Development of CdS/TNTA nanocomposite to improve performance of simultaneous electrocoagulation-photocatalysis process for hydrogen production and ciprofloxacin elimination

Q1 Materials Science
Reno Pratiwi , Muhammad Ibadurrohman , Eniya Listiani Dewi , Ratnawati , Rike Yudianti , Saddam Husein , Slamet
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Abstract

This study aimed to enhance the effectiveness of the simultaneous combination of electrocoagulation and photocatalysis processes by modifying the configuration of the photocatalyst. A heterojunction mechanism was developed by integrating CdS with a photocatalyst using a TiO2 nanotube array (TNTA) [1]. This mechanism is designed to enhance photocatalytic efficiency by reducing electron-hole recombination. The successful synthesis of CdS/TNTA nanocomposite was confirmed using various characterization methods, including XRD, HRTEM, FESEM, UV–Vis DRS, PL, transient photocurrent, and XPS. The results showed that CdS/TNTA worked better than TNTA in a single photocatalysis process, achieving improved Ciprofloxacin (CIP) removal (7.9 % to 13.8 %) and hydrogen gas production (0.006 to 0.156 mmol/m2plate). Simultaneously operating electrocoagulation and photocatalysis systems in the respective optimized settings resulted in significant enhancements. Hydrogen gas yield increased by 44 % (from 443 to 636 mmol/m2 plate) compared to using only TNTA, while CIP removal improved from 79 % to 83 %. This study demonstrates that the synthesis of CdS/TNTA photocatalysts may be a promising approach to achieving high performance of hydrogen recovery while simultaneously removing CIP from wastewater.

Abstract Image

开发CdS/TNTA纳米复合材料以提高电凝光催化制氢和消除环丙沙星的性能
本研究旨在通过改变光催化剂的结构来提高电凝和光催化同时结合的效果。利用TiO2纳米管阵列(TNTA)[1]将CdS与光催化剂集成,形成了一种异质结机制。该机制旨在通过减少电子-空穴复合来提高光催化效率。通过XRD、HRTEM、FESEM、UV-Vis DRS、PL、瞬态光电流、XPS等表征方法,证实了CdS/TNTA纳米复合材料的成功合成。结果表明,在单次光催化过程中,CdS/TNTA比TNTA效果更好,环丙沙星(CIP)去除率提高了7.9% ~ 13.8%,氢气产量提高了0.006 ~ 0.156 mmol/m2。同时操作电凝和光催化系统在各自的优化设置导致显著增强。与仅使用TNTA相比,氢气产率提高了44%(从443到636 mmol/m2板),而CIP去除率从79%提高到83%。本研究表明,合成CdS/TNTA光催化剂可能是一种很有前途的方法,可以实现高效的氢气回收,同时去除废水中的CIP。
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来源期刊
Materials Science for Energy Technologies
Materials Science for Energy Technologies Materials Science-Materials Science (miscellaneous)
CiteScore
16.50
自引率
0.00%
发文量
41
审稿时长
39 days
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