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1.
Mn-CeOx/Ti-PILC的制备、表征及脱硝性能研究   总被引:1,自引:0,他引:1  
采用钛酸丁酯溶胶法制备了钛基柱撑黏土(Ti-PILC),通过浸渍法制备Mn-CeOx/Ti-PILC,运用BET、FT-IR、XRD、NH3-TPD、XPS等技术对催化剂进行表征分析。结果说明,经过钛交联柱撑制备的Mn-CeOx/Ti-PILC是一种具备较大比表面积(133.7 m2/g)的多孔性介孔材料;活性成分主要为CeO2以及Mn2O3。Mn-CeOx/Ti-PILC低温下具有较好的选择性能催化剂还原(SCR)脱硝活性,180 ℃下,脱硝活性达到83.1%。  相似文献   

2.
采用共沉淀法制备了不同CuO和WO3含量的CuO-WO3-ZrO2催化剂. 利用X射线衍射(XRD)、 扫描电子显微镜(SEM)、 X射线荧光光谱(XRF)、 N2气物理吸附、 氢气程序升温还原(H2-TPR)、 X射线光电子能谱(XPS)及程序升温脱附(TPD)等手段对催化剂的结构和表面性质进行了表征. 结果表明, WO3的引入可以调变ZrO2的晶型, 从而使催化剂的比表面积和孔径发生变化, 促进CuO在催化剂表面的分散, 并影响催化剂的酸碱性. 在苯甲醛加氢制备苯甲醇反应中, 以CuO质量分数为18%, WO3质量分数为10%的CuO-WO3-ZrO2为催化剂时苯甲醛单程转化率达到92.03%, 产物苯甲醇的选择性为94.76%.  相似文献   

3.
以对苯二乙炔和2,5-二溴苯衍生物为单体,无水N,N-二甲基甲酰胺(DMF)为溶剂,通过Sonogashira偶联反应,采用2种Pd催化剂(Pd(PPh3)4和PdCl2(PPh3)2)合成了一种侧基带有偶极基团的聚苯撑乙炔。 单体的化学结构通过IR、NMR和元素分析等测试技术得到确证。 聚合物外观为黄色粉状固体,室温下溶于CHCl3和THF等有机溶剂。 2种Pd催化剂对合成聚合物的分子量以及光学性质影响不大,但对聚合物的发光效率影响较大,由Pd(PPh3)4催化得到的聚合物分子链具有较高的立构规整性,因此,具有较高的发光效率。 不同溶剂环境以及聚合物固体膜的紫外以及荧光光谱研究结果表明,侧基偶极基团的相互静电排斥力,可以有效阻止大分子链之间的聚集,从而有效地抑制了聚苯撑乙炔聚集体的形成。  相似文献   

4.
采用羟基铁离子柱撑钠化海泡石改性后, 以浸渍法制备了铜负载铁柱撑钠化海泡石Cu/Fe-NaPILCS催化剂, 作为比较以浸渍法制备了铁负载钠化海泡石(Fe-NaSep), 铜负载钠化海泡石(Cu-NaSep)和铜铁负载钠化海泡石(Cu/Fe-NaSep)催化剂. 并将它们应用于C3H6选择性催化还原NO的反应(C3H6-SCR). 通过X射线衍射仪(XRD)、TGA-DTG分析、N2-等温吸附/脱附、H2-程序升温还原(TPR)和X射线光电子能谱仪(XPS)等技术对样品进行表征. N2-等温吸附/脱附和TGA-DTG分析结果表明, Fe-NaPILCS的比表面积和孔体积较海泡石原矿具有较大的增加, 热稳定性也明显提高|XRD和XPS结果表明, 在Cu/Fe-NaPILCS催化剂上同时存在Fe3+/Fe2+和Cu2+/Cu不同氧化态的氧化物种, 在Cu和Fe之间存在电子迁移. H2-TPR结果表明, Cu/Fe-NaPILCS催化剂上存在大量的孤立铜离子物种(isolated Cu2+-ions, (Cu2+)i). Fe柱撑钠化海泡石负载的Cu/Fe-NaPILCS催化剂的催化活性明显优于未柱撑海泡石负载的Cu/Fe-NaSep催化剂, 这可能与Cu/Fe-NaPILCS具有较大的比表面积、孔体积和更优的氧化还原性能, 及其具有更多有利于C3H6-SCR反应的(Cu2+)i物种有关.  相似文献   

