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用于先进可穿戴设备的银纳米颗粒修饰的多壁碳纳米管墨水

Silver Nanoparticle-Decorated Multiwalled Carbon Nanotube Ink for Advanced Wearable Devices.

作者信息

Sivan Pillai Adarsh, Chandran Achu, Kuzhichalil Peethambharan Surendran

机构信息

Materials Science and Technology Division, CSIR-National Institute for Interdisciplinary Science and Technology, Industrial Estate, Thiruvananthapuram695 019, Kerala, India.

Academy of Scientific and Innovative Research (AcSIR), Uttar Pradesh201 002, India.

出版信息

ACS Appl Mater Interfaces. 2022 Oct 19;14(41):46775-46788. doi: 10.1021/acsami.2c14482. Epub 2022 Oct 4.

Abstract

Silver nanoparticles of average size 12-13 nm were successfully decorated on the surface of multiwalled carbon nanotubes (MWCNTs) through a scalable wet chemical method without altering the structure of the MWCNTs. Employing this Ag@MWCNT, a multifunctional room-temperature curable conductive ink was developed, with PEDOT:PSS as the conductive binder. Screen printing of the ink could yield conductive planar traces with a 9.5 μm thickness and a conductivity of 28.99 S/cm, minimal surface roughness, and good adhesion on Mylar and Kapton. The versatility of the ink for developing functional elements for printed electronics was demonstrated by fabricating prototypes of a wearable strain sensor, a smart glove, a wearable heater, and a wearable breath sensor. The printed strain sensor exhibited a massive sensing range for wearable applications, including an impressive 1332% normalized resistance change under a maximum stretchability of 23% with superior cyclic stability up to 10 000 cycles. The sensor also exhibited an impeccable gauge factor of 142 for a 5% strain (59 for 23%). Furthermore, the sensor was integrated into a smart glove that could flawlessly replicate a human finger's gestures with a minimal response time of 225-370 ms. Piezoresistive vibration sensors were also fabricated by printing the ink on Mylar, which was employed to fabricate a smart mask and a smart wearable patch to monitor variations in human respiratory and pulmonary cycles. Finally, an energy-efficient flexible heater was fabricated using the developed ink. The heater could generate a uniform temperature distribution of 130 °C at the expense of only 393 mW/cm and require a minimum response time of 20 s. Thus, the unique formulation of Ag@MWCNT ink proved suitable for versatile devices for future wearable applications.

摘要

通过一种可扩展的湿化学方法,成功地在多壁碳纳米管(MWCNT)表面修饰了平均尺寸为12 - 13 nm的银纳米颗粒,且未改变MWCNT的结构。采用这种Ag@MWCNT,以PEDOT:PSS作为导电粘合剂,开发了一种多功能室温可固化导电油墨。对该油墨进行丝网印刷可得到厚度为9.5μm、电导率为28.99 S/cm的导电平面线路,表面粗糙度极小,并且在聚酯薄膜和聚酰亚胺薄膜上具有良好的附着力。通过制作可穿戴应变传感器、智能手套、可穿戴加热器和可穿戴呼吸传感器的原型,展示了该油墨在开发印刷电子产品功能元件方面的多功能性。印刷应变传感器在可穿戴应用中表现出巨大的传感范围,在最大拉伸率为23%的情况下,归一化电阻变化高达1332%,具有高达10000次循环的优异循环稳定性。该传感器在5%应变时还表现出高达142的优良应变系数(23%应变时为59)。此外,该传感器被集成到智能手套中,能够以225 - 370 ms的最短响应时间完美地复制人类手指的手势。通过将该油墨印刷在聚酯薄膜上,还制作了压阻式振动传感器,用于制作智能口罩和智能可穿戴贴片,以监测人类呼吸和肺部循环的变化。最后,使用所开发的油墨制作了一种节能柔性加热器。该加热器仅需393 mW/cm的功耗就能产生130°C的均匀温度分布,最短响应时间为20 s。因此,Ag@MWCNT油墨的独特配方被证明适用于未来可穿戴应用的多功能设备。

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