Spiers Memorial Lecture: Challenges and prospects in organic photonics and electronics

IF 3.4 3区 化学 Q2 Chemistry Faraday Discussions Pub Date : 2024-02-21 DOI:10.1039/D3FD00152K
Michele Catacchio, Mariapia Caputo, Lucia Sarcina, Cecilia Scandurra, Angelo Tricase, Verdiana Marchianò, Eleonora Macchia, Paolo Bollella and Luisa Torsi
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Abstract

While a substantial amount of research activity has been conducted in fields related to organic photonics and electronics, including the development of devices such as organic field-effect transistors, organic photovoltaics, and organic light-emitting diodes for applications encompassing organic thermoelectrics, organic batteries, excitonic organic materials for photochemical and optoelectronic applications, and organic thermoelectrics, this perspective review will primarily concentrate on the emerging and rapidly expanding domain of organic bioelectronics and neuromorphics. Here we present the most recent research findings on organic transistors capable of sensing biological biomarkers down at the single-molecule level (i.e., oncoproteins, genomes, etc.) for the early diagnosis of pathological states and to mimic biological synapses, paving the way to neuromorphic applications that surpass the limitations of the traditional von Neumann computing architecture. Both organic bioelectronics and neuromorphics exhibit several challenges but will revolutionize human life, considering the development of artificial synapses to counteract neurodegenerative disorders and the development of ultrasensitive biosensors for the early diagnosis of cancer to prevent its development. Moreover, organic bioelectronics for sensing applications have also triggered the development of several wearable, flexible and stretchable biodevices for continuous biomarker monitoring.

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斯皮尔斯纪念讲座:有机光子学和电子学的挑战与前景。
虽然有机光子学和电子学相关领域已经开展了大量研究活动,包括开发有机场效应晶体管、有机光伏和有机发光二极管等器件,其应用领域涵盖有机热电、有机电池、用于光化学和光电应用的激子有机材料以及有机热电,但本视角综述将主要集中在新兴且快速扩展的有机生物电子学和神经形态学领域。在此,我们将介绍有关有机晶体管的最新研究成果,这些晶体管能够在单分子水平(如肿瘤蛋白、基因组等)感知生物标记物,用于病理状态的早期诊断和模拟生物突触,为超越传统冯-诺依曼计算架构限制的神经形态应用铺平道路。有机生物电子学和神经形态学都面临着一些挑战,但它们将彻底改变人类的生活,例如开发人工突触来对抗神经退行性疾病,以及开发超灵敏生物传感器来早期诊断癌症以防止其发展。此外,用于传感应用的有机生物电子学也引发了一些可穿戴、柔性和可拉伸生物设备的开发,用于连续的生物标记监测。
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来源期刊
Faraday Discussions
Faraday Discussions CHEMISTRY, PHYSICAL-
CiteScore
4.90
自引率
0.00%
发文量
259
审稿时长
2.8 months
期刊介绍: Discussion summary and research papers from discussion meetings that focus on rapidly developing areas of physical chemistry and its interfaces
期刊最新文献
Poster list List of participants Back cover Organic neuromorphics and bioelectronics: general discussion Organic thermoelectrics: general discussion
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