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首页> 外文期刊>ACS Omega >Photocatalytic Activity Investigation of α-Zirconium Phosphate Nanoparticles Compositing with C3N4 under Ultraviolet Light
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Photocatalytic Activity Investigation of α-Zirconium Phosphate Nanoparticles Compositing with C3N4 under Ultraviolet Light

机译:紫外光下C3N4合成α-锆磷酸盐纳米粒子的光催化活性研究

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In order to further develop efficient ultraviolet light-driven photocatalysts for environmental application, α-zirconium phosphate (α-ZrP) and carbon nitride (C_(3)N_(4)) were synthesized, respectively. Then, C_(3)N_(4)–ZrP compositing nanomaterials were prepared by compositing α-ZrP nanocrystals and C_(3)N_(4) with different mass ratios. C_(3)N_(4)–ZrP compositing nanomaterials were characterized by X-ray diffraction, scanning electron microscopy, Fourier transform infrared spectroscopy, and X-ray photoelectron spectroscopy. The results illustrated that α-ZrP and C_(3)N_(4) were successfully composited, and the polarization of the compositing nanomaterials was reduced compared with raw materials. The photocatalytic performances of C_(3)N_(4)–ZrP compositing nanomaterials with different mass ratios were studied by photodegradation of RhB under ultraviolet irradiation. All of the degradation rates of the C_(3)N_(4)–ZrP compositing nanomaterials system were achieved more than 90% after 18 min. When the mass ratio of C_(3)N_(4)–ZrP compositing nanomaterials is 2:1, the degradation efficiency achieved 99.95%, which is more efficient than other tested mass ratios. The result indicated the possibility of utilizing C_(3)N_(4)–ZrP compositing nanomaterials for environmental pollutants degradation.
机译:为了进一步开发高效的紫外线光驱动光催化剂,分别合成α-磷酸锆(α-Zrp)和碳氮化碳(C_(3)N_(4))。然后,通过用不同质量大量复制α-Zrp纳米晶体和C_(3)N_(4)来制备C_(3)N_(4)-ZRP合成纳米材料。 C_(3)N_(4)-ZRP合成纳米材料的特征在于X射线衍射,扫描电子显微镜,傅里叶变换红外光谱和X射线光电子谱。结果表明,成功计算了α-ZRP和C_(3)N_(4),与原料相比,复合纳米材料的偏振减少。通过紫外线照射的光降解研究了C_(3)-ZRP与不同质量比的C_(3)-ZRP合成纳米材料的光催化性能。 C_(3)N_(4)-ZRP合成的纳米材料系统的所有降解速率在18分钟后达到90%以上。当C_(3)N_(4)-ZRP合成纳米材料的质量比为2:1时,降解效率达到99.95%,比其他测试质量比更有效。结果表明,用于利用C_(3)N_(4)-ZRP合成的纳米材料进行环境污染物的可能性降解。

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