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有机电化学晶体管材料、器件及功能

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有机电化学晶体管具有实现高灵敏度的传感及突破"冯·诺依曼瓶颈"实现低功耗的神经形态计算的潜力。目前有限的活性层材料及低的器件性能严重制约着其进一步集成与应用,器件性能的进一步提升亟需关键活性层材料的原始创新。本文综述了本课题组近五年在有机电化学晶体管材料和器件方面的研究进展。我们从材料源头创新出发,致力于材料制备方法、材料结构、聚集态结构、离子电子耦合传输对材料光电性质的影响以及相关的基本规律和物理过程,打破传统设计思路,发展非金属聚合/偶联方法,使用有效的多功能分子设计与结构调控策略制备新概念共轭高分子/寡聚物/小分子混合离子电子导体的有机电化学晶体管活性层材料;开发有机电化学晶体管的关键技术,实现若干集高性能、高稳定性、柔性于一体的有机电化学晶体管,构筑面向柔性、可穿戴器件的传感及低功耗的有机突触晶体管,对柔性生物电子学的发展具有积极的促进意义。
Materials,devices and applications of organic electrochemical transistors
The organic electrochemical transistors have attracted much attention due to their high sensitivity and potential to overcome the low-efficiency challenge posed by the von Neumann bottleneck of modem computation systems.Up to now,much effort has been focused on the development of high-performance devices that can be applied in flexible bioelectronics and biosensors.The performance of organic electrochemical transistors is mainly determined by the active layer,which needs to be carefully designed and optimized to achieve the best device performance.To address this issue,we have developed a series of novel conjugated polymers,oligomers,and small molecules to serve as active layers in organic electrochemical transistors,organic thermoelectric devices,and organic artificial synapses.Through backbone engineering,side chain engineering,and solvent engineering,the chemical structure,processing technology,and device structure have been fully optimized to achieve devices with high performance and good stability.For PDI-based n-type small molecules,a high-performance organic electrochemical transistor was achieved by isomerization of diPDI to obtain a highly twisted d-gdiPDI,which has a strong positive effect on the charge storage properties and thus on the performance of organic electrochemical transistors.It is worth mentioning that d-gdiPDI exhibits a high volumetric capacitance of 657 F cm-3,which is the highest value reported to date for small-molecule OECT materials.For fused n-type small molecules based on naphthalene bis-isatin and rhodanine acceptor units,a high μC of 31.6 F cm-1 V-1 s-1 was achieved by extending the molecular scaffold into the oligomer domain.By optimizing the energy level and side chain engineering of isoindigo-based polymers,organic electrochemical transistors with normalized values of 4.09 F cm-1 V-1 s-1,a normalized transconductance of 0.94 S cm-1,excellent operational stability,and a long shelf-life under ambient conditions were obtained.We also developed the green synthesis of lactone-based conjugated polymers by metal-free aldol polymerization,providing a highly efficient and environmentally friendly polymerization route for high-performing n-type organic electrochemical transistors.By variations of donor units in the donor-acceptor polymers,the optical properties and aggregation behavior of naphthalene tetracarboxylic diimide copolymers were finely tuned,and the performance of aqueous-based electrochemical devices was enhanced.By side chain engineering and a binary-solvent strategy,large-area porous thin films were obtained,thereby enhancing the μC value up to 476 F cm-1 V-1 s-1 in flexible organic electrochemical transistors.The conjugated polymers we developed can also be utilized as high-performance active layer materials in organic thermoelectric devices and organic synaptic transistors.And by means of UV-vis absorption spectroscopy,cyclic voltammetry,atomic force microscopy,2D grazing incident wide-angle X-ray scattering,the optoelectrical properties and morphology of these materials were investigated,and the structure-property-performance relationships were established.The novel materials and devices with mixed conductivity we developed are essential for the realization of flexible bioelectronics with high sensitivity,high stability,and low energy consumption for commercialization.

organic mixed ionic-electronic conductorsorganic semiconductorsorganic electrochemical transistorsorganic synaptic transistorssensors

李正珂、岳晚

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中山大学材料科学与工程学院,广州 510006

有机混合离子电子导体 有机半导体 有机电化学晶体管 有机突触晶体管 传感

国家自然科学基金国家自然科学基金国家自然科学基金国家重点研发计划广州基础与应用基础研究基金广东基础与应用基础研究基金广州市柔性电子材料与可穿戴设备重点实验室项目

22275212413030038522032512022YFA12066002022010111532022A1515110729202102100010

2024

科学通报
中国科学院国家自然科学基金委员会

科学通报

CSTPCD北大核心
影响因子:1.269
ISSN:0023-074X
年,卷(期):2024.69(20)