5.
采用浸渍法制备了ZrO2为载体负载Ir的催化剂(Ir/ZrO2), 考察了催化剂的CH4催化燃烧性能. 采用X射线衍射(XRD), 拉曼光谱(Raman), X射线光电子能谱(XPS), 氢气程序升温还原(H2-TPR)等技术对催化剂的结构和Ir物种的存在形式进行了表征. 结果表明, Ir/ZrO2催化剂中Ir是以IrO2形式存在的, Ir/ZrO2催化剂的CH4燃烧表观活性随着Ir负载量的增加而提高, 并且催化剂表现出较高的催化活性和良好的反应稳定性. 在低Ir负载量(≤1%)时, CH4燃烧的转换频率(TOF)随着Ir粒子的增大而提高|然而高Ir负载量(≥1%)时, TOF随着Ir粒子的增大保持不变.  相似文献   

6.
易封萍  孙海洋 《应用化学》2010,27(7):860-862
以含磺酸基离子液体1-(4-磺酸基)丁基-3-甲基咪唑四氟硼酸盐([4-sulfbmim][BF4])为酸性催化剂,由乙缩醛和苯甲醇合成了叶青素。 采用正交实验方法考察了合成条件的影响,固定反应温度为20 ℃条件下,确定优化合成条件为:n(苯甲醇)∶n(乙缩醛)=1∶8,反应时间60 min,催化剂用量为每摩尔苯甲醇4 g,产率为92.2%。 与H2SO4催化剂相比[4-sulfbmim][BF4]的催化活性相对较弱,但综合效果优于H2SO4。 [4-sulfbmim][BF4]循环使用6次,催化活性基本不变。  相似文献   

7.
采用密度泛函理论中的广义梯度近似(DFT/GGA)方法, 在PW91/DNP 水平上研究了4,7-二(2-噻吩基)苯并噻二唑-3-辛基噻吩二炔在PdCl2(PPh3)2 催化下的合成机理. 优化了反应过程中的反应物、中间体、过渡态和产物, 通过能量分析结果证实了中间体和过渡态的真实. 在同样的方法和精度研究了4,7-二(2-噻吩基)苯并噻二唑-3-辛基噻吩二炔在没有催化剂下的合成机理. 通过计算结果得到此反应在有PdCl2(PPh3)2 催化情况下的活化能小于没有催化剂情况下的活化能, 从而证明了PdCl2(PPh3)2 催化剂的催化活性. 采用密度泛函理论与周期性平板模型相结合的方法, 研究了产物P 在TiO2(100)表面的吸附, 通过Mulliken charge 和前线轨道分析表明: 当P 吸附在TiO2(100)表面时, P 向TiO2(100)表面转移0.692 e 电荷, 前线轨道能隙变窄. 理论预测的结果与实验值吻合.  相似文献   

8.
采用浸渍法制备负载KF固体碱催化剂,应用于苯脲和甲醇制备苯氨基甲酸甲酯的反应,考察了氧化物载体、卤化钾种类对催化剂性能的影响,KF/Al2O3催化剂显示出良好的催化活性和苯氨基甲酸甲酯的选择性。通过对KF/Al2O3催化剂中KF的负载量和催化剂焙烧温度的研究发现,在500 ℃焙烧4 h、负载质量分数50%KF的催化剂能够更好地促进MPC生成,苯脲转化率和苯氨基甲酸甲酯选择性分别达到96.5%和86.3%。XRD分析表明,KF与Al2O3之间存在较强的相互作用,部分转化为K3AlF6。KF与K3AlF6分别对甲醇的活化和苯脲的选择性起促进作用,两者的协同效应共同促进了目标产物苯氨基甲酸甲酯的生成。  相似文献   

