掺杂 Ca2+ 的 DyTa3O9:一种新型稀土钽酸盐高发射率材料

Jiaqi Li, Jianyu Li, Bin Xu, Zhiyi Ren, Shixiao Yan, Di Zhang, Meng Wang, Xiaoliang Sun, Chi Liu, Jing Feng
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摘要

本研究旨在探讨 Ca[式:见正文]掺杂对 DyTa3O9 陶瓷红外发射特性的影响。DyTa3O9 因其热导率低、高温稳定性好而被认为是一种很有前途的高温热防护材料。然而,目前还没有关于此类材料红外辐射性能的研究。我们采用固相反应法合成了不同 Ca[式:见正文]掺杂浓度的 DyTa3O9 陶瓷,并系统研究了掺杂浓度对 DyTa3O9 陶瓷红外辐射率的影响。在 DyTa3O9 晶格中掺入 Ca[式:见正文]后,原来的 Dy 元素被 Ca 取代,导致晶格常数增加,晶格畸变增强。Ca[式:见正文]的掺杂引入了杂质能级,使得一些低能电子跃迁成为可能,从而实现了红外线吸收和发射能力的增强。当 Ca[式:见正文]掺杂浓度达到 7.5% mol 时,3-5[式:见正文][式:见正文]m 和 8-12[式:见正文][式:见正文]m 范围内的平均红外发射率分别为 0.85 和 0.92,与 DyTa3O9 相比分别提高了 19.7% 和 21%。这种新型高红外发射率陶瓷在高温节能和航空航天热保护领域具有巨大的应用潜力。
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Ca2+-doped DyTa3O9: A novel rare-earth tantalate high emissivity material
This work aims to investigate the influence of Ca[Formula: see text] doping on the infrared emission properties of DyTa3O9 ceramics. DyTa3O9 is considered a promising high-temperature thermal protection material due to its low thermal conductivity and good high-temperature stability. However, there is currently no research on the infrared radiation performance of such materials. We synthesized DyTa3O9 ceramics with different Ca[Formula: see text] doping concentrations using the solid-phase reaction method and systematically investigated the effect of doping concentration on the infrared emissivity of DyTa3O9 ceramics. When Ca[Formula: see text] is doped into the DyTa3O9 lattice, the original Dy elements are replaced by Ca, resulting in an increase in lattice constants and enhanced lattice distortion. The doping of Ca[Formula: see text] introduces impurity energy levels, making it possible for some low-energy electron transitions, achieving an enhancement in infrared absorption and emission capabilities. When the Ca[Formula: see text] doping concentration reaches 7.5% mol, the average infrared emissivity in the 3–5[Formula: see text][Formula: see text]m and 8–12[Formula: see text][Formula: see text]m ranges are 0.85 and 0.92, respectively, representing a 19.7% and 21% increase compared to DyTa3O9. This novel high-infrared-emissivity ceramic holds great potential for applications in high-temperature energy conservation and aerospace thermal protection.
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