Pritzker School of Molecular Engineering, The University of Chicago, Chicago, IL, 60637, USA.
Department of Chemistry, University of Oxford, Oxford, OX1 3TA, UK.
Adv Mater. 2022 Jun;34(23):e2201178. doi: 10.1002/adma.202201178. Epub 2022 May 2.
Organic electrochemical transistors (OECTs) represent an emerging device platform for next-generation bioelectronics owing to the uniquely high amplification and sensitivity to biological signals. For achieving seamless tissue-electronics interfaces for accurate signal acquisition, skin-like softness and stretchability are essential requirements, but they have not yet been imparted onto high-performance OECTs, largely due to the lack of stretchable redox-active semiconducting polymers. Here, a stretchable semiconductor is reported for OECT devices, namely poly(2-(3,3'-bis(2-(2-(2-methoxyethoxy)ethoxy)ethoxy)-[2,2'-bithiophen]-5)yl thiophene) (p(g2T-T)), which gives exceptional stretchability over 200% strain and 5000 repeated stretching cycles, together with OECT performance on par with the state-of-the-art. Validated by systematic characterizations and comparisons of different polymers, the key design features of this polymer that enable the combination of high stretchability and high OECT performance are a nonlinear backbone architecture, a moderate side-chain density, and a sufficiently high molecular weight. Using this highly stretchable polymer semiconductor, an intrinsically stretchable OECT is fabricated with high normalized transconductance (≈223 S cm ) and biaxial stretchability up to 100% strain. Furthermore, on-skin electrocardiogram (ECG) recording is demonstrated, which combines built-in amplification and unprecedented skin conformability.
有机电化学晶体管(OECT)因其对生物信号的高放大和高灵敏度,代表着下一代生物电子学的新兴器件平台。为了实现用于精确信号采集的无缝组织-电子学界面,皮肤般的柔软度和拉伸性是必不可少的要求,但它们尚未应用于高性能 OECT,主要是因为缺乏可拉伸的氧化还原活性半导体聚合物。在此,报告了一种用于 OECT 器件的可拉伸半导体,即聚(2-(3,3'-双(2-(2-(2-甲氧基乙氧基)乙氧基)乙氧基)-[2,2'-联噻吩]-5)基噻吩)(p(g2T-T)),其在超过 200%的应变和 5000 次重复拉伸循环下具有出色的拉伸性,同时具有与最先进水平相当的 OECT 性能。通过对不同聚合物的系统特性分析和比较,验证了这种聚合物的关键设计特点,使其能够将高拉伸性和高 OECT 性能结合在一起,这些特点包括非线性主链架构、适度的侧链密度和足够高的分子量。使用这种高可拉伸聚合物半导体,成功制造出具有高归一化跨导(≈223 S cm)和高达 100%应变的双轴拉伸性的本征可拉伸 OECT。此外,还演示了在皮肤上进行心电图(ECG)记录,其结合了内置放大功能和前所未有的皮肤贴合性。