| Literature DB >> 33772009 |
Zhongzhong Luo1, Boyu Peng2,3, Junpeng Zeng1, Zhihao Yu1,4, Ying Zhao5, Jun Xie6, Rongfang Lan6, Zhong Ma1, Lijia Pan1, Ke Cao7, Yang Lu7, Daowei He1, Hongkai Ning1, Wanqing Meng1, Yang Yang1, Xiaoqing Chen1, Weisheng Li1, Jiawei Wang5, Danfeng Pan1,8, Xuecou Tu1,8, Wenxing Huo9, Xian Huang9, Dongquan Shi10, Ling Li5, Ming Liu5, Yi Shi1, Xue Feng11, Paddy K L Chan12,13, Xinran Wang14.
Abstract
The development of organic thin-film transistors (OTFTs) with low power consumption and high gain will advance many flexible electronics. Here, by combining solution-processed monolayer organic crystal, ferroelectric HfZrOx gating and van der Waals fabrication, we realize flexible OTFTs that simultaneously deliver high transconductance and sub-60 mV/dec switching, under one-volt operating voltage. The overall optimization of transconductance, subthreshold swing and output resistance leads to transistor intrinsic gain and amplifier voltage gain over 5.3 × 104 and 1.1 × 104, respectively, which outperform existing technologies using organics, oxides and low-dimensional nanomaterials. We further demonstrate battery-powered, integrated wearable electrocardiogram (ECG) and pulse sensors that can amplify human physiological signal by 900 times with high fidelity. The sensors are capable of detecting weak ECG waves (undetectable even by clinical equipment) and diagnosing arrhythmia and atrial fibrillation. Our sub-thermionic OTFT is promising for battery/wireless powered yet performance demanding applications such as electronic skins and radio-frequency identification tags, among many others.Entities:
Year: 2021 PMID: 33772009 PMCID: PMC7997979 DOI: 10.1038/s41467-021-22192-2
Source DB: PubMed Journal: Nat Commun ISSN: 2041-1723 Impact factor: 14.919