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用于超灵敏压力检测的柔性悬栅有机薄膜晶体管

Flexible suspended gate organic thin-film transistors for ultra-sensitive pressure detection.

作者信息

Zang Yaping, Zhang Fengjiao, Huang Dazhen, Gao Xike, Di Chong-An, Zhu Daoben

机构信息

1] Beijing National Laboratory for Molecular Sciences, Key Laboratory of Organic Solids, Institute of Chemistry, CAS, Beijing 100190, China [2] University of Chinese Academy of Sciences, Beijing 100049, China.

Key Laboratory of Synthetic and Self-Assembly Chemistry for Organic Functional Molecules, Shanghai Institute of Organic Chemistry, CAS, Shanghai 200032, China.

出版信息

Nat Commun. 2015 Mar 3;6:6269. doi: 10.1038/ncomms7269.

Abstract

The utilization of organic devices as pressure-sensing elements in artificial intelligence and healthcare applications represents a fascinating opportunity for the next-generation electronic products. To satisfy the critical requirements of these promising applications, the low-cost construction of large-area ultra-sensitive organic pressure devices with outstanding flexibility is highly desired. Here we present flexible suspended gate organic thin-film transistors (SGOTFTs) as a model platform that enables ultra-sensitive pressure detection. More importantly, the unique device geometry of SGOTFTs allows the fine-tuning of their sensitivity by the suspended gate. An unprecedented sensitivity of 192 kPa(-1), a low limit-of-detection pressure of <0.5 Pa and a short response time of 10 ms were successfully realized, allowing the real-time detection of acoustic waves. These excellent sensing properties of SGOTFTs, together with their advantages of facile large-area fabrication and versatility in detecting various pressure signals, make SGOTFTs a powerful strategy for spatial pressure mapping in practical applications.

摘要

在人工智能和医疗保健应用中,将有机器件用作压力传感元件,为下一代电子产品带来了令人着迷的机遇。为满足这些前景广阔的应用的关键要求,迫切需要低成本构建具有出色柔韧性的大面积超灵敏有机压力器件。在此,我们展示了柔性悬浮栅有机薄膜晶体管(SGOTFT)作为一个能够实现超灵敏压力检测的模型平台。更重要的是,SGOTFT独特的器件几何结构允许通过悬浮栅对其灵敏度进行微调。成功实现了前所未有的192 kPa(-1)的灵敏度、<0.5 Pa的低检测极限压力以及10 ms的短响应时间,从而能够实时检测声波。SGOTFT的这些优异传感特性,连同其易于大面积制造的优势以及在检测各种压力信号方面的通用性,使其成为实际应用中进行空间压力映射的有力策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/44d1/4366495/709ceb7ec278/ncomms7269-f1.jpg

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