首页> 外文期刊>Journal of Materials Chemistry, A. Materials for energy and sustainability >Flame-retardant and form-stable phase change composites based on black phosphorus nanosheets/cellulose nanofiber aerogels with extremely high energy storage density and superior solar-thermal conversion efficiency
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Flame-retardant and form-stable phase change composites based on black phosphorus nanosheets/cellulose nanofiber aerogels with extremely high energy storage density and superior solar-thermal conversion efficiency

机译:基于黑色磷纳米片/纤维素纳米纤维气凝胶的阻燃和形成的相变复合材料具有极高的储能密度和卓越的太阳能 - 热转换效率

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Impregnating organic phase change materials (PCMs) into cellulose-based aerogels is considered as an accessible and effective technology to prevent the liquid leakage issue due to the superior surface tension and capillary force. However, the poor solar-thermal conversion performance, high flammability, and low thermal conductivity still restrict the large-scale application of organic PCMs. Herein, two-dimensional (2D)-layered black phosphorus (BP) nanosheets having a superior photothermal effect were synthesized from a BP crystal through ultrasonication-assisted liquid exfoliation. Then, novel form-stable PCM composites (CBPCMs) were prepared by impregnatingn-octacosane into cellulose nanofiber (CNF)/BP hybrid aerogels. The porous aerogels adequately supported then-octacosane and prevented the liquid leakage issue. Differential scanning calorimetry (DSC) analysis demonstrated that the synthesized CBPCMs based on CNF/BP hybrid aerogels possessed extremely highn-alkane loading capacity and thermal storage density (247.0-251.6 J g(-1)). The incorporation of BP nanosheets into the aerogels considerably increased the thermal conductivity (89.0% increase) and solar-thermal conversion and storage efficiency (up to 87.6%) of the CBPCMs. Furthermore, with the increasing content of BP nanosheets in the aerogels, the heat release rate and total heat release of the CBPCMs decreased considerably, while the LOI value and char yield increased, thus revealing the significantly improved flame retardancy of the PCM composites. In conclusion, the CBPCMs show considerable potential in solar utilisation systems.
机译:将有机相变材料(PCM)浸渍到基于纤维素的气凝胶中被认为是一种可访问和有效的技术,以防止由于优异的表面张力和毛细力引起的液体泄漏问题。但是,太阳能热转换性能差,易燃性高,导热性低仍然限制了有机PCM的大规模应用。这里,通过超声辅助液体去角质从BP晶体中合成具有优异的光热效应的二维(2D) - 层的黑磷(BP)纳米次。然后,通过将NOTACOSENE浸渍到纤维素纳米纤维(CNF)/ BP杂交气凝胶中来制备新型稳定的PCM复合材料(CBPCMS)。多孔气凝胶充分支持于八糖糖烷并防止液体泄漏问题。差分扫描量热法(DSC)分析证明,基于CNF / BP杂交气凝胶的合成CBPCM具有极高的烷烃负载能力和热存储密度(247.0-251.6Jg(-1))。将BP纳米片纳入气凝胶的热导率显着增加了导热率(增加89.0%)和太阳能 - 热转化和储存效率(高达87.6%)的CBPCM。此外,随着Aerogels中BP纳米片的含量增加,CBPCM的热释放率和总热释放显着降低,而LOI值和炭产率增加,从而显着提高了PCM复合材料的显着提高的阻燃性。总之,CBPCMS在太阳能利用系统中表现出相当大的潜力。

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