Yang Haiwei, Ying Lili, Wang Yong, Farooq Amjad, Wang Peng, Wang Zongqian
School of Textile and Garment, Innovation Center for Anhui Ecological Textile Printing and Dyeing Manufacturing Industry, Anhui Textile Printing and Dyeing Industry Technology Center, Anhui Polytechnic University, Wuhu, Anhui 241000, PR China.
School of Textile and Garment, Innovation Center for Anhui Ecological Textile Printing and Dyeing Manufacturing Industry, Anhui Textile Printing and Dyeing Industry Technology Center, Anhui Polytechnic University, Wuhu, Anhui 241000, PR China.
J Colloid Interface Sci. 2024 Mar 15;658:648-659. doi: 10.1016/j.jcis.2023.11.187. Epub 2023 Dec 18.
Integration of polylactic acid (PLA) textiles with conductive MXene holds great promise for fabricating green electronic textiles (e-textiles) and reducing the risk of electronic waste. However, constructing robust conductive networks on PLA fibers remains challenging due to the susceptibility of MXene to oxidation and the hydrophobicity of PLA fibers. Here, we demonstrate a versatile, degradable, and durable e-textile by decorating the deep eutectic solvent (DES) micro-etched PLA textile with MXene and sericin-modified carbon nanotube hybrid (MXene@SSCNT). The co-assembly of MXene with SSCNT in water not only enhanced its oxidative stability but also formed synergistic conductive networks with biomimetic leaf-like nanostructures on PLA fiber. Consequently, the MXene@SSCNT coated PLA textile (MCP-textile) exhibited high electrical conductivity (5.5 Ω·sq), high electromagnetic interference (EMI) shielding efficiency (34.20 dB over X-band), excellent electrical heating performance (66.8 ℃, 5 V), and sensitive humidity response. Importantly, the interfacial bonding between the MXene@SSCNT and fibers was significantly enhanced by DES micro-etching, resulting in superior wash durability of MCP-textile. Furthermore, the MCP-textile also showed satisfactory breathability, flame retardancy, and degradability. Given these outstanding features, MCP-textile can serve as a green and versatile e-textile with tremendous potential in EMI shielding, personal thermal management, and respiratory monitoring.
将聚乳酸(PLA)纺织品与导电的MXene相结合,在制造绿色电子纺织品(电子织物)和降低电子垃圾风险方面具有巨大潜力。然而,由于MXene易氧化以及PLA纤维具有疏水性,在PLA纤维上构建坚固的导电网络仍然具有挑战性。在此,我们通过用MXene和丝胶蛋白改性的碳纳米管复合材料(MXene@SSCNT)装饰经深度共晶溶剂(DES)微蚀刻的PLA纺织品,展示了一种多功能、可降解且耐用的电子织物。MXene与SSCNT在水中的共组装不仅提高了其氧化稳定性,还在PLA纤维上形成了具有仿生叶状纳米结构的协同导电网络。因此,MXene@SSCNT涂层的PLA纺织品(MCP-纺织品)表现出高电导率(5.5Ω·sq)、高电磁干扰(EMI)屏蔽效率(在X波段超过34.20dB)、优异的电加热性能(66.8℃,5V)以及灵敏的湿度响应。重要的是,通过DES微蚀刻显著增强了MXene@SSCNT与纤维之间的界面结合,从而使MCP-纺织品具有卓越的洗涤耐久性。此外,MCP-纺织品还表现出令人满意的透气性、阻燃性和可降解性。鉴于这些突出特性,MCP-纺织品可作为一种绿色且多功能的电子织物,在EMI屏蔽、个人热管理和呼吸监测方面具有巨大潜力。