相似,可以通过各种形式进行工程设计,包括具有类似于软组织的杨氏模量且具有离子导电性的水凝胶。通过合成化学可以调整有机材料的结构,并且可以使用各种功能化策略来控制其生物特性。最后,有机电子材料可以与各种机械支撑相结合,从而产生具有使它们能够与生物系统集成的外形因素的器件。虽然这些发展具有创新性和前景,但重要的是要注意,该领域仍处于起步阶段,存在许多未知数,并且具有广泛的探索和高度协作研究的空间。本账户的第一部分详细介绍了使共轭聚合物成为出色的生物界面材料的独特性质。然后,我们概述了已被用作各种有机生物电子设备中有源层的最常见的共轭聚合物,强调了开发新材料的重要性。这些材料是最受欢迎的乙撑二氧噻吩衍生物以及被官能化以用于生物界面的共轭聚电解质和无离子有机半导体。然后,我们讨论了几种最先进的生物电子设备的应用和工作原理。这些设备包括用于感测/触发细胞电生理活性的电极,以及用于感测生物化学标记物的电解质门控场效应晶体管和电化学晶体管。共轭聚合物的另一个主要应用示例是细胞致动器。底层共轭聚合物薄膜的氧化还原状态的外部调制控制着细胞的粘附行为和活力。由于共轭聚合物的可加工性,可以将这些智能表面设计为三维结构。因此,基于电活性聚合物的细胞负载支架能够在工程组织本身内部进行集成感测或刺激。有机神经形态器件是另一个应用示例,这是一种从生物学中汲取灵感的替代计算架构,特别是从大脑工作方式中汲取灵感。利用在施加电场时在共轭聚合物内部重新分布的离子及其与电子电荷的耦合,共轭聚合物可以被设计为具有复杂的、依赖历史的行为的人工神经元或突触。在本账户中,我们强调了在生物电子学中设计共轭聚合物时需要考虑的主要因素-尽管鉴于本账户强调的广泛应用范围,可能有各种衡量标准。

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