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Anisotropic lightweight strong and super thermally insulating nanowood with naturally aligned nanocellulose

机译:具有天然排列的纳米纤维素的各向异性轻质坚固和超绝热的纳米木材

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摘要

There has been a growing interest in thermal management materials due to the prevailing energy challenges and unfulfilled needs for thermal insulation applications. We demonstrate the exceptional thermal management capabilities of a large-scale, hierarchal alignment of cellulose nanofibrils directly fabricated from wood, hereafter referred to as nanowood. Nanowood exhibits anisotropic thermal properties with an extremely low thermal conductivity of 0.03 W/m·K in the transverse direction (perpendicular to the nanofibrils) and approximately two times higher thermal conductivity of 0.06 W/m·K in the axial direction due to the hierarchically aligned nanofibrils within the highly porous backbone. The anisotropy of the thermal conductivity enables efficient thermal dissipation along the axial direction, thereby preventing local overheating on the illuminated side while yielding improved thermal insulation along the backside that cannot be obtained with isotropic thermal insulators. The nanowood also shows a low emissivity of <5% over the solar spectrum with the ability to effectively reflect solar thermal energy. Moreover, the nanowood is lightweight yet strong, owing to the effective bonding between the aligned cellulose nanofibrils with a high compressive strength of 13 MPa in the axial direction and 20 MPa in the transverse direction at 75% strain, which exceeds other thermal insulation materials, such as silica and polymer aerogels, Styrofoam, and wool. The excellent thermal management, abundance, biodegradability, high mechanical strength, low mass density, and manufacturing scalability of the nanowood make this material highly attractive for practical thermal insulation applications.
机译:由于普遍存在的能源挑战和对隔热应用的未满足需求,人们对热管理材料的兴趣与日俱增。我们展示了直接由木材(以下称为纳米木材)制成的纤维素纳米原纤维的大规模,分层排列所具有的出色的热管理功能。纳米木材表现出各向异性的热特性,在横向(垂直于纳米原纤维)上的导热系数极低,为0.03 W / m·K,并且由于层次结构,在轴向上的导热系数约为0.06 W / m·K的两倍高。在高度多孔的骨架内排列纳米纤维。导热率的各向异性使得能够沿轴向有效地散热,从而防止了照射侧的局部过热,同时沿背面产生了各向同性的绝热材料无法获得的改善的绝热性能。纳米木还具有在太阳光谱范围内低于5%的低发射率,并具有有效反射太阳热能的能力。此外,纳米木材重量轻但强度高,这是因为在75%应变下,排列的纤维素纳米原纤维之间的有效结合具有较高的抗压强度,轴向抗压强度为13 MPa,横向抗压强度为20 MPa,超过了其他隔热材料,例如二氧化硅和聚合物气凝胶,保丽龙和羊毛。纳米木材具有出色的热管理,丰度,生物降解性,高机械强度,低质量密度和可制造性,使这种材料在实际的隔热应用中极具吸引力。

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