壳聚糖模板法制备纳米介孔LaAlO3的表面性能、介电性能和导电性研究

Marymol Moothedan, K.B. Sherly
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引用次数: 0

摘要

采用壳聚糖模板法制备了纳米介孔氧化铝镧(LaAlO3)。壳聚糖是一种可生物降解和可再生的生物聚合物,作为模板剂的使用为合成方法增加了绿色化学的维度。x射线衍射(XRD)和傅里叶变换红外光谱(FT-IR)证实了LaAlO3的形成。用透射电镜(TEM)分析了LaAlO3的形貌。通过BET (brunauer - emmet - teller)分析确定了其比表面积、孔径和孔径分布,证实了其介孔性质。采用程序升温解吸(TPD-NH3和TPD-CO2)技术研究了纳米介孔LaAlO3的表面酸度和碱度。TPD分析显示,表面酸性基团数量较多,表面碱性基团存在适度。采用程序化温度还原(H2-TPR)分析评估表面和大块氧的还原性。结果表明,在500℃的还原条件下,LaAlO3保持稳定,并且含有有限数量的可还原表面基团。在室温下,分析了电容、耗散系数和介电常数与频率的关系。为了更好地了解导电机理,还测量了交流电导率随频率的变化。纳米介孔LaAlO3具有高电容、高介电常数、低交流电导率和低低频耗散系数等特点。这些性质表明,纳米介孔LaAlO3在多功能应用方面具有重要的前景,特别是在催化、能量存储设备(如超级电容器和固态电容器)、气体传感和电子设备中的介电元件方面。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Surface properties, dielectric, and Ac-conductivity studies of nano-mesoporous LaAlO3 synthesised by the chitosan template method
Nano-mesoporous lanthanum aluminium oxide (LaAlO3) was successfully synthesised using the chitosan template method. The use of chitosan, a biodegradable and renewable biopolymer, as a templating agent adds a green chemistry dimension to the synthesis approach. X-ray diffraction (XRD) and Fourier transform infrared (FT-IR) spectroscopy confirmed the formation of LaAlO3. The morphology of LaAlO3 was analysed using transmission electron microscopy (TEM). Surface area, pore size, and pore size distribution were determined via Brunauer-Emmett-Teller (BET) analysis, which confirmed its mesoporous nature. Surface acidity and basicity of nano-mesoporous LaAlO3 were examined using temperature-programmed desorption (TPD-NH3 and TPD-CO2) techniques. TPD analysis revealed a higher number of surface acidic groups and a moderate presence of surface basic groups. Surface and bulk oxygen reducibility was assessed using temperature-programmed reduction (H2-TPR) analysis. The results indicated that LaAlO3 remains stable under reduction up to 500 °C and contains a limited number of reducible surface groups. The frequency dependence of capacitance, dissipation factor, and dielectric constant was analysed at room temperature. To better understand the conduction mechanism, the variation of AC conductivity with frequency was also measured. Nano-mesoporous LaAlO3 exhibited a high capacitance and dielectric constant, along with low AC conductivity and a low dissipation factor in the low-frequency region. These properties suggest that nano-mesoporous LaAlO3 holds significant promise for multifunctional applications, particularly in catalysis, energy storage devices such as supercapacitors and solid-state capacitors, gas sensing, and dielectric components in electronic devices.
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