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1.
构建氧空位以及附着金属单质Bi(Bi0)是增强半导体材料光吸收性能、促进半导体光生载流子分离的有效方法。通过简单的共沉淀法及氢气热还原成功制备了PO43-掺杂Bi2O2CO3附着Bi0(Bi-P-BOC)的可见光催化剂,并对其在可见光下催化降解氧氟沙星(OFX)的性能及机理进行了研究。材料表征结果表明BOC随着PO43-的均匀掺杂,可见光吸收能力增强,表面缺陷增多,比表面积增大。而随着氢气热还原,BOC表面形成 Bi0的同时也原位构建了大量的氧空位。可见光催化性能测试表明,Bi-P-BOC可以在180 min内降解约85%的OFX,降解速率为0.013 0 min-1,是BOC降解速率的8倍。Bi-P-BOC光催化降解机理表明其具有更好的可见光吸收能力,Bi0以及氧空位的存在促进了光生载流子的分离,h+是其光催化降解过程中的主要的活性氧物种(ROS),此外,1O2和·O2-也对降解有一定贡献。  相似文献   

2.
陈洁  柴飞  尹涛  张汉焱  符史流 《无机化学学报》2007,23(10):1801-1804
A Eu3+-doped Ca2PbO4 with one-dimensional structure was prepared with a solid-state reaction method and its characteristics were investigated. The XRD results show that the substitution of Ca2+ by Eu3+ has no influence on the structure of Ca2PbO4. Under the excitation of ultraviolet light, the Ca2PbO4:Eu3+ phosphor exhibits strong red emission at about 618 nm which is assigned to the 5D0- 7F2 electric-dipole transition. The compounds Sr2CeO4 and Ca2SnO4 have the same crystal symmetry as that of Ca2PbO4 and it is found that the emission intensity of Ca2PbO4∶Eu3+ is higher than that of Sr2CeO4∶Eu3+ and lower than that of Ca2SnO4∶Eu3+. The excitation spectrum of Ca2PbO4∶Eu3+ appears to be a broad band with two peaks at about 289 nm and 340 nm. The former peak is attributed to the Eu3+-O2- charge transfer transition, while the latter one may be related to the absorption of Ca2PbO4 host or its crystal defects.  相似文献   

3.
F-和Fe3+掺杂对Ti基PbO2阳极性能的影响   总被引:2,自引:0,他引:2  
采用热分解-电镀法制备了Ti基PbO2,阳极(Ti/PbO2),F-掺杂PbO2阳极(Ti/F-PbO2),Fe3+掺杂PbO2阳极(TiP/Fe-PbO2)和F-,Fe3+共掺杂PbO2,阳极(Ti/F-Fe-PbO2).采用XRD和EDX测试对电极进行了表征,应用加速电解寿命测试和电催化降解4-氯苯酚(4-CP)污水,考察了F-掺杂,Fe3+掺杂和F-,Fe3+共掺杂对PbO2阳极稳定性及电催化活性的影响.结果表明,Ti/F-PbO2和Ti/FePbO2阳极有相近的电催化降解活性,但与Fe3+掺杂相比,F-掺杂大大提高了PbO2阳极的加速电解寿命.对Ti/F-Fe-PbO2阳极,Fe3+掺杂改善了其导电性能.同时F-掺杂提高了阳极的稳定性能,使其有较长的电解寿命.与Ti/PbO2,Ti/F-PbO2和Ti/Fe-PbO2阳极相比,Ti/F-Fe-PbO2阳极的电催化降解活性显著提高,这不仅与其导电性能的改善有关,更与F-掺杂和Fe3+掺杂对4-CP降解的表面协同作用有关.  相似文献   

