Improved photocatalytic activity of ZnO-[10%]BiOI and ZnO-[10%]WO3 heterostructure in the destruction of 2-chlorobiphenyl

文献信息

发布日期 2022-12-26
DOI 10.1039/D2VA00222A
影响因子 0
作者

Darlington C. Ashiegbu, Nosipho Moloto


查看原文

摘要

A series of photocatalysts and heterojunction composites comprising ZnO, WO3, and BiOI with different loadings of WO3 and BiOI into ZnO was synthesized and applied for the destruction of 2-chlorobiphenyl (2CBP). The surface morphologies and elemental analysis of the as-synthesized composites were determined using a Carl Zeiss Sigma FE-SEM equipped with an Oxford X-act EDS; optical studies were conducted using a UV 1800 Shimadzu UV-vis spectrophotometer. The X-ray diffraction measurements were made with a Bruker D2 XRD instrument, while the BET surface area measurements, BJH pore size distribution, and isotherms were obtained using a Micrometrics TriStar 3000 instrument. The ZnO-[10%]BiOI heterostructure exhibited a superior photocatalytic activity in this study. The degradation reactions were fitted to the pseudo-first and second order kinetic models in order to exploit the kinetic process of the photodegradation reaction. The ZnO-[10%]BiOI hetero-photocatalyst showed the highest rate constants of 0.0054 min−1 and 0.0086 min−1 in both the first and second order kinetic models, respectively. When compared to undoped ZnO, the rate constant of the ZnO-[10%]BiOI heterostructure was observed to be nearly 5-fold higher, demonstrating the superior catalytic performance of the as-prepared ZnO-[10%]BiOI hetero-structured photocatalyst. All the photocatalysts and heterostructures showed increased rate constants in the second-order reaction kinetics model except for BiOI and ZnO-[5%]WO3, whose rate constants decreased from 0.0046 to 0.0041 min−1 and 0.0036 to 0.0029 min−1, respectively. The kinetic data show that it requires 128.4 min for the measured 2CBP concentration to be halved to the initial concentration when ZnO-[10%]BiOI is applied. A charge separation degradation mechanism is proposed to describe the process. The findings from this study suggest that ZnO-[10%]BiOI can potentially be used as an efficient and effective catalyst for the degradation of recalcitrant organic pollutants in water.

相关文献

Halogen bonding of electrophilic bromocarbons with pseudohalide anions

Sergiy V. Rosokha, Charlotte L. Stern, Alan Swartz, Rory Stewart

2014-05-12 Paper

DOI: 10.1039/C4CP00976B

Characterization of organic fluorophores for in vivo FRET studies based on electroporated molecules

A. Plochowietz, R. Crawford, A. N. Kapanidis

2014-05-19 Paper

DOI: 10.1039/C4CP00995A

Insights into the reversible oxygen reduction reaction in a series of phosphonium-based ionic liquids

Cristina Pozo-Gonzalo, Patrick C. Howlett, Jennifer L. Hodgson, Louis A. Madsen, Douglas R. MacFarlane, Maria Forsyth

2014-10-15 Paper

DOI: 10.1039/C4CP04101A

Why the photocatalytic activity of Mo-doped BiVO4 is enhanced: a comprehensive density functional study

Kaining Ding, Bin Chen, Zhenxing Fang, Zhongfang Chen

2014-05-20 Paper

DOI: 10.1039/C4CP01350F

Dynamic pattern formation of liquid crystals using binary self-assembled monolayers on an ITO surface under DC voltage

Takao Ishida, Makiko Oyama, Kei-ichi Terada, Masa-aki Haga

2014-10-20 Paper

DOI: 10.1039/C4CP03622K

Fracture mechanism of amorphous polymers at strain fields

Lan Huang, Xiaoping Yang, Xiaolong Jia, Dapeng Cao

2014-10-06 Paper

DOI: 10.1039/C4CP03120B

Photosynthesis: from natural to artificial

Johannes Messinger, Wolfgang Lubitz, Jian-Ren Shen

2014-05-21 Editorial

DOI: 10.1039/C4CP90053G

Structure, ligands and substrate coordination of the oxygen-evolving complex of photosystem II in the S2 state: a combined EPR and DFT study

Thomas Lohmiller, Vera Krewald, Montserrat Pérez Navarro, Marius Retegan, Leonid Rapatskiy, Marc M. Nowaczyk, Alain Boussac, Frank Neese, Wolfgang Lubitz, Dimitrios A. Pantazis, Nicholas Cox

2014-01-31 Paper

DOI: 10.1039/C3CP55017F

Electron driven reactions in sulphur containing analogues of uracil: the case of 2-thiouracil

J. Kopyra, H. Abdoul-Carime, F. Kossoski, M. T. do N. Varella

2014-10-14 Paper

DOI: 10.1039/C4CP03544E

您可能还喜欢

化合物问答

4-[4-三氟甲基苯基]恶唑(CAS号:1126636-40-5)通常如何合成?

