Layered BiOCl/H+TiNbO5− heterojunctions for boosting visible-light-driven photocatalytic RhB degradation
文献信息
Chao Liu, Xin Gao, Caijun Zhangai, Ting Cheng, Yan Wang, Beibei Zhang, Pengyu Dong, Xiaowei Chen, Xinguo Xi, Zhigang Zou
The construction of a layered heterojunction photocatalyst could profoundly promote the charge carrier separation and thus boost the photocatalytic activity. In this work, a two-step exfoliation–reassembly process was first employed to prepare H+-restacked H+TiNbO5− nanosheets (HTN), which were then coupled with BiOCl to fabricate layered BiOCl/H+TiNbO5− (BTN) heterojunctions by a hydrothermal method. The photocatalytic performance of the as-prepared samples was evaluated by degrading rhodamine B (RhB) molecules under visible-light irradiation. Among BTN-X (X = 1, 3, 5 and 7) samples with different loading amounts of BiOCl, the BTN-3 sample showed the highest photodegradation efficiency (k = 0.0728 min−1) and excellent photostability. The improved photocatalytic activity was mainly due to the efficient charge carrier separation and transfer resulting from the layered heterostructure. The increased specific surface area and porous structure of BTN-3 could offer more active sites, which was beneficial for facilitating photocatalytic activity. The photoluminescence (PL) spectra and photo-electrochemical analysis confirmed that the formation of a layered heterojunction could shorten the charge migration distance and enlarge the contact area between BiOCl and HTN, leading to efficient separation and transfer of photoinduced charge carriers. Based on the results of active species trapping experiment and ESR spectra, the active species ˙O2− and h+ played a crucial role in degrading RhB molecules under visible light over BTN composites. A possible photocatalytic mechanism was proposed based on the experimental results. This work may provide an insight into the construction of layered heterostructured photocatalysts with high efficiency.
相关文献
Melting and freezing of water in ordered mesoporous silica materials
Andreas Schreiber, Ingke Ketelsen, Gerhard H. Findenegg
DOI: 10.1039/B010086M
Characterisation of cation exchange membrane in hydro-organic media by electrochemistry and Raman spectroscopy
Christophe Innocent, Patrice Huguet, Jean Luc Bribes, Gérald Pourcelly, Mostefa Kameche
DOI: 10.1039/B008318F
Nanosecond time resolved emission spectroscopy of aminocoumarins in AOT reversed micelles
DOI: 10.1039/A906191F
Atomistic simulation and molecular dynamics of model systems for perfluorinated ionomer membranes
DOI: 10.1039/A905267D
Structure and redox properties of bulk and supported manganese oxide catalysts
Teresa Torre, Carmelo Raimondo, Adolfo Parmaliana
DOI: 10.1039/B100091H
Structural investigations of celsian glass derived from Ba-LTA zeolite
Jovana Djordjevic, Vera Dondur, Radovan Dimitrijevic, Aleksandar Kremenovic
DOI: 10.1039/B009384J
Photophysics on surfaces: Absorption and luminescence properties of Pheophorbide-a on cellulose
M. Gabriela Lagorio, Enrique San Román, André Zeug, Jörg Zimmermann, Beate Röder
DOI: 10.1039/B100077M
Redox behaviour of SnO2 nanoparticles encapsulated in the pores of zeolites towards reductive gas atmospheres studied by in situ diffuse reflectance UV/Vis and Mössbauer spectroscopy
Meike Warnken, Karoly Lázár, Michael Wark
DOI: 10.1039/B009045J
Complexation behaviour of p-tert-butylcalix[4]arene and p-tert-butylcalix[6]arene towards acetone
Francesca Benevelli, Waclaw Kolodziejski, Krzysztof Wozniak, Jacek Klinowski
DOI: 10.1039/B100894N
您可能还喜欢
2-Bromo-4-chloro-1-(difluoromethyl)benzene(CAS号:1261476-50-9)的市场或研究趋势如何?
