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木质素磺酸盐修饰的氮化硼/纤维素纳米原纤多孔泡沫:用于无泄漏热能存储和光热转换的多功能相变复合材料。

Lignosulfonate-Decorated Boron Nitride/Cellulose Nanofibril Porous Foam: Multifunctional Phase Change Composites for Leakage-Free Thermal Energy Storage and Photothermal Conversion.

作者信息

Wang Huijie, Lei Tong, Zhu Fan, Wang Meng, Yu Zhaochuan, Liu Yuqian, Deng Chao, Liu Chao, Xiao Huining

机构信息

International Innovation Center for Forest Chemicals and Materials and Jiangsu Provincial Key Lab of Sustainable Pulp and Paper Technology and Biomass Materials, Nanjing Forestry University, Nanjing 210037, China.

State Key Laboratory of Pulp and Paper Engineering, South China University of Technology, Guangzhou 510640, China.

出版信息

Biomacromolecules. 2025 Sep 8;26(9):5873-5887. doi: 10.1021/acs.biomac.5c00757. Epub 2025 Aug 1.

Abstract

To address the challenges of low thermal conductivity and leakage in phase change materials (PCMs), a composite PCM (CPCM) was developed by integrating lignosulfonate-functionalized boron nitride nanosheets (BNNS@LS) into a cellulose nanofiber (CNF)-based porous foam scaffold via directional freezing. Polyethylene glycol (PEG) was vacuum-impregnated into the scaffold to form a shape-stable CPCM. The 3D porous foam structure effectively prevented PCM leakage during phase transitions, achieving 177.2 J/g latent heat (93.56% of pristine PEG) and excellent cycling stability. The synergistic BNNS@LS-CNF network effectively enhanced the thermal conductivity of CPCM, achieving a value of 1.00 W/m·K (a 2.1-fold improvement) at a filler content as low as 1.8 wt %. Notably, the CPCM demonstrated unique photothermal conversion capability, enabling efficient solar energy storage. This work presents a rational design strategy for multifunctional PCMs with integrated thermal management, leakage resistance, and light-to-thermal energy conversion properties.

摘要

为应对相变材料(PCM)热导率低和泄漏的挑战,通过定向冷冻将木质素磺酸盐功能化的氮化硼纳米片(BNNS@LS)整合到纤维素纳米纤维(CNF)基多孔泡沫支架中,制备了一种复合相变材料(CPCM)。将聚乙二醇(PEG)真空浸渍到支架中,形成形状稳定的CPCM。三维多孔泡沫结构有效防止了相变过程中PCM的泄漏,实现了177.2 J/g的潜热(原始PEG的93.56%)和优异的循环稳定性。协同的BNNS@LS-CNF网络有效提高了CPCM的热导率,在填料含量低至1.8 wt%时达到了1.00 W/m·K的值(提高了2.1倍)。值得注意的是,CPCM表现出独特的光热转换能力,能够实现高效的太阳能存储。这项工作提出了一种合理的设计策略,用于具有集成热管理、抗泄漏和光-热能转换特性的多功能PCM。

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