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1.
综述了近十几年来有关高分子担载希夫碱金属配合物的研究进展。此类配合物所采用的合成方法主要有:(a)含乙烯侧基的配体或金属配合物共聚;(b)小分子配体或配合物锚连于高分子载体。其主要性能为结合分子氧和催化活性。  相似文献   

2.
综述了近十几年来有关高分子担载希夫碱金属配合物的研究进展。此类配合物所采用的合成方法主要有:(a)含乙烯侧基的配体或金属配合物共聚;(b)小分子配体或配合物锚连于高分子载体。其主要性能为结合分子氧和催化活性。  相似文献   

3.
聚类卟啉金属配合物*   总被引:1,自引:0,他引:1  
王荣民  赵明  何玉凤  郝二霞  申国瑞 《化学进展》2007,19(11):1783-1790
为模拟天然卟啉所具有的特殊生理活性,结构与性能各异的多种金属卟啉被合成并应用于许多领域。实际上,天然金属卟啉是在特定天然高分子-蛋白质营造的空穴中才能发挥其独特的性质,因此,类卟啉金属配合物的高分子化逐渐受到关注,并在载氧、催化、导电等领域取得重要成果。基于结合方式不同,高分子类卟啉金属配合物可分为高分子担载类卟啉金属配合物与聚类卟啉金属配合物。其中,后者以稳定的类卟啉环作为高分子链,不但使高分子骨架稳定,而且活性中心与类卟啉金属配合物之间有效间隔,同时活性中心相对密集,使其表现出较高的稳定性与活性。线形与平面型聚金属卟啉与金属酞菁表现出良好的导电性与催化活性;手性Salen席夫碱易于聚合得到线形或网状聚Salen希夫碱金属配合物,其表现出较强的催化活性、高ee值和可循环性。异双核聚类卟啉金属配合物也表现出较强的催化活化分子氧性能。  相似文献   

4.
研究了高分子担载水杨醛半胱氨酸希夫碱配合物(PS-Sal-Cys-M)催化氧化环己烯的性能,详细探讨了反应温度、反应时间、催化剂用量、反应添加剂对高分子担载水杨醛半胱氨酸希夫碱铜配合物催化氧化环己烯的反应性能的影响。研究表明,在常压下,用分子氧作作为氧化剂,不需要溶剂及共还原剂,环己烯可以被氧化生成环己烯醇和环己烯酮,产物的分离提纯比较容易,催化剂可以循环使用。  相似文献   

5.
具有可逆载氧活性的亚钴希夫碱配合物的合成、结构、电性质、磁性质及其它方面已进行了大量研究。由于这些配合物载氧后可使分子氧活化,它们作为工业催化剂的应用已成为一个重要的研究领域。阻碍过氧型载氧体和二聚体的形成是提高其载氧能力和催化活性的有效方法[1]。本研究将双水杨叉乙二胺合钻固定化于壳聚糖分子上,并对固定化产物进行了表征。旨在利用高分子固定化产物所表现的基位隔离效应得到1:1超氧型高分子固定化产物。1 实验部分1.1 仪器及试剂WFX-IF2型原子吸收分光光度计;MattsonFT-IR红外光谱…  相似文献   

6.
合成了聚苯乙烯担载的酪氨酸水杨醛希夫碱钴配合物,并研究了该高分子金属配合物对分子氧氧化环己烯的催化性能.探讨了反应温度、添加剂及反应时间对环己烯转化率和产物选择性的影响.结果表明,70℃时,以微量醋酸为添加剂,在催化剂的催化作用下,以常压氧气氧化环己烯,得到烯丙基位的氧化产物环己烯醇、环己烯酮和中间产物环己烯过氧化氢.催化剂经五次循环使用仍具有较高的催化活性.环己烯在该高分子配合物作用下的催化氧化遵循一个自由基反应历程,与经典的Haber-Weiss历程相一致.  相似文献   

7.
高分子卟啉及其金属配合物的研究进展   总被引:1,自引:0,他引:1  
高分子金属卟啉在载氧、导电及催化氧化性能方面日益受到重视,高分子金属卟啉有多种连接方式,如金属卟啉以配位键或共价键担载于高分子,金属卟啉轴向聚合及卟啉平面聚合等。本文综述了近10年来高分子卟啉及其金属配合物在合成和性能方面的最新研究成果。  相似文献   

8.
以马来松香丙烯酸乙二醇酯(EGMRA)为原料与制备出的水合肼α-甲基丙烯酸-(4-醛基)-苯酯Schiff碱共聚制备松香基Schiff碱高分子物质(PS),然后将PS分别与铜离子和镍离子配位制备松香基Schiff碱高分子金属配位物PS-Cu及PS-Ni,并采用FTIR、1H-NMR、SEM及EDX对松香基Schiff碱高分子共聚物及其金属配位物进行表征,结果表明本研究提供的方法可成功制备出目标产物PS-Cu及PS-Ni。以H_2O_2为氧源、PS-Cu及PS-Ni为催化剂,对茴香油的催化氧化进行研究,在PS-Cu存在的条件下,茴香油的转化率为70%,高于空白试验组的转化率(47%);但是,在PS-Ni存在的条件下,茴香油的转化率却低于空白试验组;表明松香基Schiff碱共聚高分子铜离子配合物催化氧化茴香油的效果要优于镍离子配合物。  相似文献   

