In-situ synthesis of sunlight-driven CuO-ZnO heterostructure photocatalyst for enhanced elimination of organic pollutants and CO2 reduction.

IF 1.9 4区 环境科学与生态学 Q4 ENGINEERING, ENVIRONMENTAL
Nada Ahmed Rasheed, Omar Faridh Fawzi, Haidar Abdulkareem Almashhadani, Ahmed Ismail, Sharafat Ali, Muhammad Zahid
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引用次数: 0

Abstract

Removing hazardous organic pollutants, such as 4-nitrophenol (4-NP) and Congo red (CR) dyes from aqueous media and CO2 from the atmospheric medium remains a significant challenge. Herein, we report a facile in-situ synthetic approach for fabricating CuO-ZnO heterostructure photocatalysts through the surfactant-assisted co-precipitation method. The catalytic results demonstrate that the Cu1O-ZnO photocatalyst exhibits excellent activity under direct sunlight irradiation, owing to the heterostructure formation between the CuO and ZnO. The Cu1O-ZnO photocatalyst showed higher reaction rate constant (k) values of 0.20 min-1 for 4-NP and 0.09 min-1 for CR compared to previous reports. Additionally, efficient CO2 reduction was also achieved over Cu1O-ZnO photocatalyst. The optical and structural characterization results indicate that the improved photocatalytic reduction and degradation observed for the Cu1O-ZnO photocatalyst can be attributed to the strong synergistic interaction between p-type CuO and n-type ZnO and the construction of the p-n heterojunction. As a result, the absorption of visible light distinctly increased and inhibited the recombination rate of the photo-created electron-hole (e-/h+). Furthermore, the Cu1O-ZnO photocatalyst exhibited remarkable durability and recyclability, retaining high photoactivity (≥ 93%) after five cycles, demonstrating its potential for real-world applications in the photocatalytic reduction and degradation reactions under direct sunlight irradiation.

原位合成阳光驱动的 CuO-ZnO 异质结构光催化剂,用于增强有机污染物的消除和二氧化碳的还原。
去除水介质中的有害有机污染物(如 4-硝基苯酚(4-NP)和刚果红(CR)染料)以及大气介质中的二氧化碳仍然是一项重大挑战。在此,我们报告了一种通过表面活性剂辅助共沉淀法制造 CuO-ZnO 异质结构光催化剂的简便原位合成方法。催化结果表明,由于 CuO 和 ZnO 之间形成了异质结构,Cu1O-ZnO 光催化剂在阳光直射下表现出优异的活性。与之前的报告相比,Cu1O-ZnO 光催化剂对 4-NP 和 CR 的反应速率常数 (k) 分别为 0.20 min-1 和 0.09 min-1。此外,Cu1O-ZnO 光催化剂还实现了高效的 CO2 还原。光学和结构表征结果表明,Cu1O-ZnO 光催化剂的光催化还原和降解性能之所以得到改善,是因为 p 型 CuO 和 n 型 ZnO 之间的强协同作用以及 p-n 异质结的构建。因此,可见光的吸收明显增加,并抑制了光生电子-空穴(e-/h+)的重组速率。此外,Cu1O-ZnO 光催化剂表现出显著的耐久性和可回收性,在五个周期后仍能保持较高的光活性(≥ 93%),证明了其在阳光直射下的光催化还原和降解反应中的实际应用潜力。
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来源期刊
CiteScore
4.10
自引率
4.80%
发文量
93
审稿时长
3.0 months
期刊介绍: 14 issues per year Abstracted/indexed in: BioSciences Information Service of Biological Abstracts (BIOSIS), CAB ABSTRACTS, CEABA, Chemical Abstracts & Chemical Safety NewsBase, Current Contents/Agriculture, Biology, and Environmental Sciences, Elsevier BIOBASE/Current Awareness in Biological Sciences, EMBASE/Excerpta Medica, Engineering Index/COMPENDEX PLUS, Environment Abstracts, Environmental Periodicals Bibliography & INIST-Pascal/CNRS, National Agriculture Library-AGRICOLA, NIOSHTIC & Pollution Abstracts, PubSCIENCE, Reference Update, Research Alert & Science Citation Index Expanded (SCIE), Water Resources Abstracts and Index Medicus/MEDLINE.
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