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1.
用溶胶-凝胶法制备了不同掺杂量的N/TiO2复合纳米粉末, 采用X射线衍射(XRD)、扫描透镜(TEM)、紫外-可见反射吸收光谱(UV-vis)对催化剂进行了初步表征. 通过X射线光电子能谱(XPS)、元素分析仪(EA)测定其含氮量. XPS分析结果显示TiO2晶格中的氧被氮原子取代, N/TiO2表面存在Ti3+离子; 紫外-可见反射吸收光谱测得不同掺杂量的N/TiO2的禁带宽度(Eg), 推测在TiO2价带上方生成了由N诱导产生的中间带, 当氮、钛摩尔比为0.0880时N/TiO2的Eg最小, 为2.50 eV. 在可见光下, 以酸性桃红(SRB)和无色小分子对氯苯酚(4-CP)作为可见光活性实验的探针反应, 确定了最佳掺杂比为nN/nTi=0.0880. 结果表明, 最佳掺杂量下N/TiO2能显著降解SRB和4-CP, 通过测定ESR, IR, TOC, COD, 重点比较了TiO2在掺杂N前后在降解SRB和4-CP时的差异, 包括氧化物种、矿化率、最终产物等, 证明在可见光下, N/TiO2的降解机理为电子从独立的N 2p轨道激发到Ti 3d轨道, 产生羟基自由基等氧化物种, 达到降解有机物的目的.  相似文献   

2.
为了满足低温制备可见光光催化材料的需要,采用溶胶-凝胶法制备TiO2纳米晶溶胶,再与聚乙烯基吡咯烷酮(PVP)直接反应制备N掺杂TiO2可见光光催化剂。通过XPS分析,说明N取代了部分晶格中的O,UV-Vis漫反射吸收光谱显示,光催化剂具有明显的可见光响应,这是由于N原子的2p轨道位于O原子的2p轨道之上,从而使得价带和导带间的能量带隙变窄,引起吸收带红移,产生明显的可见光吸收。依靠亚甲基兰(MB)的可见光降解实验证明,N掺杂光催化剂具有良好的可见光光催化活性,16 h MB降解率接近25%。  相似文献   

3.
邓少君  郑欧  刘金彦  赵剑曦 《化学学报》2007,65(13):1212-1216
以FT-IR方法研究了水/C12-EOx-C12•2Br/正己醇/正庚烷形成的W/O微乳中水的状态. 结果表明, 其中的水存在4种状态, 分别为阳离子头基结合水、反离子结合水、类似本体的水以及束缚在微乳栅栏层中的水. 由解卷积技术分解FT-IR谱图, 进而获得每个表面活性剂分子对应于这4种状态水分子的数目nN+, nBr-, nbnf. 随着水含量(W0)增加, nb急剧增大, nN+少许上升, 而nfnBr-维持不变, 这说明微乳水核逐渐长大, 且在所考察W0范围内, 表面活性剂头基解离度保持不变.  相似文献   

4.
以锐钛矿相TiO2溶胶为基底,采用沉淀法和液相沉积法制备了TiO2/Cu2O/Pt复合空心微球,通过改变nTi4+nCu2+和H2PtCl6·6 H2O溶液的加入量对TiO2的形貌和结构进行调控,采用不同的方法对不同样品的物相及结构、微观形貌和光学性能进行了对比分析。分析结果表明,复合材料中Pt与Cu2O的引入产生协同效应,不仅在一定程度上阻止了电子-空穴的复合,还降低了禁带宽度,在可见光区域光吸收明显增强。与TiO2、Cu2O和TiO2/Cu2O光催化剂相比较,TiO2/Cu2O/Pt降解有机污染物的能力显著增强,首次光照120 min可降解93%的甲基橙(MO)溶液,4次循环后降解率为71%,具有良好的光催化稳定性能。  相似文献   