9.
在Pt/Al2O3催化剂上用外循环反应器研究了内扩散对苯完全氧化动力学的影响,当用30~40目(即0.45~0.60mm)催化剂时反应在动力学区域进行.若O2过量时则动力学区域苯的完全氧化可用-0.9级速率方程描述.当催化剂粒径增至φ6×5mm时,反应在内扩散区域进行并变为一0.1级反应.催化剂有效因子η在0.24~0.12之间.在同一温度下,η实验随苯分压p的增加而增大;而p相近时,η实验则随温度的升高而减小.动力学区域的反应活化能为55.5kJ/mol,内扩散区域的反应活化能为34.9kJ/mol,其值约为动力学区域的活化能与苯分子扩散活化能的算术平均值.  相似文献   

10.
采用沉淀法和溶剂热法合成了三种具有相同晶型但不同孔径的四方ZrO2t-ZrO2),以此为载体,采用沉积沉淀-硫酸锌溶液中还原的方法制备了Ru-Zn/ZrO2催化剂,考察了Ru-Zn/ZrO2催化剂的孔径对苯部分加氢性能的影响.采用粉末X射线衍射(XRD)、N2物理吸附、电感耦合等离子体原子发射光谱(ICP-AES)、CO化学吸附、X射线光电子能谱(XPS)、X射线吸收近边结构(XANES)、X射线激发俄歇电子能谱(XAES)、H2程序升温还原(H2-TPR)和透射电子显微镜(TEM)等手段对载体和催化剂进行了系统的表征.研究表明,在苯部分加氢反应中,Ru-Zn/ZrO2催化剂的孔径对环己烯的选择性有显著影响.随催化剂孔径的增大,苯的转换频率(TOF)基本不变,环己烯初始选择性(S0)则逐渐升高,孔径为11.7 nm的ZrO2(ZrO2(11.7))负载的Ru-Zn/ZrO2(11.7)催化剂的S0及得率最高,分别可达88%和54%.结合催化剂的表征和加氢结果,讨论了孔径影响苯部分加氢活性和选择性的原因.  相似文献   

11.
Side-chain liquid crystalline polymers containing both mesogenic (carbazolylmethylene)aniline and (4′-nitrobenzylidene)aniline units with various spacer groups were prepared to examine effects of the structure of spacer groups on the liquid crystalline properties. The copolymer containing (R)-(+)-2-methylpropylene as a chiral group in the spacer unit induced a smectic phase; the copolymer with a trimethylene spacer of similar length to the chiral spacer exhibited a nematic phase. Smectic phases were observed for the copolymer containing the chiral spacer group when the proportion of the carbazolyl group was in the range of 0.55–0.88. For example, the copolymer with the proportion of the carbazolyl group of 0.68 expressed the smectic phase from 88° to 167°C. This isotropic temperature was 37° higher than the calculated value (130°C) based on an assumed copolymer composition without the electron donor–acceptor interaction. Thus, it is assumed that for the chiral copolymer containing both electron donor and acceptor groups, the thermal stability and the induction of the smectic phase were caused by both the electron donor–acceptor interaction and the existence of the chiral group in the spacer unit. © 1995 John Wiley & Sons, Inc.  相似文献   

