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Fabrication of conductive and printable nano carbon ink for wearable electronic and heating fabrics

机译:用于可穿戴电子和加热织物的导电和可印刷纳米碳油墨的制造

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Printable Nano carbon colloidal ink has fascinated great attention due to their exceptional potential for large-scale application for powering wearable electronic devices. Though, it is challenging to incorporate various characteristics together such as mechanical stability, solution printability, conductivity, electrocatalytic activity, and heat generating properties in the flexible fabric based electrode system. In this research the development of printable composites made with woven/nonwoven fabrics printed with multiwall carbon nanotubes for flexible and wearable heating system and cathodes for dye-sensitized solar cells (DSSC), respectively. We report a printable carbon ink of multiwall carbon nanotubes (MWCNT) synthesized by globular protein serum bovine albumin (BSA). BSA is amino-rich dispersant used to disperse MWCNT and generate tubular porous carbon matrix. High loading ratio of BSA increases the dispersing power of MWCNT and increased porosity of CNT matrix. The proposed Organic Nanocarbon ink (Organic NC) serve the pathways for electron transport leading to higher heat dissipation as the well high conductivity and electrocatalytic activity. It was interesting to reveal that different kinds of woven and nonwoven fabrics displayed exceptional thermal properties when DC voltage was applied. The heat generating properties were highly dependent on the type of fabric and conductive ink uptake. Our proposed Organic NC printed fabric system exhibited superior conductivity with 15-20 Omega resistivity and lower charge transfer resistance R-C(T) = 2.69 Omega, demonstrated an 8% power conversion efficiency of DSSC. The proposed research paves the ways for solution printable high performance woven and nonwoven conductive and thermoelectric materials for wearable electronics. (C) 2018 Elsevier Inc. All rights reserved.
机译:可印刷的纳米碳胶体油墨由于其用于供电电子设备供电的大规模应用而令人着迷于其卓越的关注。然而,将各种特征纳入诸如基于柔性织物的电极系统中的机械稳定性,溶液可印刷性,电导率,电催化活性和发热性能是具有挑战性的。在这项研究中,使用具有多壁碳纳米管的编织/非织造织物制成的可印刷复合材料,用于柔性且可携带的加热系统和用于染料敏化太阳能电池(DSSC)的阴极。我们报告了由球状蛋白血清牛白蛋白(BSA)合成的多壁碳纳米管(MWCNT)的可印刷碳油墨。 BSA是富含氨基的分散剂,用于分散MWCNT并产生管状多孔碳基质。 BSA的高负载比率增加了MWCNT的分散功率和CNT基质的孔隙率增加。所提出的有机纳米碳油墨(有机NC)用于电子运输的途径,导致较高的散热作为井高导电性和电催化活性。有趣的是,揭示不同种类的编织和非织造织物在施加直流电压时显示出异常的热性能。发热性能高度依赖于织物和导电油墨吸收的类型。我们所提出的有机NC印刷织物系统具有卓越的电导率,具有15-20欧米加电阻率和较低电荷转移电阻R-C(T)= 2.69ωωDSC的功率转换效率为8%。该研究铺设了可穿戴电子产品的溶液可印刷高性能编织和无纺布导电和热电材料的方法。 (c)2018 Elsevier Inc.保留所有权利。

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