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首页> 外文期刊>Scientific reports. >Mussel-inspired Fluoro-Polydopamine Functionalization of Titanium Dioxide Nanowires for Polymer Nanocomposites with Significantly Enhanced Energy Storage Capability
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Mussel-inspired Fluoro-Polydopamine Functionalization of Titanium Dioxide Nanowires for Polymer Nanocomposites with Significantly Enhanced Energy Storage Capability

机译:用于高分子体复合材料的二氧化钛纳米线的贻贝启发氟聚多胺官能化,具有显着提高的能量储存能力

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High-dielectric-constant polymer nanocomposites are demonstrated to show great promise as energy storage materials. However, the large electrical mismatch and incompatibility between nanofillers and polymer matrix usually give rise to significantly reduced breakdown strength and weak energy storage capability. Therefore, rational selection and elaborate functionalization of nanofillers to optimize the performance of polymer nanocomposites are vital. Herein, inspired by adhesive proteins in mussels, a facile modification by fluoro-polydopamine is employed to reinforce the compatibility of TiO2 nanowires in the fluoropolymer matrix. The loading of 2.5 vol % f-DOPA@TiO2 NWs leads to an ultrahigh discharged energy density of 11.48?J cm?3 at 530?MV m?1, more than three times of commercial biaxial-oriented polypropylene (BOPP, 3.56?J cm?3 at 600?MV m?1). A gratifying high energy density of 9.12?J cm?3 has also been obtained with nanofiller loading as high as 15 vol % at 360?MV m?1, which is nearly double to that of pure P(VDF-HFP) (4.76?J cm?3 at 360?MV m?1). This splendid energy storage capability seems to rival or exceed most of previously reported nano-TiO2 based nanocomposites. The methods presented here provide deep insights into the design of polymer nanocomposites for energy storage applications.
机译:对高介电恒定的聚合物纳米复合材料进行说明,以表现出储能材料的伟大希望。然而,纳米填充物和聚合物基质之间的大电磁阻和不相容性通常导致显着降低的击穿强度和弱能量储存能力。因此,纳米填料的合理选择和精细官能化以优化聚合物纳米复合材料的性能至关重要。这里,通过贻贝中的粘合剂蛋白的启发,采用氟 - 多胺的容易改性来增强TiO2纳米线在含氟聚合物基质中的相容性。 2.5 Vol%F-DOPA @ TiO2 NWS的负载导致超高的放电能量密度为11.48Ω·j厘米?3在530?mv m?1,超过三次商业双轴化聚丙烯(BOPP,3.56?J. cm?3在600?mv m?1)。纳米填料负载在360〜mVm≤1的纳米填充物负载下也获得了9.12〜J厘米的高能量密度。(VDF-HFP)几乎加倍,纳米填充物负载高达15体积%,其几乎加倍(VDF-HFP)(4.76? J cm?3在360?mv m?1)。这种精彩的能量存储能力似乎竞争或超过了大部分先前报道的纳米TiO 2的纳米复合材料。此处提出的方法为能量储存应用的聚合物纳米复合材料设计提供了深入的见解。

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