12.
A novel D–A1–D–A2 copolymer denoted as P1 containing two electron withdrawing units based on benzothiadiazole (BT) and 9‐(2‐octyldodecyl)?8H‐pyrrolo[3,4‐b] bisthieno[2,3‐f:3′,2′‐h]quinoxaline‐8,10(9H)–dione (PTQD) units was synthesized and characterized. The resulting copolymer exhibits a broad‐absorption spectrum, relatively deep lying HOMO energy level (?5.44 eV) and narrow optical bandgap (1.50 eV). Bulk heterojunction (BHJ) polymer solar cells (PSCs) based on P1 as donor and PC71BM as acceptor with optimized donor to acceptor weight ratio of 1:2 and processed with DIO/CB solvent showed good photovoltaic performance with power conversion efficiency of 6.21% which is higher than that of the device processed without solvent additive (4.40%). The absorption and morphology investigations of the active layers indicated that structural and morphological changes were induced by the solvent additive. This higher power conversion efficiency could be mainly attributed to the absorption enhancement and improved charge transported in the active layer induced by the better nanoscale morphology of the active layer. This study demonstrated that a copolymer with two different acceptor moieties in the backbone may be promising candidate as donor copolymer for solution processed BHJ PSCs. © 2015 Wiley Periodicals, Inc. J. Polym. Sci., Part A: Polym. Chem. 2016 , 54, 155–168  相似文献   

13.
A new donor‐acceptor copolymer, containing benzodithiophene (BDT) and methyl thiophene‐3‐carboxylate (3MT) units, is designed and synthesized for polymer solar cells (PSCs). The 3MT unit is used as an electron acceptor unit in this copolymer to provide a lower highest occupied molecular orbital (HOMO) level for obtaining polymer solar cells with a higher open‐circuit voltage (VOC). The resulting bulk heterojunction PSC made of the copolymer and [6,6]‐phenyl‐C71‐butyric acid methyl ester (PC71BM) exhibits a power conversion efficiency (PCE) up to 4.52%, a short circuit current (JSC) of 10.5 mA·cm‐2, and a VOC of 0.86 V.  相似文献   

14.
Copolymers containing an intramolecular electron donor-acceptor (EDA) complex were synthesized by free radical copolymerization of 2-N-carbazolylethyl acrylate and 2-(3,5-dinitrobenzoyloxy)ethyl methacrylate. Glass transition temperatures show a positive deviation from the weight-average values of copolymers, indicating the presence of the specific EDA interaction in copolymers in the solid state. Photoinduced “memory effect,” which is defined as the percentage of the difference of the surface potential given by corona charging before and after irradiation of light on polymer films, was 30% for the copolymer with 5 mol% of acceptor content. Memory effect increased to 70% for a 8 μm film by doping with 2 wt% of trichloroacetic acid (TCAA), and leveled off at 5 wt% of TCAA content. Memory effect was also enhanced by increasing the thickness of polymer films and irradiation time. The largest value of memory effect (85%) was obtained from the film of the copolymer with 5 mol% acceptor content doped with 1 wt% TCAA and with thickness larger than 14 μm.  相似文献   

15.
16.
To incorporate an acceptor type polythiophene segment onto a supramolecular block copolymer for potential light harvesting applications, effective synthetic routes for the end‐functionalized and acceptor‐substituted polythiophenes are critical. The Ullmann coupling reaction can be utilized to obtain electron‐deficient polythiophenes and to attach terminal thiophene units that carry functional groups. In this article, the reactions involving a 2,5‐dibromothiophene monomer containing an electron‐withdrawing fluorinated ester and 5‐bromo‐2‐thiophenecarboxaldehyde (the end‐capper) were studied in detail. It was found that the Ullmann coupling reaction of the dibromide is very fast (completed in a few minutes) and the terminal bromine group does not survive long under the reaction condition. These findings lead to the development of an effective procedure for aldehyde end‐capping of electron‐deficient polythiophenes. Polymers with molecular weights around 4000 Da are routinely obtained. © 2006 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 45: 41–47, 2007  相似文献   