4.
采用5-((4-吡啶基)甲氧基)-异烟酸(H2PLIA)、1,3,5-三(1-咪唑基)-苯(TIB)合成了金属有机骨架[Cd(PLIA)(TIB)]n (MOF-1),MOF-1是具有理想一维孔道的二维结构化合物,其一维孔道由柔性三角形PLIA2-配体和刚性三角形TIB配体间隔形成。利用MOF-1 易掺杂的优势,采用后修饰合成策略制备了Tb@MOF-1。对MOF-1 和Tb@MOF-1 进行了基本表征及荧光探针性能研究。2种探针材料具有相同的结构。MOF-1和Tb@MOF-1分别对水溶液中的Cr2O72-和S2O82-离子具有较强荧光识别能力,均有响应时间快,稳定性、选择性、灵敏度高的特点。研究了MOF-1和Tb@MOF-1对Cr2O72-和S2O82-的荧光识别机理,其不同可能与Tb3+离子掺杂有关。  相似文献   

5.
采用溶胶-凝胶法和水热法(HTM)合成了Fe3O4@SiO2@TiO2-Co/rGO复合纳米粒子(磁性光催化剂),通过X射线衍射、扫描电子显微镜及其能量分散光谱和UV-vis漫反射光谱对产物进行了表征分析.研究了Co掺杂量、溶液pH值、亚甲基蓝(MB)溶液初始浓度以及干扰离子(例如Cl-、SO42-、CO32-)等因素对MB降解的影响,并对磁性光催化剂的可重复使用性进行了分析.正常实验条件下(pH=7,[MB]=10 mg/L,磁性光催化剂用量=0.1 g/50 mL),150 min内MB最大去除率达到98.24%.干扰离子影响MB降解次序为CO32- < Cl- < SO42-,磁性光催化剂重复使用7次MB光降解率仅下降7.07%,新型磁性光催化剂具有良好的MB降解性能和较高的重复使用性能.  相似文献   

6.
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   

7.
采用简单沉积-沉淀法合成了Bi2WO6@Bi2MoO6-xF2x(BWO/BMO6-xF2x)异质结,借助XRD、XPS、TEM、SEM、EDS、UV-Vis-DRS、PC和EIS等测试技术对其组成、形貌、光吸收特性和光电化学性能等进行系统表征,并以模型污染物罗丹明B(RhB)的光催化降解作为探针反应来评价Bi2WO6@Bi2MoO6-xF2x异质结的光催化活性增强机制。形貌分析表明,所得Bi2MoO6微球由大量厚度为20~50 nm的纳米片组成;FE-SEM和HR-TEM分析表明,尺寸约为10 nm的Bi2WO6量子点均匀沉积在Bi2MoO6-xF2x微球表面,形成新颖的Bi2WO6@Bi2MoO6-xF2x异质结;与纯Bi2MoO6或者Bi2WO6相比,1∶1Bi2WO6@Bi2MoO6-xF2x异质结表现出更好的光催化活性和光电流性质,其对RhB光催化降解的表观速率常数分别为纯BMO和BWO的6.4和11.6倍。PC和EIS图谱分析表明,Bi2WO6量子点表面沉积显著提高Bi2MoO6-xF2x光生电子/空穴的分离效率和迁移速率;活性物种捕获实验证明了·O2-和h+是主要的活性物种。根据实验结果,探讨了F-掺杂和Bi2WO6量子点之间的协同效应对Bi2MoO6的光催化活性的影响机制。  相似文献   

8.
在氧离子导体La2Mo1.7W0.3O9的基础上,采用固相法合成了La位掺杂的Ca系列新型氧化物La2-xCaxMo1.7W0.3O9-δ(0≤x≤0.2)。通过XRD、Raman和XPS等手段对化合物结构进行表征,交流阻抗谱测试其电性能。结果表明:掺杂离子Ca2+的半径小于基质离子La3+的半径导致晶格收缩;Ca的掺杂在La2Mo1.7W0.3O9自身内置氧空位的基础上增加了额外的氧空位,提高了氧离子导体的电导率,550 ℃电导率由0.79 × 10-4 S·cm-1 (x=0.0)增加到1.5 × 10-4 S·cm-1 (x=0.16,0.2),电导率增加89.9%。  相似文献   

