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1.
《广州化学》2015,(4):29-33
以氧化铋为原料,采用水解法合成了溴氧化铋光催化剂,采用X射线衍射仪对溴氧化铋晶体进行表征,研究了溴氧化铋晶体降解罗丹明B溶液的光催化性能。实验结果表明,在反应温度为40℃、反应时间为90 min合成的Bi OBr光催化性能最好,具有较强的光催化活性,其催化活性优于Bi OCl催化剂,其催化降解罗丹明B反应表现为假一级动力学。  相似文献   

2.
采用双滴共沉淀法合成出不同投料摩尔比的碳酸根型水滑石, 并用X射线粉末衍射仪(XRD)和傅里叶变换红外光谱仪(FTIR)等对其进行表征, 研究了其结构和性质. 通过考察水滑石层板中金属阳离子比例和种类的变化对光催化的影响, 发现掺入合适比例的Cu阳离子可使水滑石(LDH)的光催化活性有所提高. 同时用n(Cu):n(Mg):n(Al)=2:1:1的LDH对50 mL初始浓度为10 μmol/L的罗丹明B(RhB)溶液进行光催化实验, 发现在13 ℃(通循环水)、 pH=7.84的条件下, 150 mg LDHs对罗丹明B的降解率达到85.2%, 并且光催化降解量所占比重在50%以上. 此外, 探讨了光催化过程的动力学和光催化降解机理, 发现光催化降解过程符合准二级动力学方程.  相似文献   

3.
在室温下,采用水解法,以五水合硝酸铋和氯化钾为主要原料,通过改变乙二醇的量以制备出具有不同结构的BiOCl-5,BiOCl-15,BiOCl-25光催化纳米材料。考察了不同BiOCl材料光催化降解甲基橙过程中的BiOCl投加量、pH值、温度、照射光源等因素对降解效率的影响,结果表明:在35℃,pH4.4条件下,加入1.7 g·L-1 BiOCl-25的甲基橙溶液在紫外光照射下降解320 min,其催化降解效率最高,可达94.3%。  相似文献   

4.
回流条件下将两亲型杯芳烃,即丙基间苯二酚杯[4]芳烃(PRCA)、己基间苯二酚杯[4]芳烃(HRCA)和壬基间苯二酚杯[4]芳烃(NRCA),应用于诱导制备ZnO微纳结构,采用X射线衍射、扫描电镜、紫外可见漫反射光谱、红外光谱、X射线光电子能谱等分析了所制备ZnO样品的组成、形貌与微观结构,并以罗丹明B为模型污染物考察了所制备杯芳烃保护的ZnO样品的光催化性能。表征结果显示当杯芳环下缘所连直链烷基中含较多碳原子个数时(HRCA和NRCA),可调控ZnO粒子的尺寸和形貌;而无保护剂和下缘连接较短直链烷基的间苯二酚杯[4]芳烃(PRCA)调控ZnO形貌的能力较弱。模拟太阳光照射下,HRCA-ZnO和NRCA-ZnO的光催化效率相近且均高于无保护剂制备的ZnO和PRCA-ZnO。  相似文献   

5.
采用双滴共沉淀法,结合水滑石层板阳离子和层间阴离子调变,制备十种锌铝水滑石,运用X射线衍射(XRD)、红外光谱(FT-IR)和差热分析(DTA)技术对合成样品的结构进行表征,考察了催化剂种类和用量、光照时间等变量对水滑石光催化降解罗丹明B的影响。研究结果表明,合成产物均具有典型水滑石特征衍射峰,调变阳离子种类合成的六种水滑石中,Zn-Al-Ni-CO3-LDHs的催化效果最好;不同阴离子插层水滑石中,以ZnAl-CO3-LDHs的光催化效果最佳;最佳反应条件为:催化剂用量0.1 g,光照时间65 min,两种水滑石材料光催化降解率可达82%以上。  相似文献   