随着环保要求的提高和安全意识的增强,该化合物的研究和应用趋势正逐渐转向更安全、更环境友好的替代品。市场关注点主要集中在开发新型合成方法和绿色化学路径,以减少有害...
如何处理含有2,9 - 二苯基-1,10 - 菲罗啉(CAS号:25677-69-4)的废料?
处理含有2,9 - 二苯基 - 1,10 - 菲罗啉的废料时,应先将其收集在适当的容器中,避免与其他化学品混合。随后,可以通过水解或氧化等方法进行处理,直至达到...
处理(6-氯-吡嗪-3-基)-(4-乙基-哌嗪-1-基)-甲酮(CAS号:1178836-15-1)时应注意哪些实验室安全事项?
处理(6-氯-吡嗪-3-基)-(4-乙基-哌嗪-1-基)-甲酮时,应穿戴适当的个人防护装备(PPE),包括手套、护目镜和实验室外套。在通风橱中操作以确保良好的通...
处理(R)-2-氯-1-(2,4-二氯苯基)乙醇(CAS号:114446-57-0)时应注意哪些实验室安全事项?
在处理(R)-2-氯-1-(2,4-二氯苯基)乙醇时,应佩戴防护眼镜、实验室外套和手套,确保通风橱开启以减少接触和吸入的风险。避免直接接触皮肤和眼睛。处理过程中...
在合成中是否有3-氯-6-(3-氯哌啶-1-基)吡嗪(CAS号:1185310-37-5)的替代品?
可考虑使用类似结构的化合物作为替代品,如3-氯-6-(哌啶-1-基)吡嗪或3-氯-6-(2-氯哌啶-1-基)吡嗪,这些化合物在结构上与目标化合物相似,可能具有相...
苯并三氮唑-5-甲酸乙酯(CAS号:73605-91-1)通常如何合成?
该化合物可以通过乙酸乙酯与5-溴-1H-苯并三氮唑的反应合成,通常在无水条件下进行。合成过程中,需要使用适当的溶剂如乙酸乙酯,并在适当的温度下反应。该反应具有较...
什么是一水硫酸镁(CAS号:14168-73-1)?
一水硫酸镁是一种无机化合物,化学式为MgSO₄·H₂O,CAS号为14168-73-1。它由镁离子、硫酸根离子和一个结晶水分子组成,通常呈现为白色粉末或颗粒状固...
氘代-1,3-二氯-2-丙醇(CAS号:1173020-20-6)应用于哪些行业?
氘代-1,3-二氯-2-丙醇主要应用于医药和有机合成领域,作为研究化合物的氘代替代品,用于标记和追踪反应过程。此外,在聚合物和半导体生产中也有一定的应用潜力。
如何储存氰乙酸环己酯(CAS号:52688-11-6)?
氰乙酸环己酯应储存在阴凉、干燥、通风良好的环境中,远离火源和热源,防止阳光直射。储存容器应密封良好,避免与空气接触,防止发生不必要的反应。
2-碘-4-硝基苯胺(CAS号:6293-83-0)的市场或研究趋势如何?
目前,2-碘-4-硝基苯胺在医药和农药领域有一定的研究和应用,尤其是在开发新型药物和农药产品方面。然而,由于其潜在的环境和健康风险,行业正趋向于寻找更为安全和环...













![5,7-Dihydroxy-3-(4-hydroxyphenyl)-6-[(1R,6R)-3-methyl-6-prop-1-en-2-ylcyclohex-2-en-1-yl]chromen-4-one structure 5,7-Dihydroxy-3-(4-hydroxyphenyl)-6-[(1R,6R)-3-methyl-6-prop-1-en-2-ylcyclohex-2-en-1-yl]chromen-4-one structure](https://cnstatic.chemtradehub.com/structs/191/1914963-20-4-2b05.webp)
amine structure [(2-chlorophenyl)methyl](ethyl)amine structure](https://cnstatic.chemtradehub.com/structs/629/62924-61-2-0728.webp)
