阳离子交换对过氧化钛纳米管光催化降解罗丹明 B 的影响

Nanomaterials Pub Date : 2024-07-09 DOI:10.3390/nano14141170
Do Hyung Han, Hyunsu Park, T. Goto, S. Cho, Yeongjun Seo, Yoshifumi Kondo, H. Nishida, Tohru Sekino
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摘要

各向异性晶体生长形成的鳞片状层状钛酸钠(NaxH2-xTi2O5)具有较大的比表面积,并且能够在层间存储和交换阳离子,因此被广泛应用于环境修复领域。此外,过氧钛酸酯纳米管(PTNTs)是带有过氧基团的管状钛酸酯,具有可见光吸收能力,因此适合在可见光照射下进行光催化应用。然而,由于阳离子交换反应,水溶液中的 Na+ 浓度和 pH 值会发生波动,从而影响 PTNTs 的光催化性能。在此,我们评估了阳离子交换反应对 PTNT 在可控 Na+ 比例下光催化降解罗丹明 B(Rh B)的影响。由于与 Na+ 和 H3O+ 发生阳离子交换反应,Rh B 溶液的 pH 值升高,导致形成齐聚物离子型 Rh B 分子,最终削弱了其吸附和光降解性能。此外,研究结果表明,抑制 Rh B 溶液 pH 值的升高可以防止 PTNT 吸附和光降解性能的减弱。本研究强调了调节层状钛酸酯材料中钠离子含量的意义,突出了其在优化这些材料的光催化效能以促进环境净化应用方面的重要性。
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Effects of Cation Exchange in Rhodamine B Photocatalytic Degradation Using Peroxo-Titanate Nanotubes
Lepidocrocite-type layered sodium titanate (NaxH2−xTi2O5) is widely used in environmental remediation because of its large specific surface area, formed by anisotropic crystal growth, and its ability to store and exchange cations between layers. Additionally, peroxo-titanate nanotubes (PTNTs), which are tubular titanates with peroxy groups, exhibit visible-light absorption capabilities, rendering them suitable for photocatalytic applications under visible light irradiation. However, because of cation exchange reactions, the Na+ concentration and pH of the solution can fluctuate under aqueous conditions, affecting the photocatalytic performance of the PTNTs. Herein, we evaluated the impact of cation exchange reactions on the photocatalytic degradation of Rhodamine B (Rh B) by PTNTs at controlled Na+ ratios. The observed pH of Rh B solutions increases due to the cation exchange reaction with Na+ and H3O+, leading to the formation of zwitter-ionic Rh B molecules, eventually weakening their adsorption and photodegradation performance. Moreover, the results indicate that inhibiting the pH increase of the Rh B solution can prevent the weakening of both the adsorption and photodegradation performance of PTNTs. This study highlights the significance of regulating the sodium ion content in layered titanate materials, emphasizing their importance in optimizing these materials’ photocatalytic efficacy for environmental purification applications.
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