Yang Miaomiao, Cao Chihao, Tian Limeili, Huang Yangyang, Wang Jing, Meng Qingqiang, Wu Aiping, Zhang Ying
Department of Chemistry, College of Arts and Sciences, Northeast Agricultural University, Harbin, 150030, China.
School of Resources and Environment, Northeast Agricultural University, Harbin, 150030, China.
Small. 2025 Sep;21(35):e2504672. doi: 10.1002/smll.202504672. Epub 2025 Jul 14.
Developing stable and efficient photocatalysts is a promising approach for mitigating water pollution. A major challenge is the high recombination rate of photogenerated carriers, which hampers the efficiency of these photocatalysts. To address this challenge, element doping, morphology regulation, and heterostructure construction are considered effective strategies for improving the efficiency of photogenerated carrier separation. Hence, a 2D/2D S-scheme Van der Waals heterojunction (PCN/BOCI) is successfully synthesized by combining P-doped g-C₃N₄ (PCN) with BiOClI (BOCI). The optimal 6:4 PCN/BOCI composite achieves a tetracycline hydrochloride (TC) degradation rate that is 2.4 times higher than that of pure PCN and 1.6 times higher than pure BOCI under visible light irradiation. The results suggest that the 2D/2D S-scheme Van der Waals heterojunction by offering more active sites, reduces carrier transport distance, enhances carrier separation efficiency, and improves REDOX ability compared to the individual PCN and BOCI components. Furthermore, a detailed analysis is conducted on the toxicology and biotoxicity of the degradation products to ensure that they do not pose additional environmental or health risks. This work provides a theoretical and experimental basis for the design and development of high-performance S-scheme heterojunction photocatalysts.
开发稳定高效的光催化剂是减轻水污染的一种有前景的方法。一个主要挑战是光生载流子的高复合率,这阻碍了这些光催化剂的效率。为应对这一挑战,元素掺杂、形貌调控和异质结构构建被认为是提高光生载流子分离效率的有效策略。因此,通过将P掺杂的g-C₃N₄(PCN)与BiOClI(BOCI)结合,成功合成了二维/二维S型范德华异质结(PCN/BOCI)。最佳的6:4 PCN/BOCI复合材料在可见光照射下实现的盐酸四环素(TC)降解率比纯PCN高2.4倍,比纯BOCI高1.6倍。结果表明,与单独的PCN和BOCI组分相比,二维/二维S型范德华异质结通过提供更多活性位点、缩短载流子传输距离、提高载流子分离效率和增强氧化还原能力。此外,还对降解产物的毒理学和生物毒性进行了详细分析,以确保它们不会带来额外的环境或健康风险。这项工作为高性能S型异质结光催化剂的设计和开发提供了理论和实验依据。