6.
Two-dimensional photocatalytic materials have potential applications in the fields of environmental purification and energy conversion owing to their rich surface active sites, unique geometric structures, adjustable electronic structures, and good photocatalytic activities. At present, the main two-dimensional photocatalytic materials include metal oxides, metal composite oxides, metal hydroxides, metal sulfides, bismuth-based materials, and non-metallic photocatalytic materials. The absorption of photons in bulk materials or nanoparticles is often limited by the transmittance and reflection at the grain boundary, while the two-dimensional structure can provide a large specific surface area and abundant surface low-coordination atoms to obtain more UV visible light. In addition, the smaller atomic thickness of two-dimensional photocatalytic materials can shorten the carrier migration distance. Thus, in two-dimensional photocatalytic materials, the carriers generated in the interior migrate to the surface faster than that in the bulk materials, which can reduce the recombination of photogenerated carriers and facilitate the photocatalytic reaction. For the surface redox reaction, the two-dimensional structure can provide more abundant surface-active sites to accelerate the reaction process. Additionally, when the thickness is reduced to the atomic scale, the escape energy of atoms is relatively small, thereby increasing the surface defects, which is helpful for the adsorption and activation of target molecules. Thus, the synthesis methods and performance enhancement strategies of two-dimensional photocatalytic materials have been developed rapidly. The former strategies mainly focus on the adjustment of morphology and geometric structure characteristics, which cannot fully meet the design requirements of efficient and stable photocatalysts. The photocatalytic performance and stability can be improved by surface design to construct abundant active sites and adjust the electronic structure. Research on the reaction mechanism of photocatalysis can help us understand the demand for photocatalytic structure characteristics in different reactions, thereby guiding the design of photocatalysts. In this paper, the advances in surface design and electronic structure regulation strategies of two-dimensional photocatalytic materials are reviewed from three aspects: light absorption; charge separation; and active sites, including element doping, heterojunction design, defect construction, single atom modification, and plasmonic metal loading. The effects on the reaction mechanism for typical air pollutant purification by regulating the electronic structure of two-dimensional photocatalytic materials are summarized. Finally, the problems and challenges associated with the development of two-dimensional photocatalytic materials are analyzed and discussed.   相似文献   

7.
以BiCl3为原料,采用醇解.涂覆法在相对较低的温度下制备了具有花球状微观形貌的BiOCl薄膜.采用X射线衍射谱(XRD)、扫描电子显微镜(SEM)、电子能量散射谱(EDS)和紫外-可见漫反射光谱(DRS)对所制薄膜进行了晶相、形貌、元素组成和光学性质表征,并以甲基橙为目标降解物,研究了薄膜的光催化性能.分析结果表明:BiOCl薄膜具有四方晶相结构,薄膜呈花球状微观形貌,对紫外光有良好的吸收.降解实验结果表明:未经过高温焙烧的BiOCl薄膜具有较佳光催化活性,经紫外光照射150min后对甲基橙的降解率达97%,且具有较高的光催化稳定性,重复使用4次后对甲基橙的降解率仍保持94%以上.此外,文中还对BiOCl薄膜的形成机理做了推测.  相似文献   

8.
以明胶为反应介质,采用凝胶网格控制合成法制备了单分散球形纳米ZnO光催化剂.利用TG-DTA、XRD、TEM、BET、UV-Vis、HPLC等测试手段对制备过程、样品的结构和性能进行了研究,探讨了明胶浓度、煅烧温度对产物粒径和光催化活性的影响.结果表明:利用凝胶网格控制合成法不仅能够控制纳米微粒的形状和大小,而且可防止沉淀物相互聚集和团聚.以染料罗丹明B溶液为目标降解物,1 h的降解率为99.9%,最佳光催化剂的合成条件:13%明胶浓度、350℃煅烧2 h.  相似文献   

