材料科学
热导率
氮化硼
复合数
热能储存
热传导
相变材料
光热治疗
复合材料
化学工程
氮化物
储能
相(物质)
热的
碳纤维
潜热
热能
电导率
聚乙二醇
能量转换
兴奋剂
纳米技术
硼
作者
Chen Liu,Jing Li,Kaiwen Bai,Y. Jay Guo,Linlin Liu,Yan Li,Shanshan Lv
标识
DOI:10.1016/j.est.2026.121055
摘要
Wood-based phase change material composites are widely utilized in building materials due to their sustainability and environmental benefits. However, their inherently low thermal conductivity limits their effectiveness in thermal energy storage and conversion. To overcome this limitation, this study proposes an innovative strategy by incorporating carbon-doped boron nitride (BCN) and polyethylene glycol (PEG2000) into delignified wood (DW) to fabricate a novel composite phase change material (BCN-DW/PEG). The BCN is synthesized using glucose and hexagonal boron nitride (h-BN). This strategy effectively improves thermal conductivity while preserving the material's excellent phase change energy storage capability. The thermal conductivity of BCN-DW/PEG reaches 0.371 W/(m·K), exhibiting a 106% increase compared to DW/PEG. Additionally, the composite retains a high latent heat storage capacity of 187.5 J/g due to the efficient integration of PEG2000. Furthermore, BCN-DW/PEG demonstrates remarkable solar-thermal conversion performance, reaching 85 °C within 250 s under 1-sun irradiation. This outstanding performance is attributed to the synergistic effect of BCN and PEG2000, which enhances both thermal conduction and solar-thermal conversion. Overall, this study provides a sustainable approach for solar-assisted thermal management in energy-efficient non-structural buildings. • Carbon-doped BN (BCN) was synthesized through high-temperature pyrolysis. • A novel photothermal method for wood-based composite PCMs by incorporating BCN. • The carbon doping improved the thermal conductivity of pure BN and composite PCMs. • The composite PCMs showed excellent energy storage and photothermal conversion performance.
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