4-[4-三氟甲基苯基]恶唑通常通过将4-三氟甲基苯酚与异硫氰酸苯酯在有机溶剂中进行酯化反应合成。该反应可在无水条件下,使用适当的催化剂,如四丁基氢氧化铵,以提...

1126636-40-54-(4-(Trifluoromethy...
化合物问答

氢溴酸西酞普兰(CAS号:59729-32-7)的主要用途是什么?

氢溴酸西酞普兰主要用于治疗抑郁症,通过调节大脑中的神经递质平衡来改善情绪。

59729-32-71-[3-(Dimethylamino)...
化合物问答

RockPhos Pd G3(CAS号:2009020-38-4)通常如何合成?

RockPhos Pd G3 通常通过钯催化偶联反应合成,使用配体 (2'-Amino-2-biphenylyl)(methanesulfonato-kappa...

2009020-38-4(2'-Amino-2-biphenyl...
化合物问答

1-哌啶甲酰胺(CAS号:2158-03-4)的市场或研究趋势如何?

1-哌啶甲酰胺作为有机合成中的重要中间体,其市场需求主要受医药、农药、染料等行业推动。近年来,随着新药开发和绿色化学的发展,该化合物的研究趋势集中在开发更高效、...

2158-03-41-Piperidinecarboxam...
化合物问答

2-(二苯基膦基)乙胺(CAS号:4848-43-5)适用哪些法规指南?

2-(二苯基膦基)乙胺适用于多种法规指南,包括但不限于《全球化学品统一分类和标签制度》(GHS),欧盟《化学品注册、评估、授权和限制》法规(REACH),以及美...

4848-43-52-(Diphenylphosphino...
化合物问答

如何储存间苯二甲酸二烯丙酯(CAS号:1087-21-4)?

间苯二甲酸二烯丙酯应储存在阴凉、干燥、通风良好的地方,远离火源和热源。储存容器应密封,避免光照和高温。储存温度应控制在25℃以下,相对湿度应低于80%。避免与其...

1087-21-4Diallyl isophthalate
化合物问答

什么是间甲苯异硫代异氰酸酯(CAS号:621-30-7)?

间甲苯异硫代异氰酸酯是一种有机化合物,分子式为C7H7NO2S,具有刺激性气味。它是一种重要的有机合成中间体,在合成其他化合物时广泛应用。

621-30-71-Isothiocyanato-3-m...
化合物问答

在合成中是否有N-Boc-D-苯丙氨醇(CAS号:106454-69-7)的替代品?

在合成中,可以考虑使用N-Cbz-D-苯丙氨醇或N-Fmoc-D-苯丙氨醇作为替代品。这些化合物同样具有保护氨基的功能,且在合成过程中表现出良好的反应性能。

106454-69-72-Methyl-2-propanyl ...
化合物问答

3-羟甲基-2-氧异丙基吡啶(CAS号:954240-50-7)的主要用途是什么?

3-羟甲基-2-氧异丙基吡啶主要用于有机合成领域,可以作为合成其他药物、农药或精细化学品的中间体。此外,它还可能在实验室研究中作为特定反应的前体或溶剂。

954240-50-7(2-Isopropoxy-3-pyri...
化合物问答

6-氨基-9-甲基嘌呤(CAS号:700-00-5)应用于哪些行业?

6-氨基-9-甲基嘌呤目前主要应用于医药行业,作为某些药物的中间体。此外,它还可能用于聚合物、传感器和半导体的某些领域,作为功能性单体或掺杂剂。

700-00-59-Methyl-9H-purin-6-...
免责声明
本页面提供的学术期刊信息仅供参考和研究使用。我们与任何期刊出版商均无关联,也不处理投稿事宜。如有投稿相关咨询,请直接联系相关期刊出版商。
如发现页面信息有误,请发送邮件至 support@chemtradehub.com 联系我们。我们将及时核实并处理您的问题。