9.
王松  李阳  李飞  程晓红 《应用化学》2017,34(2):220-224
采用微波水热法在乙二醇的辅助下,制备出一系列不同形貌的氧化锌(Zn O)纳米/微米颗粒。扫描电子显微镜测试结果表明,乙二醇的加入量对样品的形貌有着非常显著的影响,通过控制乙二醇的加入量,可以得到不规则片状、六方棱柱孪晶、梭子形和球形等形貌的Zn O纳米/微米颗粒。从微波反应器检测压力结果可以看出,乙二醇的加入量对反应体系的压力影响非常显著,这起到了调控纳米晶生长速度的效果进而得到不同形貌的样品。在此基础上,系统测试了样品在氙灯照射下光催化降解罗丹明B的能力,结果表明,乙二醇加入量大于12 m L时的球状样品光催化效率要远高于其他样品,在50 min内能完成对罗丹明B的降解。  相似文献   

10.
将高稳定性的MOF-808与BiOCl结合,采用简便的水热法制备出新型MOF-808/BiOCl复合异质结材料。以环丙沙星(CIP)为污染物,探究复合材料MOF-808/BiOCl对CIP的光催化性能。发现含有10% MOF-808的复合材料(MOF-808/BiOCl-10%)表现出最佳的光催化活性。在紫外光照射20 min内,MOF-808/BiOCl-10%对CIP的光催化降解效率高达94.7%。通过X射线粉末衍射、扫描电镜、红外光谱、荧光光谱、紫外可见漫反射光谱、光电流、电化学阻抗等表征技术来考察材料的物相组成、形貌以及光电化学性质。紫外可见漫反射光谱的结果表明,MOF-808/BiOCl-10%材料光吸收范围得到提高。同时进行了自由基捕获实验。基于以上实验数据,提出了MOF-808/BiOCl复合材料可能的光催化机理。  相似文献   

11.
Photocatalytic technology can effectively solve the problem of increasingly serious water pollution, the core of which is the design and synthesis of highly efficient photocatalytic materials. Semiconductor photocatalysts are currently the most widely used photocatalysts. Among these is graphitic carbon nitride (g-C3N4), which has great potential in environment management and the development of new energy owing to its low cost, easy availability, unique band structure, and good thermal stability. However, the photocatalytic activity of g-C3N4 remains low because of problems such as wide bandgap, weakly absorb visible light, and the high recombination rate of photogenerated carriers. Among various modification strategies, doping modification is an effective and simple method used to improve the photocatalytic performance of materials. In this work, Cu/g-C3N4 photocatalysts were successfully prepared by incorporating Cu2+ into g-C3N4 to further optimize photocatalytic performance. At the same time, the structure, morphology, and optical and photoelectric properties of Cu/g-C3N4 photocatalysts were analyzed by X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), scanning electron microscopy, UV-Vis diffuse reflectance spectroscopy (DRS), and photoelectric tests. XRD and XPS were used to ensure that the prepared photocatalysts were Cu/g-C3N4 and the valence state of Cu was in the form of Cu2+. Under visible light irradiation, the photocatalytic activity of Cu/g-C3N4 and pure g-C3N4 photocatalysts were investigated in terms of the degradation of RhB and CIP by comparing the amount of introduced copper ions. The experimental results showed that the degradation ability of Cu/g-C3N4 photocatalysts was stronger than that of pure g-C3N4. The N2 adsorption-desorption isotherms of g-C3N4 and Cu/g-C3N4 demonstrated that the introduction of copper had little effect on the microstructure of g-C3N4. The small difference in specific surface area indicates that the enhanced photocatalytic activity may be attributed to the effective separation of photogenerated carriers. Therefore, the enhanced photocatalytic degradation of RhB and CIP over Cu/g-C3N4 may be due to the reduction of carrier recombination rate by copper. The photoelectric test showed that the incorporation of Cu2+ into g-C3N4 could reduce the electron-hole recombination rate of g-C3N4 and accelerate the separation of electron-hole pairs, thus enhancing the photocatalytic activity of Cu/g-C3N4. Free radical trapping experiments and electron spin resonance indicated that the synergistic effect of superoxide radicals (O2•−), hydroxyl radicals (•OH) and holes could increase the photocatalytic activity of Cu/g-C3N4 materials.  相似文献   

