异质结
降级(电信)
光催化
材料科学
盐酸四环素
四环素
化学工程
催化作用
环境修复
反应速率常数
纳米技术
纳米尺度
四环素类抗生素
化学
比表面积
复合数
光化学
光电子学
可见光谱
盐酸盐
电场
地下水修复
作者
Shijiao Sun,Wei Chen,Qiuyang Dai,Pengfei Su,Jijun Tang,Jiaoxia Zhang,Long Lin
标识
DOI:10.1002/adsu.202501459
摘要
ABSTRACT With the progress of society and the development of medical care, the abuse of antibiotics has become an environmental problem that cannot be ignored. In this work, a significant improvement in photocatalytic efficiency for tetracycline degradation was achieved through the design of a direct Z‐scheme heterojunction In 2 S 3 /MIL‐101(Fe), realized by precisely controlling the in situ growth of In 2 S 3 nanoblocks on octahedral MIL‐101(Fe). MIL‐101(Fe) and In 2 S 3 generate a strong built‐in electric field to facilitate the efficient transfer and separation of photoexcited carriers. Furthermore, the enhanced specific surface area of In 2 S 3 /MIL‐101(Fe) offers more active sites for catalytic reactions. Simulated sunlight‐driven photocatalytic degradation experiments of tetracycline hydrochloride (TC) demonstrated a significant enhancement in the performance of the heterojunction photocatalyst. It achieved an 82.2% TC removal efficiency with a degradation rate constant of 0.0113 min −1 , representing 3.05 times and 4.52 times the performance of pure In 2 S 3 and MIL‐101(Fe) materials, respectively. This study offers valuable insights into the design of efficient and stable metal‐organic framework (MOF)‐based heterojunction photocatalysts and holds promising potential for the remediation of antibiotic pollution.
科研通智能强力驱动
Strongly Powered by AbleSci AI