Zhang Anqi, Lieber Charles M
Department of Chemistry and Chemical Biology and ‡Harvard John A. Paulson School of Engineering and Applied Sciences, Harvard University , Cambridge, Massachusetts 02138, United States.
Chem Rev. 2016 Jan 13;116(1):215-57. doi: 10.1021/acs.chemrev.5b00608. Epub 2015 Dec 21.
Nano-bioelectronics represents a rapidly expanding interdisciplinary field that combines nanomaterials with biology and electronics and, in so doing, offers the potential to overcome existing challenges in bioelectronics. In particular, shrinking electronic transducer dimensions to the nanoscale and making their properties appear more biological can yield significant improvements in the sensitivity and biocompatibility and thereby open up opportunities in fundamental biology and healthcare. This review emphasizes recent advances in nano-bioelectronics enabled with semiconductor nanostructures, including silicon nanowires, carbon nanotubes, and graphene. First, the synthesis and electrical properties of these nanomaterials are discussed in the context of bioelectronics. Second, affinity-based nano-bioelectronic sensors for highly sensitive analysis of biomolecules are reviewed. In these studies, semiconductor nanostructures as transistor-based biosensors are discussed from fundamental device behavior through sensing applications and future challenges. Third, the complex interface between nanoelectronics and living biological systems, from single cells to live animals, is reviewed. This discussion focuses on representative advances in electrophysiology enabled using semiconductor nanostructures and their nanoelectronic devices for cellular measurements through emerging work where arrays of nanoelectronic devices are incorporated within three-dimensional cell networks that define synthetic and natural tissues. Last, some challenges and exciting future opportunities are discussed.
纳米生物电子学是一个迅速发展的跨学科领域,它将纳米材料与生物学和电子学相结合,从而有可能克服生物电子学中现有的挑战。特别是,将电子换能器尺寸缩小到纳米尺度并使其特性更具生物性,可显著提高灵敏度和生物相容性,从而为基础生物学和医疗保健带来机遇。本综述着重介绍了基于半导体纳米结构的纳米生物电子学的最新进展,包括硅纳米线、碳纳米管和石墨烯。首先,在生物电子学的背景下讨论了这些纳米材料的合成和电学性质。其次,综述了用于生物分子高灵敏度分析的基于亲和力的纳米生物电子传感器。在这些研究中,从基本器件行为到传感应用及未来挑战,对作为基于晶体管的生物传感器的半导体纳米结构进行了讨论。第三,综述了从单细胞到活体动物的纳米电子学与活生物系统之间的复杂界面。该讨论聚焦于利用半导体纳米结构及其纳米电子器件在电生理学方面的代表性进展,这些器件通过新兴工作用于细胞测量,即在三维细胞网络中整合纳米电子器件阵列以定义合成组织和天然组织。最后,讨论了一些挑战和令人兴奋的未来机遇。