12.
以水热制备的ZnO纳米棒为基底,通过乙二醇液相还原法负载不同贵金属颗粒(Pt、Pd、Ru)构筑贵金属负载的ZnO纳米棒复合光催化剂。实验结果表明在制备条件相同时,Pt/ZnO样品中Pt颗粒尺寸较小,分布均匀;Pd/ZnO样品中Pd颗粒尺寸较大且团聚严重;Ru/ZnO样品则几乎没有Ru颗粒负载。在紫外光照射下降解亚甲基蓝的反应中,Pt/ZnO表现出最高的光催化性能,Pd/ZnO样品次之,而Ru/ZnO则表现出与ZnO纳米棒相似的光催化活性;表明小尺寸和大小均匀的贵金属颗粒对ZnO纳米棒的催化性能有着显著的提升作用。对Pt/ZnO来说,当Pt载量为3.2%时Pt/ZnO催化剂的光催化活性最高。  相似文献   

13.
磷酸铋纳米棒的可控合成及其光催化性能   总被引:4,自引:0,他引:4  
采用水热法合成了形貌可控的磷酸铋纳米棒光催化剂,并以亚甲基蓝(MB)为探针研究了其光催化活性.利用粉末X射线衍射(XRD),透射电镜(TEM)和紫外-可见漫反射光谱(UV-VisDRS)对产物进行了表征.研究发现甘油含量、水热时间、水热温度及前驱体浓度会影响磷酸铋纳米棒的形貌及结构.甘油含量和前驱体浓度主要影响产物形貌.随着甘油含量的增加,产物的长径比先增大后减小.前驱体浓度越低,所得BiPO4纳米棒的尺寸越小,长径比越大.水热时间短时,产物结晶度差,且为六方相,时间延长后转化为单斜相.水热温度过低或过高均不利于完美晶体的形成,160°C时产物的结晶度最高.实验结果表明:BiPO4纳米棒在紫外光下具有良好的光催化性能,其光催化活性受长径比和尺寸大小影响的总体趋势是长径比越大,尺寸越小,其光催化活性越强.结晶度对BiPO4的光催化性能影响较大,结晶度越高,其光催化活性越好.单斜相BiPO4的光催化活性较六方相的强.  相似文献   

14.
回流法可控合成BiPO4纳米棒及其光催化性能   总被引:1,自引:0,他引:1  
采用回流法合成了BiPO4纳米棒光催化剂, 探讨了反应时间、反应物比例、pH值和反应物浓度对BiPO4晶相结构和形貌尺寸的影响, 利用粉末X射线衍射(XRD)、透射电镜(TEM)、比表面积分析(BET)和紫外-可见漫反射光谱(UV-Vis DRS)等对产物进行了表征, 以亚甲基蓝(MB)为探针研究了其光催化活性. 反应时间和反应物浓度对产物的形貌尺寸影响较大, 反应物比例和pH值对产物晶相结构和形貌尺寸均有较大的影响, 进一步影响BiPO4光催化剂的活性. 调控各种因素后可合成出具有单斜相独居石/六方相混晶结构的高紫外光活性BiPO4纳米棒光催化剂.  相似文献   

15.
苏泽源  赵雨  朱燕艳 《分子催化》2024,38(2):154-159
新型半导体光催化剂钨酸铋是目前研究广泛的光催化剂,但因其电子空穴对易复合的问题,限制了光催化产氢性能。为解决这一问题,采用锂-乙二胺溶液在钨酸铋表面构筑可控氧空位缺陷和金属缺陷。通过材料表征对比了钨酸铋经锂-乙二胺处理前后的变化,并对两者进行了产氢速率测试。钨酸铋在经过锂-乙二胺处理过后产生了氧空位缺陷和降价的金属中心,材料颜色从原先的黄白色转变为黄棕色,增强了光吸收能力。颗粒的主体结构以及物质成分并未发生变化,仍保持花球状颗粒结构,但处理后钨酸铋颗粒表面原先的光滑的片状结构变得粗糙,且方形纳米薄片锋利边缘变光滑,提高了光催化反应面积。这些变化使锂-乙二胺处理后的钨酸铋光催化产氢性能相比未处理之前得到了一定的提升。  相似文献   

