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Photothermal Polymer Nanocomposites of Tungsten Bronze Nanorods with Enhanced Tensile Elongation at Low Filler Contents

机译:钨青铜纳米棒的光热聚合物纳米复合材料在低填充量下具有增强的拉伸伸长率

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摘要

We present polymer nanocomposites of tungsten bronze nanorods (TBNRs) and ethylene propylene diene monomers (EPDM). The combination of these components allows the simultaneous enhancement in the mechanical and photothermal properties of the composites at low filler contents. The as-synthesized TBNRs had lengths and diameters of 14.0 ± 2.4 nm and 2.5 ± 0.5 nm, respectively, and were capped with oleylamine, which has a chemical structure similar to EPDM, making the TBNRs compatible with the bulk EPDM matrix. The TBNRs absorb a wide range of near-infrared light because of the sub-band transitions induced by alkali metal doping. Thus, the nanocomposites of TBNRs in EPDM showed enhanced photothermal properties owing to the light absorption and subsequent heat emission by the TBNRs. Noticeably, the nanocomposite with only 3 wt% TBNRs presented significantly enhanced tensile strain at break, in comparison with those of pristine EPDM, nanocomposites with 1 and 2 wt % TBNRs, and those with tungsten bronze nanoparticles, because of the alignment of the nanorods during tensile elongation. The photothermal and mechanical properties of these nanocomposites make them promising materials for various applications such as in fibers, foams, clothes with cold weather resistance, patches or mask-like films for efficient transdermal delivery upon heat generation, and photoresponsive surfaces for droplet transport by the thermocapillary effect in microfluidic devices and microengines.
机译:我们介绍了钨青铜纳米棒(TBNRs)和乙丙二烯单体(EPDM)的聚合物纳米复合材料。这些组分的组合允许在低填料含量下同时增强复合材料的机械和光热性能。合成后的TBNR的长度和直径分别为14.0±2.4 nm和2.5±0.5 nm,并被油胺封端,该油胺的化学结构类似于EPDM,从而使TBNR与本体EPDM基质相容。由于碱金属掺杂引起的子带跃迁,TBNR吸收了广泛的近红外光。因此,由于TBNRs的光吸收和随后的散热,EPDM中TBNRs的纳米复合材料显示出增强的光热性质。值得注意的是,与原始EPDM,具有1和2 wt%TBNR的纳米复合材料以及具有钨青铜纳米颗粒的纳米复合材料相比,仅含3 wt%TBNR的纳米复合材料的断裂拉伸应变显着提高,因为拉伸伸长率。这些纳米复合材料的光热和机械性能使其成为各种应用的有前途的材料,例如纤维,泡沫,耐寒气候的衣服,在产生热量时能有效透皮递送的贴剂或类似口罩的薄膜,以及通过微滴运输光敏表面的光敏表面。微流控设备和微引擎中的热毛细管效应。

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