5.
通过碱性水热-离子交换法制备了Cu、N共掺杂TiO2纳米管(Cu/N-TNT),对其光催化重整甘油制备合成气性能进行了研究。结果表明,Cu/N-TNT具有富含氧空位(OV)的管状结构,N以Ti-N形式取代部分O形成杂质能级,Cu以Cu2+形式掺杂在催化剂晶格间隙和表面,Cu、N共掺杂促进TiO2表面电荷有效分离,有利于其光催化重整甘油制备合成气活性和选择性的提高。紫外光照射8 h时,掺Cu量为0.15%的Cu/N-TNT催化剂上CO和H2产量分别为7.3和8.5 mmol·g-1,是原始TiO2的9.1和70.8倍,nH2/nCO从0.52提高为1.18,nCO/nCO2从0.21提高至0.42。Cu/N-TNT表面N和OV为醛类脱羰和甲酸脱水生成CO提供反应活性位点,Cu作为浅势阱提高光生电子-空穴分离效率。光生空穴(h+)是光催化重整甘油制备合成气过程中的主要活性物种,大量羟基自由基(·OH)和超氧自由基(·O2-)会导致甘油过度氧化,使CO选择性降低。  相似文献   

6.
TiO2光催化剂可见光化研究进展   总被引:35,自引:0,他引:35  
TiO2在光催化和光电转换方面应用前景十分广阔,而阻碍其应用的是它的大禁带宽度(Eg=3.2eV),不能有效地利用太阳能,因此研究开发可见光响应的TiO2就成为当前光催化剂研究的关键课题.目前TiO2可见光化的研究取得了一定进展,金属离子掺杂、非金属离子掺杂、离子注入以及染料光敏化等方法都不同程度地实现了TiO2可见光化.本文综述了目前的研究现状,并对今后的研究提出了展望.  相似文献   

7.
N掺杂对TiO2形态结构及光催化活性的影响   总被引:5,自引:0,他引:5  
以TiCl4为钛源,采用酸催化水解法合成TiO2前驱体,在NH3/N2气氛下经不同温度处理制得浅黄色的N掺杂TiO2(TON)光催化剂。以苯酚为模型物,考察了催化剂在紫外光区、可见光区及太阳下催化活性;采用DRS、XPS、XRD、FTIR、SEM及低温氮物理吸附对光催化剂的晶相结构、光谱特征和表面结构等进行表征。系统研究了N掺杂对TiO2形态结构及光催化活性的影响。结果表明,掺杂N以阴离子形式进入TiO2体相中置换晶格中的O,适宜温度下制得适量N掺杂的TON在紫外光区、可见光区及太阳光下均表现出较高的活性。N掺杂在TiO2表面生成Ti-O-N键,形成新的能级结构,使催化剂的吸收红移至450~550 nm,诱发TiO2可见光催化活性。同时高温下煅烧,N掺杂可抑制TiO2晶粒生长,减缓TiO2粒子间团聚,提高锐钛矿相向金红石相转变温度,减缓相转化速度。  相似文献   

8.
Ag掺杂型空心TiO2纳米微球的制备与表征及其光催化性能   总被引:1,自引:0,他引:1  
通过甲基丙烯酸与苯乙烯的乳液聚合制备了表面载有阴离子的聚苯乙烯(PSt)纳米乳胶粒. 在乙醇与水的混合溶剂中, 用硅烷偶联剂乙烯基三甲氧基硅烷对其进行表面改性. 以此乳胶粒为模板, 加入钛酸四丁酯和硝酸银制备了Ag2O掺杂型聚苯乙烯/二氧化钛(PSt/TiO2)复合微球. 对该微球在180 °C进行液相预处理、干燥、500 °C煅烧等步骤制备了Ag 掺杂型Ag-TiO2复合粒子. 通过扫描电镜(SEM)、透射电镜(TEM)和X射线衍射(XRD)等手段对PSt/TiO2复合粒子及Ag-TiO2空心粒子的形貌及晶体结构等进行了表征. 考察了Ag-TiO2复合粒子在紫外光(365 nm)与紫外-可见光(370-760 nm)下对罗丹明B (RhB)降解的催化活性. 结果表明, 与不含银的TiO2空心微球相比, 在紫外光照射下, 银含量(nAg/nTi)为0.1%的Ag-TiO2复合粒子对RhB的降解率提高了11%左右; 在紫外-可见光照射下, nAg/nTi为1.0%和2.0% 的Ag-TiO2复合粒子对RhB的降解率提高了30%左右.  相似文献   

