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用于生物兼容的柔韧和瞬态电子设备的人发角蛋白。

Human Hair Keratin for Biocompatible Flexible and Transient Electronic Devices.

机构信息

School of Electrical and Electronic Engineering, Nanyang Technological University , 50 Nanyang Avenue, Singapore 639798, Singapore.

School of Materials Science and Engineering, Nanyang Technological University , Singapore 639798, Singapore.

出版信息

ACS Appl Mater Interfaces. 2017 Dec 13;9(49):43004-43012. doi: 10.1021/acsami.7b16330. Epub 2017 Nov 30.

Abstract

Biomaterials have been attracting attention as a useful building block for biocompatible and bioresorbable electronics due to their nontoxic property and solution processability. In this work, we report the integration of biocompatible keratin from human hair as dielectric layer for organic thin-film transistors (TFTs), with high performance, flexibility, and transient property. The keratin dielectric layer exhibited a high capacitance value of above 1.27 μF/cm at 20 Hz due to the formation of electrical double layer. Fully solution-processable TFTs based on p-channel poly[4-(4,4-dihexadecyl-4H-cyclopenta[1,2-b:5,4-b]dithiophen-2-yl)-alt[1,2,5]thiadiazolo[3,4-c]-pyridine] (PCDTPT) and keratin dielectric exhibited high electrical property with a saturation field-effect mobility of 0.35 cm/(Vs) at a low gate bias of -2 V. We also successfully demonstrate flexible TFTs, which exhibited good mechanical flexibility and electrical stability under bending strain. An artificial electronic synaptic PCDTPT/keratin transistor was also realized and exhibited high-performance synaptic memory effects via simple operation of proton conduction in keratin. An added functionality of using keratin as a substrate was also presented, where similar PCDTPT TFTs with keratin dielectric were built on top of keratin substrate. Finally, we observed that our prepared devices can be degraded in ammonium hydroxide solution, establishing the feasibility of keratin layer as various components of transient electrical devices, including as a substrate and dielectric layer.

摘要

生物材料因其无毒特性和溶液加工性能而被视为一种有用的生物相容性和可生物吸收电子材料的构建模块,引起了人们的关注。在这项工作中,我们报告了将生物相容性角蛋白整合为介电层,用于有机薄膜晶体管(TFT),其具有高性能、柔韧性和瞬态性能。由于电双层的形成,角蛋白介电层在 20 Hz 时表现出超过 1.27 μF/cm 的高电容值。完全溶液处理的基于 p 型通道聚4-(4,4-二十六烷基-4H-环戊[1,2-b:5,4-b]二噻吩-2-基)-交替[1,2,5]噻二唑[3,4-c]-吡啶和角蛋白介电层的 TFT 具有高电性能,在低栅极偏压-2 V 下达到 0.35 cm/(Vs)的饱和场效应迁移率。我们还成功地展示了柔性 TFT,它们在弯曲应变下表现出良好的机械柔韧性和电稳定性。还实现了人工电子突触 PCDTPT/角蛋白晶体管,并通过角蛋白中质子传导的简单操作表现出高性能的突触记忆效应。还提出了将角蛋白用作基底的附加功能,其中在角蛋白基底上构建了具有角蛋白介电层的类似 PCDTPT TFT。最后,我们观察到我们制备的器件可以在氨水溶液中降解,这确立了角蛋白层作为瞬态电子器件的各种组件(包括基底和介电层)的可行性。

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