Department of Physics and Tsinghua-Foxconn Nanotechnology Research Center, Tsinghua University, Beijing 100084, China.
ACS Nano. 2010 Oct 26;4(10):5827-34. doi: 10.1021/nn1017318.
High-strength and conductive carbon nanotube (CNT) yarns are very attractive in many potential applications. However, there is a difficulty when simultaneously enhancing the strength and conductivity of CNT yarns. Adding some polymers into CNT yarns to enhance their strength will decrease their conductivity, while treating them in acid or coating them with metal nanoparticles to enhance their conductivity will reduce their strength. To overcome this difficulty, here we report a method to make high-strength and highly conductive CNT-based composite yarns by using a continuous superaligned CNT (SACNT) yarn as a conductive framework and then inserting polyvinyl alcohol (PVA) into the intertube spaces of the framework through PVA/dimethyl sulphoxide solution to enhance the strength of yarns. The as-produced CNT/PVA composite yarns possess very high tensile strengths up to 2.0 GPa and Young's moduli more than 120 GPa, much higher than those of the CNT/PVA yarns reported. The electric conductivity of as-produced composite yarns is as high as 9.2 × 10(4) S/m, comparable to HNO(3)-treated or Au nanoparticle-coated CNT yarns. These composite yarns are flexible, lightweight, scratch-resistant, very stable in the lab environment, and resistant to extremely humid ambient and as a result can be woven into high-strength and heatable fabrics, showing potential applications in flexible heaters, bullet-proof vests, radiation protection suits, and spacesuits.
高强度和导电的碳纳米管(CNT)纱线在许多潜在的应用中非常有吸引力。然而,在同时提高 CNT 纱线的强度和导电性方面存在困难。向 CNT 纱线中添加一些聚合物以提高其强度会降低其导电性,而在酸中处理它们或以金属纳米粒子涂覆它们以提高其导电性会降低其强度。为了克服这一困难,我们在这里报告了一种通过使用连续的超取向 CNT(SACNT)纱线作为导电骨架,并通过 PVA/二甲基亚砜溶液将聚乙烯醇(PVA)插入骨架的管间空间来制造高强度和高导电性 CNT 基复合纱线的方法,以增强纱线的强度。所生产的 CNT/PVA 复合纱线具有高达 2.0 GPa 的拉伸强度和超过 120 GPa 的杨氏模量,远高于已报道的 CNT/PVA 纱线。所生产的复合纱线的电导率高达 9.2×10^4 S/m,与经过 HNO3 处理或 Au 纳米粒子涂覆的 CNT 纱线相当。这些复合纱线柔软、轻便、耐刮擦,在实验室环境中非常稳定,并且能够耐受极潮湿的环境,因此可以编织成高强度和可加热的织物,在柔性加热器、防弹背心、辐射防护服和航天服等领域具有潜在的应用。