9.
掺氮TiO2可见光降解有机污染物的比较研究   总被引:1,自引:0,他引:1  
方艳芬  黄应平  刘立明  罗光富 《化学学报》2007,65(23):2693-2700
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/TiO2Eg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   

10.
用溶胶凝胶法合成了Y2-xSiO5∶Eux纳米发光材料,使用XRD、FTIR和TEM对其结构进行了表征。讨论了相结构、煅烧温度和Eu3+掺杂浓度对材料发光性能的影响及规律。结果显示煅烧温度在900 ℃以下,材料主要呈非晶相结构,900 ℃以上材料主要呈晶态结构;颗粒随煅烧温度升高而增大,在非晶态时颗粒大小在15~45 nm,在晶态时颗粒大小为60~80 nm。激发光谱和荧光发射光谱受材料晶相结构以及Eu3+掺杂浓度的影响,在晶态结构中Y2-xSiO5∶Eux纳米材料呈现更精细的激发和发射光谱。在激发光谱中,电荷转移态吸收(CST)随煅烧温度升高呈现兰移现象,晶态时CST同非晶态相比明显红移;在发射光谱中,非晶态时 5D07F2跃迁呈现强的发光峰,随材料制备温度升高而增强,在晶态时该发光峰强度减弱,在长波波段呈现两个新的发光尖峰,并随煅烧温度升高而增强; 5D07F1发射峰从非晶态转变为晶态后,光谱裂分为三重尖峰;而 5D07F0跃迁发光光谱受结构和颗粒大小影响较小。同时在60~80 nm的Y2-xSiO5∶Eux晶体中,发现材料 5D07F25D07F1跃迁发光强度,均受Eu3+掺杂浓度的影响,当掺杂浓度x=0.4时,材料发光强度最大。  相似文献   

11.
在钛板上制备了氧化铈掺杂的含氟二氧化铅电极(Ti/CeO2-F-PbO2,电沉积法).SEM和XRD分析显示CeO2颗粒能均匀地嵌入二氧化铅镀层中.电化学测试表明,掺杂CeO2提高了二氧化铅的析氧电位(Ti/CeO2-F-PbO2为1.83V,vs.SCE,Ti/F-PbO2为1.78V,vs.SCE).对氯苯酚降解结果表明,Ti/CeO2-F-PbO2电极有较高的COD去除率和电流效率.  相似文献   

12.
PbO2阳极在硫酸溶液中的析氧失活行为   总被引:1,自引:0,他引:1  
采用热分解鄄电镀法制备了以Sb 掺杂SnO2(Sb-SnO2)为底层的Ti 基PbO2阳极(Ti/PbO2). 采用加速电解寿命测试、电化学阻抗谱、XRD、SEM-EDX 等技术, 研究了Ti/PbO2阳极在硫酸溶液中的电解失效行为和机制.结果表明,在新制备的PbO2镀层中, 由于氧空位的存在, PbO2镀层的内应力表现为拉应力, 随着电解的进行, 阳极表面生成的活性氧原子在向基底扩散的过程中, 将Pb3+态氧化为Pb4+态, 逐渐占据镀层内作为自由电子施主的氧空位, 这不仅导致镀层的导电性能下降, 同时使镀层的应力逐渐由拉应力转变为压应力, 镀层性质逐渐劣化. 这一过程基本结束时,活性氧原子才大量扩散至Ti基底导致基底的钝化, 在Ti 基底和镀层界面出现显著的界面应力, 在界面应力和镀层内压应力的共同作用下, 阳极出现鼓泡、脱落, 迅速进入失活阶段.  相似文献   

