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通过掺入氧化锌/氧化铝纳米填料来改善壳聚糖/羧甲基纤维素生物聚合物共混物的功能特性,用于先进的能量存储和光电子应用。

Improving the functional properties of chitosan/carboxymethyl cellulose biopolymer blend by incorporating zinc oxide/aluminium oxide nanofillers for advanced energy storage and optoelectronic applications.

作者信息

Alhazime Ali A

机构信息

Physics Department, College of Science, Taibah University, Medina, Saudi Arabia.

出版信息

Int J Biol Macromol. 2025 Aug;320(Pt 4):146083. doi: 10.1016/j.ijbiomac.2025.146083. Epub 2025 Jul 16.

Abstract

This study investigates the synergistic effects of zinc oxide (ZnO) nanorods and aluminium oxide (Al₂O₃) nanoparticles on the functional properties of chitosan/carboxymethyl cellulose (Cs/CMC) biopolymer blends. Cs/CMC/ZnO-Al₂O₃ nanocomposite samples were prepared using the solution casting method. SEM analysis revealed the nanoscale dispersion of ZnO nanorods and Al₂O₃ nanoparticles within the Cs/CMC matrix, while XRD spectra confirmed the crystalline nature of the nanofillers and their impact on reducing the crystallinity of the polymeric nanocomposites. FTIR spectra indicated strong interactions between ZnO-Al₂O₃ nanofillers and Cs/CMC blend. The incorporation of ZnO-Al₂O₃ significantly tuned the optical absorption and reduced the indirect and direct band gaps from 2.91 and 4.16 eV (pure Cs/CMC matrix) to 1.20 and 2.41 eV (nanocomposite with the highest filler loading). Dielectric analysis showed a maximum dielectric constant for the 2.0 wt% ZnO-Al₂O₃ composite, while Nyquist plots indicated improved bulk conductivity and double-layer capacitance formation. Mechanical analysis further revealed an increase in tensile strength with the addition of nanofillers. These experimental findings demonstrated that the ZnO-Al₂O₃ combination synergistically enhanced the physicochemical properties of the Cs/CMC blend, highlighting the potential of these nanocomposites for flexible dielectric capacitors and optoelectronic applications.

摘要

本研究调查了氧化锌(ZnO)纳米棒和氧化铝(Al₂O₃)纳米颗粒对壳聚糖/羧甲基纤维素(Cs/CMC)生物聚合物共混物功能特性的协同效应。采用溶液浇铸法制备了Cs/CMC/ZnO-Al₂O₃纳米复合样品。扫描电子显微镜(SEM)分析揭示了ZnO纳米棒和Al₂O₃纳米颗粒在Cs/CMC基质中的纳米级分散,而X射线衍射(XRD)光谱证实了纳米填料的晶体性质及其对降低聚合物纳米复合材料结晶度的影响。傅里叶变换红外光谱(FTIR)表明ZnO-Al₂O₃纳米填料与Cs/CMC共混物之间存在强相互作用。ZnO-Al₂O₃的加入显著调节了光吸收,并将间接和直接带隙从2.91和4.16电子伏特(纯Cs/CMC基质)降低到1.20和2.41电子伏特(填料负载量最高的纳米复合材料)。介电分析表明,2.0重量%的ZnO-Al₂O₃复合材料具有最大介电常数,而奈奎斯特图表明体电导率提高且形成了双层电容。力学分析进一步表明,添加纳米填料后拉伸强度增加。这些实验结果表明,ZnO-Al₂O₃组合协同增强了Cs/CMC共混物的物理化学性质,突出了这些纳米复合材料在柔性介电电容器和光电子应用方面的潜力。

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