神经形态工程学
材料科学
纳米技术
晶体管
制作
可扩展性
3d打印
生物传感器
计算机科学
计算机硬件
光电子学
电气工程
电压
工程类
生物医学工程
医学
替代医学
病理
机器学习
数据库
人工神经网络
作者
Matteo Massetti,Silan Zhang,Padinhare Cholakkal Harikesh,Bernhard Burtscher,Chiara Diacci,Daniel T. Simon,Xianjie Liu,Mats Fahlman,Deyu Tu,Magnus Berggren,Simone Fabiano
标识
DOI:10.1038/s41528-023-00245-4
摘要
Abstract Organic electrochemical transistors (OECTs) are being researched for various applications, ranging from sensors to logic gates and neuromorphic hardware. To meet the requirements of these diverse applications, the device fabrication process must be compatible with flexible and scalable digital techniques. Here, we report a direct-write additive process to fabricate fully 3D-printed OECTs, using 3D printable conducting, semiconducting, insulating, and electrolyte inks. These 3D-printed OECTs, which operate in the depletion mode, can be fabricated on flexible substrates, resulting in high mechanical and environmental stability. The 3D-printed OECTs have good dopamine biosensing capabilities (limit of detection down to 6 µM without metal gate electrodes) and show long-term (~1 h) synapse response, indicating their potential for various applications such as sensors and neuromorphic hardware. This manufacturing strategy is suitable for applications that require rapid design changes and digitally enabled direct-write techniques.
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