13.
A series of metal oxide catalysts for catalytic oxidative degradation of 2-chlorophenol (2-CP) and 4-chlorophenol (4-CP) were prepared, and the supported CuO catalysts were studied particularly. The supported CuO catalysts were characterized by XRD and NH3-TPD techniques, in which CuO/γ-Al2O3 exhibited high degradation activity. The addition of Na2O or K2O into CuO/γ-Al2O3 improved the oxidative degradation of CPs remarkably, in which Na2O was more efficient than K2O. Over CuO/γ-Al2O3-Na2O, CPs were completely converted and the liberation of the inorganic chloride from 2-CP or 4-CP reached 97% or 100% respectively at 30 ?C for 2 h. The supported CuO catalysts with good dispersion of CuO particles and less acid sites were favorable for the efficient oxidative degradation of CPs. In addition, the initial pH of the reaction solution was found to be an important factor which influenced the catalytic oxidative degradation of CPs and the initial pH of 11.2 and 9.8 was preferred for the oxidative degradation of 2-CP and 4-CP respectively over CuO/γ-Al2O3 catalyst.  相似文献   

14.
The degradation of 4-chlorophenol (4-CP) by using gamma rays generated by a 60Co source in the presence of O3 was investigated. The radiolysis of 4-CP and the kinetics of 4-CP mineralization were analyzed based on the determination of total organic carbon (TOC). The influence of initial 4-CP concentration and the free radicals scavengers (such as NaHCO3 and t-butanol) on the 4-CP degradation was also studied. The results showed that when the radiation rate was 336 Gy·min−1, 4-chlorophenol at concentration of 10 mg·L−1 could be completely degraded at the radiation dose of 2 kGy. The degradation of 4-chlorophenol could be described by a first-order reaction model, the rate constant of 4-CP degradation by combined ozonation and radiation was 0.1016 min−1, which was 2.4 times higher than the sum of radiation (0.0294 min−1) and ozonation (0.0137 min−1). It revealed that the combination of radiation and ozonation resulted in synergistic effect, which can remarkably increase the degradation efficiency of 4-CP.  相似文献   

15.
The gas–liquid gliding arc discharge plasma is used directly to study degradation and dechlorination of 4-Chlorophenol (4-CP) in solution. The typical AC waveforms of discharge voltage and current revealed that the discharge behavior was not definitely periodic. The chemical oxygen demand (COD) abatement of 4-CP solution with stainless steel electrode is higher than that with aluminum or brass electrode; When air was used as carrier gas the COD abated from 1,679.2 to 190 mg/L (i.e., 88.68% abatement) after 76 min plasma treatment; Increasing gas–liquid mixing rate could also increase the degradation of 4-CP; adding appropriate amounts of Fe2+ or iron chips to the solution were found to be favorable for 4-CP degradation. The main intermediates of 4-CP degradation are p-benzoquinone, hydroquinone, 4-chlorocatechol, p-chloronitrobenzene, and ring cleavage products (acetic acid, glycol, propanone, and others). Furthermore, possible pathways of 4-CP degradation in solution are proposed.  相似文献   

16.
In the present study, formation of hydrogen peroxide (H2O2) and degradation of 4-chlorophenol (4-CP) induced by DC diaphragm glow discharge (DGD) in a sodium sulfate solution were investigated. The discharge was generated in a small hole on a quarts plate interposed between two submersed graphite electrodes. Experimental results showed that 750 V was the optimum voltage for H2O2 formation and 4-CP degradation. Both the H2O2 formation and the 4-CP degradation proceeded faster in cathodic compartment than in anodic compartment. Lowering the solution pH was favorable for 4-CP degradation but showed no appreciable effect on H2O2 formation. Addition of hydroxyl radical scavenger (methanol) to the solution decreased the H2O2 formation and the 4-CP degradation. Iron species especially ferric ions enhanced the 4-CP degradation markedly. Based on the analyzes of Current–Voltage characteristics and chemical effects, it was deduced that the mechanism of DGD was similar to that of contact glow discharge electrolysis.  相似文献   

