3D Printable Plasmonic Titanium Nitride Nanoparticles Enhanced Thermoplastic Polyurethane Composite for Photothermal Deicing and Infrared Imaging

材料科学 光热治疗 热塑性聚氨酯 聚氨酯 复合数 纳米颗粒 红外线的 等离子体子 光热效应 氮化物 热塑性塑料 复合材料 化学工程 纳米技术 光电子学 光学 图层(电子) 冶金 物理 工程类 弹性体
作者
Siyu Lu,Jixiang Zhang,Min Xi,Nian Li,Zhenyang Wang
出处
期刊:ACS applied nano materials [American Chemical Society]
卷期号:8 (5): 2500-2511
标识
DOI:10.1021/acsanm.4c06803
摘要

Plasmonic semiconductors enable a highly efficient light-to-heat conversion process, outperforming noble metals in terms of stability, cost-effectiveness, and accessibility. In this study, a composite 3D printing filament (T-TPU), composed of titanium nitride (TiN) and thermoplastic polyurethane (TPU), was synthesized by using a combined extrusion process involving a twin-screw extruder and a single-screw extruder. The resulting T-TPU filament could be used with fused deposition modeling (FDM) 3D printing to produce custom-designed patterns for various photothermal applications. Notably, these printed patterns showed significant improvement in thermal properties, with over 100% enhancement in thermal conductivity, 13% increase in heat capacity, and 40% increase in density leading to superior photothermal performance and potential applications in photothermal deicing and infrared imaging. Additionally, the wavelength-dependent plasmonic and photothermal responses of the printed patterns were experimentally investigated and supported by finite elemental method (FEM) simulations, revealing a temperature increase of approximately 2.5 °C under IR LED light when compared to commercial black thermoplastic polyurethane (C-TPU), which was more obvious than a difference less than 1 °C under UV or visible LED light sources. Finally, the mechanical properties of T-TPU, altered by the inclusion of TiN nanoparticles, were assessed, showing a slight enhancement in modulus (over 30% enhancement) and friction coefficient (∼5% smoother) relative to neat TPU (N-TPU). Molecular dynamics (MD) simulations indicated that the TiN nanoparticles promoted strong interactions between polymer chains and TiN particles, enhancing the modulus of elasticity and contributing to the improved mechanical properties of T-TPU. These findings suggest improved abrasion resistance, demonstrating the stability and durability of the composite material.
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