16.
SO_4~(2_)表面修饰对TiO_2结构及其光催化性能的影响   总被引:13,自引:0,他引:13  
采用溶胶-凝胶法制备了 TiO2和 /TiO2催化剂 .运用 XRD、 BET比表面测定、 IR和 DRS光谱等技术对催化剂进行了表征 ,并以光催化氧化分解溴代甲烷作为模型反应,考察了上述催化剂的光催化反应性能及其反应条件对光催化活性的影响 .结果表明 ,表面修饰使得催化剂的结构和光催化性能显著改善 ,催化剂表面形成具有超强酸性质的 L酸和 B酸协同中心 .与 TiO2相比 ,/TiO2光催化剂的锐钛矿含量高、晶粒小、 BET比表面积大、孔径分布集中、光谱吸收边蓝移 ,具有优异的光催化氧化活性、稳定性及抗湿性能 .  相似文献   

17.
SO2-4 表面修饰对TiO2结构及其光催化性能的影响   总被引:45,自引:0,他引:45  
采用溶胶 凝胶法制备了TiO2和/TiO2催化剂.运用XRD、BET比表面测定、IR和DRS光谱等技术对催化剂进行了表征,并以光催化氧化分解溴代甲烷作为模型反应,考察了上述催化剂的光催化反应性能及其反应条件对光催化活性的影响.结果表明,表面修饰使得催化剂的结构和光催化性能显著改善,催化剂表面形成具有超强酸性质的L酸和B酸协同中心.与TiO2相比,/TiO2光催化剂的锐钛矿含量高、晶粒小、BET比表面积大、孔径分布集中、光谱吸收边蓝移,具有优异的光催化氧化活性、稳定性及抗湿性能.  相似文献   

18.
BiOCl/NaBiO_3复合材料的原位合成及光催化性能   总被引:1,自引:0,他引:1  
利用HCl与Na Bi O3反应原位制备了结构可控的Bi OCl/Na Bi O3复合光催化材料.通过X射线粉末衍射(XRD)、紫外-可见漫反射光谱(UV-Vis-DRS)和扫描电子显微镜(SEM)等技术对其晶相组成、光吸收特性和表面形貌进行了表征,并评价了样品在可见光和紫外光下的光催化性能.结果表明,尽管Bi OCl几乎没有可见光活性,但27.4%Bi OCl/Na Bi O3在可见光下却表现出明显高于纯Bi OCl和Na Bi O3的光催化活性.由于紫外光照可以有效激发Bi OCl,所有组成的复合Bi OCl/Na Bi O3都显示出高于纯Bi OCl和Na Bi O3的光催化活性,其中47.6%Bi OCl/Na Bi O3具有最大光催化活性.研究了加入不同活性物种的捕获剂对光催化效率的影响,结合荧光实验结果和样品能带结构推测了复合材料光催化过程中光生载流子的传输行为.结果表明,Bi OCl/Na Bi O3催化活性增强主要归结于2种材料之间形成了有效的异质结构,其内建电场能够促进光生载流子的传输和分离;羟基自由基在光催化降解过程中是主要的活性物种.  相似文献   

19.
BiOCl as a two‐dimensional layer ternary oxide semiconductor, has been widely used in energy and environmental area due to its non‐toxicity, price and the good photocatalytic performance. However, BiOCl has a wide bandgap and can only absorb ultraviolet light, which limits its solar energy conversion efficiency for practical application. Herein, we report a facile synthesis of FeOOH/BiOCl nanocomposites by hydrothermal method. The results of XPS and FT‐IR indicated that FeOOH has been loaded on the nanocomposites. The chemical and optical properties of the nanocomposite are well‐characterized. The nanocomposite showed much more excellent photocatalytic performance compared with the individual FeOOH and BiOCl single component. Reactive specie trapping experiment indicated that · O2– and h+ were the two main active species during the photocatalytic process of FeOOH/BiOCl nanocomposites.  相似文献   

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