17.
The visible-light-induced degradation reaction of 4-chlorophenol (4-CP) was investigated in aqueous suspension of pure TiO2. Contrary to common expectations, 4-CP could be degraded under visible illumination (lambda > 420 nm), generating chlorides and CO2 concomitantly. The observed visible reactivity was not due to the presence of trace UV light since the visible-light-induced reactions exhibited behaviors distinguished from those of UV-induced reactions. Dichloroacetate could not be degraded under visible light, whereas it degraded with a much faster rate than 4-CP under UV irradiation. The addition of tert-butyl alcohol, a common OH radical scavenger, did not affect the visible reactivity of 4-CP, which indicates that OH radicals are not involved. Other phenolic compounds such as phenol and 2,4-dichlorophenol were similarly degraded under visible light. The surface complexation between phenolic compounds and TiO2 appears to be responsible for the visible light reactivity. Diffuse reflectance UV-vis spectra showed that 4-CP adsorbed on TiO2 powder induced visible light absorption. The visible light reactivity among several TiO2 samples was apparently correlated with the surface area of TiO2. The visible-light-induced photocurrents on a TiO2 electrode could be obtained only in the presence of 4-CP. It is proposed that a direct electron transfer from surface-complexed phenol to the conduction band of TiO2 upon absorbing visible light (through ligand-to-metal charge transfer) initiates the oxidative degradation of phenolic compounds. When the surface complex formation was hindered by surface fluorination, surface platinization, and high pH, the visible-light-induced degradation of 4-CP was inhibited. The evidence of visible-light-induced reactions and the experimental conditions affecting the visible reactivity were discussed in detail.  相似文献   

18.
研究了在氟硼酸或其掺杂镀液中于Pt基底电沉积PbO2镀层的电化学和结构性质.循环伏安测试、XRD分析和SEM形貌观察表明,BF4-可提高二氧化铅电沉积速率;电沉积的PbO2晶型为β-PbO2;F-、Fe3+共掺杂影响晶体生长的择优取向及镀层形貌,电沉积的FB/F-Fe-PbO2镀层整齐致密;电沉积过程增大电流密度可改变生长晶面取向.  相似文献   

19.
Nitrogen and sulfur co-doped TiO(2) nanosheets with exposed {001} facets (N-S-TiO(2)) were prepared by a simple mixing-calcination method using the hydrothermally prepared TiO(2) nanosheets powder as a precursor and thiourea as a dopant. The resulting samples were characterized by transmission electron microscope, X-ray diffraction, N(2) adsorption-desorption isotherms, X-ray photoelectron spectroscopy, and UV-Vis absorption spectroscopy. The electronic properties of N,S co-doped TiO(2) were studied using the first-principle density functional theory (DFT). The photocatalytic activity of N-S-TiO(2) was evaluated by degradation of 4-chlorophenol (4-CP) aqueous solution under visible light irradiation. The production of hydroxyl radicals (˙OH) on the surface of visible-light-irradiated samples was detected by photoluminescence technique using terephthalic acid as a probe molecule. The results show that nitrogen and sulfur atoms were successfully incorporated into the lattice of TiO(2), which resulted in N-S-TiO(2) samples exhibiting stronger absorption in the UV-visible range with a red shift in the band gap transition. The first-principle DFT calculations further confirm that N and S co-dopants can induce the formation of new energy levels in the band gap, which is associated with the response of N-S-TiO(2) nanosheets to visible light irradiation. Surprisingly, pure TiO(2) nanosheets show the visible-light photocatalytic activity for the degradation of 4-CP mainly due to the substrate-surface complexation of TiO(2) and 4-CP, which results in extending absorption of titania to visible light region through ligand-to-titanium charge transfer. The N-S-TiO(2) samples studied exhibited an enhanced visible-light photocatalytic activity than pure TiO(2). Especially, the doped TiO(2) sample at the nominal weight ratio of thiourea to TiO(2) powder of 2 showed the highest photocatalytic activity, which was about twice greater than that of Degussa P25. The enhanced activity of N-S-TiO(2) can be primarily attributed to the synergetic effects of two factors including the intense absorption in the visible-light region and the exposure of highly reactive {001} facets of TiO(2) nanosheets. The former is beneficial for the photogeneration of electrons and holes participating in the photocatalytic reactions, and the latter facilitates adsorption of 4-CP molecules on the surface of TiO(2) nanosheets.  相似文献   

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