9.
在阳极氧化电解液中添加NaBF4制得了具可见光活性的B掺杂TiO2纳米管阵列(B/TNTs)。采用扫描电镜(FE-SEM)、能谱仪(EDS)、X射线衍射(XRD)、傅立叶红外光谱(FTIR)、紫外-可见漫反射光谱(UV-Vis DRS)以及X射线光电子能谱(XPS)对样品进行表征,以亚甲基蓝(MB)的光催化降解为目标反应评价其光催化活性。结果表明:添加NaBF4后,TiO2纳米管表面形貌变化较大;B掺入到TiO2晶格中形成B-O-Ti键;B掺杂使得TiO2纳米管表面羟基量增加、光学带隙能减小、光吸收阀值红移,且B掺杂量越多,其相应值的变化量越大;B掺杂能促进TiO2锐钛矿相的发育,纳米管经550℃煅烧后仍保持未掺杂样品的锐钛矿相结构;NaBF4的最佳添加量为0.6%(w/w)时,所得样品光催化活性最佳,可见光下光催化降解MB的4 h降解率由未添加的39.90%提高至75.15%,且反复使用10次后其光催化性能基本保持不变;总有机碳(TOC)分析结果表明,MB在可见光下能被B/TiO2有效矿化。  相似文献   

10.
B离子掺杂TiO2催化剂(TiO2-xBx)光催化活性的研究   总被引:3,自引:0,他引:3  
采用溶胶-凝胶法制备出纳米TiO2和TiO2-xBx催化剂. 光催化实验证明, TiO2-xBx催化剂的紫外、可见光催化活性均高于TiO2. XRD, XPS和Raman结果表明, B离子是以取代式掺杂占据了TiO2的O2-的晶格位置. UV-Vis和PL谱的结果表明, B离子的2p轨道与O的2p轨道形成混合价带, 产生可见光响应, B离子的掺入有效地阻止了光生载流子的复合, 促进了其分离, 是TiO2-xBx催化剂紫外、可见光催化活性提高的主要原因.  相似文献   

11.
Nitrogen-doped TiO2 powders were successfully prepared by a wet method, i.e., a micro-emulsion-hydrothermal method, in different acid environments. Several characterization techniques, X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS) and UV-visible diffuse reflectance spectra, were combined to determine the crystal phase, concentration and chemical states of the nitrogen doped in TiO2. The high photocatalytic activity of the nitrogen-doped TiO2 was evaluated through the decomposition of rhodanmine B under visible light irradiation. It was suggested that the doped nitrogen formed oxynitride (NO) and produced impurity states at higher above the valence band of TiO2. Therefore, the nitrogen doping could enhance the response of photocatalyst to the visible light and improve the photocatalytic activity because of the narrowing of band gap of TiO2.  相似文献   

12.
Nitrogen and cerium codoped TiO2 photocatalysts were prepared by a modified sol-gel process with doping precursors of cerium nitrate and urea, and characterized by X-ray diffraction (XRD), thermogravimetry-differential scanning calorimetry (TG-DSC), X-ray photoelectron spectra (XPS) and ultraviolet-visible light diffuse reflectance spectra (UV-vis DRS). Results indicate that anatase TiO2 is the dominant crystalline type in as-prepared samples, and CeO2 crystallites appear as the doping ratio of Ce/Ti reaches to 3.0 at%. The TiO2 starts to transform from amorphous phase to anatase at 987.1 K during calcination, according to the TG-DSC curves. The XPS show that three major metal ions of Ce3+, Ce4+, Ti4+ and one minor metal ion of Ti3+ coexist on the surface. The codoped TiO2 exhibits significant absorption within the range of 400-500 nm compared to the non-doped and only nitrogen-doped TiO2. The enhanced photocatalytic activity of the codoped TiO2 is demonstrated through degradation of methyl orange under visible light irradiation.  相似文献   

