杂质和表面积对 BN 纳米片的热稳定性和抗氧化性的影响

Nanomaterials Pub Date : 2024-03-28 DOI:10.3390/nano14070601
Nikolaos Kostoglou, S. Stock, Angelos Solomi, D. Holzapfel, S. Hinder, M. Baker, Georgios Constantinides, Vladislav Ryzhkov, J. Maletaskic, B. Matovic, Jochen M. Schneider, Claus Rebholz, Christian Mitterer
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摘要

本研究探讨了纯度和表面积对六方氮化硼(h-BN)纳米片的热性能和氧化性能的影响,这些因素是高温氧化环境中的关键因素。比较了三种基于 h-BN 纳米板的材料,包括一种商用 BN 参考材料,这些材料是以不同的纯度水平和表面积(~3、~56 和 ~140 m2/g)合成的。通过各种表征技术对所有材料进行了系统分析,包括气体比重测定法、扫描电子显微镜、X 射线衍射、傅立叶变换红外辐射、X 射线光电子能谱、气体吸附分析以及热重力分析和差示扫描量热法。结果表明,随着纯度的提高,合成材料的热稳定性和抗氧化性提高了约 13.5%(或 120 °C)。此外,高纯度和低表面积(约 4 m2/g)的参考材料表现出更优越的性能,这归因于较低的可用表面积和较少的可能缺陷使氧气扩散的反应位点最小化,突出了样品纯度和可用表面积在 h-BN 热氧化稳定性中的关键作用。这些发现强调了在开发基于 BN 的纳米材料时注重纯度和表面积控制的重要性,为提高它们在极端热和氧化条件下的性能提供了一条途径。
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The Roles of Impurities and Surface Area on Thermal Stability and Oxidation Resistance of BN Nanoplatelets
This study considers the influence of purity and surface area on the thermal and oxidation properties of hexagonal boron nitride (h-BN) nanoplatelets, which represent crucial factors in high-temperature oxidizing environments. Three h-BN nanoplatelet-based materials, synthesized with different purity levels and surface areas (~3, ~56, and ~140 m2/g), were compared, including a commercial BN reference. All materials were systematically analyzed by various characterization techniques, including gas pycnometry, scanning electron microscopy, X-ray diffraction, Fourier-transform infrared radiation, X-ray photoelectron spectroscopy, gas sorption analysis, and thermal gravimetric analysis coupled with differential scanning calorimetry. Results indicated that the thermal stability and oxidation resistance of the synthesized materials were improved by up to ~13.5% (or by 120 °C) with an increase in purity. Furthermore, the reference material with its high purity and low surface area (~4 m2/g) showed superior performance, which was attributed to the minimized reactive sites for oxygen diffusion due to lower surface area availability and fewer possible defects, highlighting the critical roles of both sample purity and accessible surface area in h-BN thermo-oxidative stability. These findings highlight the importance of focusing on purity and surface area control in developing BN-based nanomaterials, offering a path to enhance their performance in extreme thermal and oxidative conditions.
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