Construction of hierarchical nanostructured surface on an organic hybrid selenidostannate with light trapping effect to achieve sunlight-driven environmental remediation
{"title":"Construction of hierarchical nanostructured surface on an organic hybrid selenidostannate with light trapping effect to achieve sunlight-driven environmental remediation","authors":"Ji-Ming Yu, Longfei Zhai, Bing Zheng, Haohao Li, Chunhui Hou, Yimin Han, Juan Ma, Zihui Wang, Wei-Wei Xiong","doi":"10.1016/j.jhazmat.2025.137881","DOIUrl":null,"url":null,"abstract":"Due to the low intensity of sunlight, it is a great challenge to realize highly efficient sunlight-driven photocatalysis. To maximize the utilization of sunlight, increasing the light capturing ability of photocatalysts is a prerequisite to attain high catalytic performances. Due to the multiple reflections of light in the hierarchical nanostructures, constructing hierarchical nanostructured surface should boost the sunlight capturing ability of a photocatalyst. Herein we used a surface oxidation etching method to construct a hierarchical nanostructure on the surface of an organic hybrid selenidostannate [Bmim]<sub>4</sub>[Sn<sub>9</sub>Se<sub>20</sub>], namely BTSe. After 24<!-- --> <!-- -->hours of etching by ammonium persulfate, the surface of BTSe-O24 turned into a hierarchical nanostructure. FDTD simulation proved that the hierarchical nanostructure can effectively decline the loss of incident light and enhance light capturing ability of BTSe-O24. As a result, BTSe-O24 can completely reduce Cr(VI) (100<!-- --> <!-- -->mg/L) in 8<!-- --> <!-- -->minutes with a conversion rate of 750<!-- --> <!-- -->mg/(g·h) under sunlight. The catalytic performance of BTSe-O24 under sunlight is even better than those of most reported photocatalysts under high-power xenon lamps. More importantly, BTSe-O24 can maintain high photocatalytic efficiency in the whole daytime (from 8:00 to 16:00 in autumn and winter). Our research opens a new perspective on the design of sunlight-driven photocatalysts.","PeriodicalId":361,"journal":{"name":"Journal of Hazardous Materials","volume":"38 1","pages":""},"PeriodicalIF":12.2000,"publicationDate":"2025-03-08","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Journal of Hazardous Materials","FirstCategoryId":"93","ListUrlMain":"https://doi.org/10.1016/j.jhazmat.2025.137881","RegionNum":1,"RegionCategory":"环境科学与生态学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"ENGINEERING, ENVIRONMENTAL","Score":null,"Total":0}
引用次数: 0
Abstract
Due to the low intensity of sunlight, it is a great challenge to realize highly efficient sunlight-driven photocatalysis. To maximize the utilization of sunlight, increasing the light capturing ability of photocatalysts is a prerequisite to attain high catalytic performances. Due to the multiple reflections of light in the hierarchical nanostructures, constructing hierarchical nanostructured surface should boost the sunlight capturing ability of a photocatalyst. Herein we used a surface oxidation etching method to construct a hierarchical nanostructure on the surface of an organic hybrid selenidostannate [Bmim]4[Sn9Se20], namely BTSe. After 24 hours of etching by ammonium persulfate, the surface of BTSe-O24 turned into a hierarchical nanostructure. FDTD simulation proved that the hierarchical nanostructure can effectively decline the loss of incident light and enhance light capturing ability of BTSe-O24. As a result, BTSe-O24 can completely reduce Cr(VI) (100 mg/L) in 8 minutes with a conversion rate of 750 mg/(g·h) under sunlight. The catalytic performance of BTSe-O24 under sunlight is even better than those of most reported photocatalysts under high-power xenon lamps. More importantly, BTSe-O24 can maintain high photocatalytic efficiency in the whole daytime (from 8:00 to 16:00 in autumn and winter). Our research opens a new perspective on the design of sunlight-driven photocatalysts.
期刊介绍:
The Journal of Hazardous Materials serves as a global platform for promoting cutting-edge research in the field of Environmental Science and Engineering. Our publication features a wide range of articles, including full-length research papers, review articles, and perspectives, with the aim of enhancing our understanding of the dangers and risks associated with various materials concerning public health and the environment. It is important to note that the term "environmental contaminants" refers specifically to substances that pose hazardous effects through contamination, while excluding those that do not have such impacts on the environment or human health. Moreover, we emphasize the distinction between wastes and hazardous materials in order to provide further clarity on the scope of the journal. We have a keen interest in exploring specific compounds and microbial agents that have adverse effects on the environment.