13.
Nanosized cerium and nitrogen co-doped TiO2 (Ce–TiO2?xNx) was synthesized by sol gel method and characterized by powder X-ray diffraction (PXRD), X-ray photoelectron spectroscopy (XPS), FESEM, Fourier transform infrared, N2 adsorption and desorption methods, photoluminescence and ultraviolet–visible (UV–vis) DRS techniques. PXRD analysis shows the dopant decreases the crystallite sizes and slows the crystallization of the titania matrix. XPS confirm the existence of cerium ion in +3 or +4 state, and nitrogen in ?3 state in Ce–TiO2?xNx. The modified surface of TiO2 provides highly active sites for the dyes at the periphery of the Ce–O–Ti interface and also inhibits Ce particles from sintering. UV–visible DRS studies show that the metal–metal charge transfer (MMCT) of Ti/Ce assembly (Ti4+/Ce3+ → Ti3+/Ce4+) is responsible for the visible light photocatalytic activity. Photoluminescence was used to determine the effect of cerium ion on the electron–hole pair separation between the two interfaces Ce–TiO2?xNx and Ce2O3. This separation increases with the increase of cerium and nitrogen ion concentrations of doped samples. The degradation kinetics of methylene blue and methyl violet dyes in the presence of sol gel TiO2, Ce–TiO2?xNx and commercial Degussa P25 was determined. The higher visible light activity of Ce–TiO2?xNx was due to the participation of MMCT and interfacial charge transfer mechanism.  相似文献   

14.
During chemical vapor synthesis of TiO2 nanopowders, nitrogen atoms were doped into the crystal lattice of TiO2. The nitrogen atoms were predominantly incorporated substitutionally in the crystal lattice of TiO2 nanopowders up to the doping level of 1.25 mol% nitrogen, whereas they were in both interstitial and substitutional sites over about 1.43 mol% nitrogen. From the photocatalytic activity of nitrogen-doped TiO2 estimated by decomposition of methylene blue under visible light, it was found that the substitutional nitrogen anions appearing at the low level doping was beneficial to its photocatalytic activity, whereas the interstitial ones appearing at the high level doping over 1.25 mol% nitrogen were not. The improved photocatalytic activity due to the substitutionally doped nitrogen was attributed to band gap narrowing which was confirmed by the studies of XPS, near edge X-ray absorption fine structure, and UV–Vis absorption.  相似文献   

15.
Titanium dioxide (TiO2) is recognized as the most efficient photocatalytic material, but due to its large band gap energy it can only be excited by UV irradiation. Doping TiO2 with nitrogen is a promising modification method for the utilization of visible light in photocatalysis. In this work, nitrogen-doped TiO2 films were grown by atomic layer deposition (ALD) using TiCl4, NH3 and water as precursors. All growth experiments were done at 500 °C. The films were characterized by XRD, XPS, SEM and UV–vis spectrometry. The influence of nitrogen doping on the photocatalytic activity of the films in the UV and visible light was evaluated by the degradation of a thin layer of stearic acid and by linear sweep voltammetry. Light-induced superhydrophilicity of the films was also studied. It was found that the films could be excited by visible light, but they also suffered from increased recombination.  相似文献   

16.
This study investigated the positive effect of surface modification with ozone on the photocatalytic performance of anatase TiO2 with dominated (001) facets for toluene degradation. The performance of photocatalyst was tested on a home-made volatile organic compounds degradation system. The ozone modi cation, toluene adsorption and degradation mechanism were established by a combination of various characterization methods, in situ diffuse reflectance infrared fourier transform spectroscopy, and density functional theory calculation. The surface modi cation with ozone can significantly enhance the photocatalytic degradation performance for toluene. The abundant unsaturated coordinated 5c-Ti sites on (001) facets act as the adsorption sites for ozone. The formed Ti-O bonds reacted with H2O to generate a large amount of isolated Ti5c-OH which act as the adsorption sites for toluene, and thus significantly increase the adsorption capacity for toluene. The outstanding photocatalytic performance of ozone-modified TiO2 is due to its high adsorption ability for toluene and the abundant surface hydroxyl groups, which produce very reactive OH radicals under irradiation. Furthermore, the O2 generated via ozone dissociation could combine with the photogenerated electrons to form superoxide radicals which are also conductive to the toluene degradation.  相似文献   

