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高性能生物电子电路集成在可生物降解和可堆肥的基底上,具有完全印刷的无掩模有机电化学晶体管。

High-Performance Bioelectronic Circuits Integrated on Biodegradable and Compostable Substrates with Fully Printed Mask-Less Organic Electrochemical Transistors.

机构信息

Department of Information Engineering, University of Brescia, via Branze 38, Brescia, 25123, Italy.

Max Planck Institute for Polymer Research, Ackermannweg 10, 55128, Mainz, Germany.

出版信息

Small. 2022 Jul;18(26):e2108077. doi: 10.1002/smll.202108077. Epub 2022 Jun 1.

DOI:10.1002/smll.202108077
PMID:35642950
Abstract

Organic electrochemical transistors (OECTs) rely on volumetric ion-modulation of the electronic current to provide low-voltage operation, large signal amplification, enhanced sensing capabilities, and seamless integration with biology. The majority of current OECT technologies require multistep photolithographic microfabrication methods on glass or plastic substrates, which do not provide an ideal path toward ultralow cost ubiquitous and sustainable electronics and bioelectronics. At the same time, the development of advanced bioelectronic circuits combining bio-detection, amplification, and local processing functionalities urgently demand for OECT technology platforms with a monolithic integration of high-performance iontronic circuits and sensors. Here, fully printed mask-less OECTs fabricated on thin-film biodegradable and compostable substrates are proposed. The dispensing and capillary printing methods are used for depositing both high- and low-viscosity OECT materials. Fully printed OECT unipolar inverter circuits with a gain normalized to the supply voltage as high as 136.6 V , and current-driven sensors for ion detection and real-time monitoring with a sensitivity of up to 506 mV dec , are integrated on biodegradable and compostable substrates. These universal building blocks with the top-performance ever reported demonstrate the effectiveness of the proposed approach and can open opportunities for next-generation high-performance sustainable bioelectronics.

摘要

有机电化学晶体管 (OECT) 依赖于电子电流的体积离子调制,以提供低压操作、大信号放大、增强的传感能力,并与生物学无缝集成。目前大多数 OECT 技术都需要在玻璃或塑料衬底上进行多步光刻微加工方法,这并不是通向超低成本无处不在和可持续电子学和生物电子学的理想途径。同时,结合生物检测、放大和局部处理功能的先进生物电子电路的发展迫切需要具有高性能离子电路和传感器单片集成的 OECT 技术平台。在这里,提出了在薄膜可生物降解和可堆肥衬底上制造的全印刷无掩模 OECT。分配和毛细管印刷方法用于沉积高粘度和低粘度的 OECT 材料。在可生物降解和可堆肥衬底上集成了具有高达 136.6 V 的归一化到电源电压的增益的全印刷 OECT 单端逆变器电路,以及用于离子检测和实时监测的电流驱动传感器,灵敏度高达 506 mV dec。这些具有前所未有的最高性能的通用构建块证明了所提出方法的有效性,并为下一代高性能可持续生物电子学开辟了机会。

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