17.
Light‐emitting diodes based on organic materials [organic light‐emitting diodes (OLEDs)] have attracted much interest over the past decade. Several different attempts have been made to realize multicolor OLEDs. This article describes a new approach based on energy transfer in a donor/acceptor system. A copolymer containing both donor and acceptor compounds as comonomer units is prepared. The polymer consists of a derivative of a luminescent dye [4‐dicyanmethylene‐2‐methyl‐6‐4H‐pyran (DCM); acceptor compound], which is copolymerized with fluorene (donor compound) to combine the properties of an electroactive polymer with a highly luminescent dye. Photochemical processing is achieved by UV irradiation of this copolymer in the presence of gaseous trialkylsilanes. This reagent selectively saturates the C?C bonds in the DCM comonomer units while leaving the fluorene units essentially unaffected. As a result of the photochemical process, the red electroluminescence of the acceptor compound vanishes, and the blue‐green electroluminescence from the polyfluorene units is recovered. Compared with previous approaches based on polymer blends, this copolymer approach avoids problems associated with phase‐separation phenomena in the active layer of OLEDs. © 2006Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 44: 4317–4327, 2006  相似文献   

18.
Here, a family of donor/acceptor (D/A) alternating copolymers and random two‐acceptor and three‐acceptor copolymers were synthesized via Suzuki polymerization based on heptadecan‐9‐yl substituted carbazole as a donor and 4,7‐Bis(5‐bromothiophene‐2‐yl)benzo[c][1,2,5]thiadiazole (DTBT), 2,5‐diethylhexyl‐3,6‐bis(5‐bromothiophene‐2‐yl)pyrrolo[3,4‐c]‐pyrrole‐1,4‐dione (DPP) and 2,8‐dibromo‐4,10‐bis(2‐ethylhexyl)thieno[2′,3′:5,6] pyrido[3,4‐g]thieno[3,2‐c]isoquinoline‐5,11(4H,10H)‐dione (TPTI) as acceptors. For the first time, a relatively new electron‐deficient TPTI unit was used as an acceptor in carbazole‐based conjugated polymers. Introduction of the electron‐deficient TPTI unit into the polymer backbone increased the open‐circuit voltage (Voc) of the resulting polymer solar cells up to 0.96 V. PCTPTI and PCDTBT‐TPTI exhibited external quantum efficiencies (EQE) up to 75%. All random two‐acceptor copolymers showed broadened absorption profiles compared to the D/A alternating analogues. In order to further improve the light absorption, a random three‐acceptor copolymer was synthesized for the first time, resulting in the broadest absorption in the range of 350–750 nm. Highest occupied molecular orbital (HOMO) energies and Voc values of the resulting polymers could be successfully tuned by introducing different monomer units into the polymer backbone in different ratios. These results indicate that TPTI is a promising acceptor unit for conjugated polymers and that the random copolymer approach is a successful tool for fine tuning of polymer properties. © 2017 Wiley Periodicals, Inc. J. Polym. Sci., Part A: Polym. Chem. 2017 , 55, 2781–2786  相似文献   

19.
A distannylated electron‐deficient bithiophene imide (BTI‐Tin) monomer was synthesized and polymerized with imide‐functionalized co‐units to afford homopolymer PBTI and copolymer P(BTI‐BTI2), both featuring an acceptor–acceptor backbone with high molecular weight. Both polymers exhibited excellent unipolar n‐type character in transistors with electron mobility up to 2.60 cm2 V?1 s?1. When applied as acceptor materials in all‐polymer solar cells, PBTI and P(BTI‐BTI2) achieved high power‐conversion efficiency (PCE) of 6.67 % and 8.61 %, respectively. The PCE (6.67 %) of polymer PBTI, synthesized from the distannylated monomer, is much higher than that (0.14 %) of the same polymer PBTI*, synthesized from typical dibrominated monomer. The 8.61 % PCE of copolymer P(BTI‐BTI2) is also higher than those (<1 %) of homopolymers synthesized from dibrominated monomers. The results demonstrate the success of BTI‐Tin for accessing n‐type polymers with greatly improved device performance.  相似文献   

20.
The first main-chain copolymer containing TCAQ and enantiomerically pure binaphthyl moieties connected at 2,6 positions of the TCAQ ring was successfully synthesized by means of a polycondensation reaction. Cyclic voltammetry investigations show that TCAQ preserves its acceptor ability in the polymer system and preliminary photophysical investigations show fluorescence quenching in mixtures containing the acceptor polymer and fluorescent conjugated polymers.  相似文献   

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