17.
Nitrogen-doped titania was coupled with the commercial titania nanoparticles by mechanical milling in liquid medium. The as-prepared nanocomposites (TiO2/TiO2−x N y ) were characterized by X-ray diffraction (XRD), Brunauer–Emmett–Teller (BET) specific surface area, UV–Vis spectroscopy, chemiluminescence, and acetaldehyde decomposition activity techniques. When a small amount of nitrogen-doped titania was added into the commercial titania, higher intensity and longer lifetime of 1O2 was observed, and the photocatalytic activity was efficiently improved. The TiO2−x N y acts as the acceptor of photoinduced holes. The recombination of the electron-hole was effectively depressed by the heterogeneous electron transfer. This could be an effective way to obtain highly active photocatalysts.  相似文献   

18.
B,N-TiO2 photocatalysts were synthesized by boron doping firstly and subsequently nitrogen doping in NH3 at variable temperatures. The effects of the nitrogen doping temperature on the structure and photocatalytic activity of the B,N-codoped TiO2 were investigated. The as-prepared samples were characterized by X-ray diffraction (XRD), scanning electron microscopy (SEM), UV-vis diffuse reflectance spectrum (DRS), electron paramagnetic resonance (EPR) and X-ray photoelectron spectroscopy (XPS). The photocatalytic activity was evaluated with photocatalytic degradation of methyl orange dye (MO) under visible light and UV-visible light irradiation. The results suggested that the boron and nitrogen can be incorporated into the TiO2 lattice either interstitially or substitutionally or both, while the Ti-O-B-N structure plays a vital role in photocatalytic activity in visible light region. The optimal nitrogen doping temperature is 550 °C. Higher temperature may form many oxygen vacancies and Ti3+ species, resulting in the decrease of photocatalytic activity in visible light.  相似文献   

19.
采用溶剂热法制备了三维花状CeO2/TiO2异质结光催化剂,然后以甲基橙(MO)为模拟有机污染物,在氙灯照射下考察了其光催化活性。结果表明,花状结构由纳米片和纳米颗粒复合而成,纳米片上均匀地附着CeO2颗粒。Ce/Ti的物质的量之比(nCe/nTi)和溶剂热时间影响异质结的光催化性能,当nCe/nTi=0.1、溶剂热时间为6 h时,CeO2/TiO2的光催化活性达到最佳,氙灯照射50 min的降解率达95%,光催化活性优于纯TiO2,这主要是CeO2和TiO2形成了异质结,有利于光生电子和空穴的分离。  相似文献   

20.
The enhancement of TiO2 photocatalyst activity will lead to more practical applications of this technology. In this work we studied the effect of rare earth doping of sol–gel synthesized TiO2 for phenol degradation and we compared the performance with commercial catalyst. Photocatalysts were characterized by nitrogen adsorption to determine textural properties, ultraviolet visible light diffuse reflectance spectrometry (UV-Vis DRS), X-ray diffraction, STEM-EDS (scanning transmission electronic microscopy-energy dispersive X-ray spectroscopy) and XPS (X-ray photoelectron spectroscopy). Main phase for materials calcined at 500 °C was anatase. Residual nitrogen from NH4OH used in the sol–gel synthesis was identified by XPS analysis. Ti3+/Ti4+ ratio increased when TiO2 was doped with 0.5 wt% of Ce. Anatase phase was stabilized in photocatalysts doped with La even after calcination at 800 °C, for Pr and Nd a mixture of anatase-rutile phases was obtained, whereas for Ce doping only rutile phase was found. For the photocatalytic oxidation of phenol, the best results were obtained for Ce doped TiO2, which could be related to the ability of CeIV/CeIII oxidation/reduction cycle.  相似文献   

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