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基于植酸/ZnO 修饰表面碳化脱木质素木材的阻燃和形状稳定的相变复合材料,具有优异的太阳能热转换效率和改善的导热性。

Flame-Retardant and Form-Stable Phase-Change Composites Based on Phytic Acid/ZnO-Decorated Surface-Carbonized Delignified Wood with Superior Solar-Thermal Conversion Efficiency and Improved Thermal Conductivity.

机构信息

College of Biomass Science and Engineering, Sichuan University, Chengdu610065, China.

The Key Laboratory of Leather Chemistry and Engineering of Ministry of Education, Sichuan University, Chengdu610065, China.

出版信息

ACS Appl Mater Interfaces. 2023 Feb 15;15(6):8093-8104. doi: 10.1021/acsami.2c20765. Epub 2023 Feb 2.

Abstract

In order to efficiently exploit solar-thermal energy, it is essential to develop form-stable phase-change material (PCM) composites simultaneously with superior solar-thermal storage efficiency, excellent flame retardancy, and improved thermal conductivity. Herein, phytic acid (PA)-modified, zinc oxide-deposited, and surface-carbonized delignified woods (PZCDWs) were constructed by alkaline boiling, PA modification, ZnO deposition, and surface carbonization. Then, novel form-stable PCMs (PZPCMs) with superior solar-thermal storage efficiency, excellent flame retardancy, and improved thermal conductivity were fabricated by impregnating -docosane into PZCDWs under vacuum. The PZCDW aerogels can well support the -docosane and overcome liquid leakage owing to their superior surface tension and strong capillary force. Differential scanning calorimetry results showed that PZPCMs possessed superior -docosane encapsulation yield and high phase-change enthalpy (185.2-213.1 J/g). Decorating delignified wood by surface carbonization and ZnO deposition significantly improved the solar-thermal conversion efficiency (up to 86.2%) and thermal conductivity (193.3% increased) of PCM composites. Furthermore, with the introduction of PA into PZPCMs, the peak heat release rate and total heat release of the PCM composites decreased considerably, indicating the enhanced flame retardancy of PZPCMs. In conclusion, the novel renewable wood-based PCM composites demonstrate promising potential in solar energy harnessing and thermal modulation technologies.

摘要

为了有效地利用太阳能热能,开发同时具有优异的太阳能热存储效率、出色的阻燃性和提高的导热性的形状稳定的相变材料(PCM)复合材料至关重要。在此,通过碱性沸腾、植酸(PA)改性、氧化锌沉积和表面碳化对木质素进行脱木质化,构建了植酸(PA)改性、氧化锌沉积和表面碳化的脱木质化木材(PZCDWs)。然后,通过在真空下将二十二烷浸渍到 PZCDWs 中,制备了具有优异的太阳能热存储效率、出色的阻燃性和提高的导热性的新型形状稳定 PCM(PZPCMs)。PZCDW 气凝胶可以很好地支撑二十二烷并且克服了液体泄漏,这是由于其优异的表面张力和强大的毛细力。差示扫描量热法结果表明,PZPCMs 具有优异的二十二烷封装产率和高相变焓(185.2-213.1 J/g)。通过表面碳化和氧化锌沉积对木质素进行修饰,显著提高了 PCM 复合材料的太阳能热转换效率(高达 86.2%)和导热性(提高了 193.3%)。此外,通过将 PA 引入 PZPCMs 中,PCM 复合材料的峰值放热率和总放热量大大降低,表明 PZPCMs 的阻燃性得到了增强。总之,新型可再生木质基 PCM 复合材料在太阳能利用和热调节技术方面具有广阔的应用前景。

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