9.
钴希夫碱配合物及其分子氧加合物的合成与表征   总被引:5,自引:0,他引:5  
以β-萘酚醛与一系列二胺缩合为配体,合成了钴的配合物。通过测定配合物在各种溶剂中吸收的氧气,得到了配合物与分子氧的摩尔比。并从各种溶剂中分离出了一系列2:1和1:1(Co/O_2)的分子氧加合物。对这些配合物和分子氧加合物进行了元素分析,红外、紫外一可见光谱和磁化率的表征,并研究了性质与结构的关系。  相似文献   

10.
以水溶性生物高分子牛血清白蛋白(BSA)为载体,与小分子2,4-二羟基水杨醛缩甘氨酸希夫碱金属配合物(SalGlyM,M=Cu、Zn)结合,制得了水溶性生物高分子金属配合物结合体(SalGlyM@BSA)。采用FT-IR、UV-Vis、CD和SDS-PAGE电泳对其结构进行了表征。采用NBT光化学还原法考察了SalGlyM@BSA的抗O2.-活性,探讨了金属配合物结合体清除O2.-的机理。结果表明氨基酸希夫碱具有一定的抗O2.-活性,结合生物高分子载体后,SalGlyM@BSA具有良好的水溶性和O2.-清除能力。  相似文献   

11.
Polymer supported transition metal complexes of N,N′-bis (o-hydroxy acetophenone) hydrazine (HPHZ) Schiff base were prepared by anchoring its amino derivative Schiff base (AHPHZ) on cross-linked (6 wt%) polymer beads and then loading iron(III), copper(II) and zinc(II) ions in methanol. The loading of HPHZ Schiff base on polymer beads was 3.436 mmol g−1 and efficiency of complexation of polymer anchored HPHZ Schiff base for iron(III), copper(II) and zinc(II) ions was 83.21, 83.40 and 83.17%, respectively. The efficiency of complexation of unsupported HPHZ Schiff base for these metal ions was lower than polymer supported HPHZ Schiff base. The structural information obtained by spectral, magnetic and elemental analysis has suggested octahedral and square planar geometry for iron(III) and copper(II) ions complexes, respectively, with paramagnetic behavior, but zinc(II) ions complexes were tetrahedral in shape with diamagnetic behavior. The complexation with metal ions has increased thermal stability of polymer anchored HPHZ Schiff base. The catalytic activity of unsupported and polymer supported HPHZ Schiff base complexes of metal ions was evaluated by studying the oxidation of phenol (Ph) and epoxidation of cyclohexene (CH). The polymer supported metal complexes showed better catalytic activity than unsupported metal complexes. The catalytic activity of metal complexes was optimum at a molar ratio of 1:1:1 of substrate to oxidant and catalyst. The selectivity for catechol (CTL) and epoxy cyclohexane (ECH) in oxidation of phenol and epoxidation of cyclohexene was better with polymer supported metal complexes in comparison to unsupported metal complexes. The energy of activation for oxidation of phenol (22.8 kJ mol−1) and epoxidation of cyclohexene (8.9 kJ mol−1) was lowest with polymer supported complexes of iron(III) ions than polymer supported Schiff base complexes of copper(II) and zinc(II) ions.  相似文献   

12.
Two new Schiff base ligands with chromone moiety and their transition metal complexes were synthesized and characterized by elemental analyses, magnetic susceptibility, molar conductance and TGA analyses, FT IR, UV-Vis, NMR and mass spectroscopy. All the complexes synthesized have been investigated as functional models for catechol oxidase (catecholase) activity by employing 3,5-di-tert-butylcatechol as a model substrate. The two mononuclear copper(II) and two mononuclear iron(II) complexes show catecholase activity with turnover (kcat) numbers lying in the range 27.2–1328.4 h?1. According to the kinetic measurement results, the rate of catechol oxidation follows first order kinetics and iron(II) complexes were found to have higher catalytic activity than those of copper(II) complexes. Electron-donating substituent on Schiff base ligand enhanced the catalytic activity of metal complexes while the electron-withdrawing substituent led to a decrease in activity. The electrochemical properties of two Schiff bases and their metal complexes were also investigated by Cyclic Voltammetry (CV) using glassy carbon electrode (GCE) at various scan rates. Electrochemical processes of all the compounds were observed as irreversible.  相似文献   

13.
A Schiff base, obtained by the condensation of isatin monohydrazone with 2,3,5-trichlorobenzaldehyde, and its Co(II), Ni(II), Cu(II), and Zn(II) complexes have been synthesized and characterized. The interaction of these complexes with DNA is investigated using viscosity, absorption titration, and electrochemical techniques. The results indicate that the complexes bind to Calf thymus DNA through intercalation. Oxidative cleavage activities of the complexes are studied using supercoiled pBR322 DNA by gel electrophoresis. Antimicrobial study reveals that copper and zinc complexes are better antimicrobial agents than the Schiff base and its other complexes.  相似文献   

14.
Two transitional metal ion macrocyclic Schiff base complexes, NiL and CuL were synthesized and characterized, and the metallomicelles made up of the nickel(II) and copper(II) complexes and surfactants(LSS, Brij35, CTAB), as mimic hydrolytic metalloenzyme, were used in catalytic hydrolysis of carboxylic ester (PNPP). The analysis of specific absorption spectrums of the hydrolytic reaction systems indicates that key intermediates, made up of PNPP and Ni(II) or Cu(II) complexes, have formed in the reaction processes of the PNPP catalytic hydrolysis. In this, based on the analytic result of specific absorption spectrum, the mechanism of PNPP catalytic hydrolysis has been proposed; a kinetic mathematical model, applied to the calculation of the kinetic parameter of PNPP catalytic hydrolysis has been established on the foundation of the mechanism proposed; the acid effect of reaction system, structure effect of the complexes, effect of temperature and effects of micelle on the rate of PNPP hydrolysis catalyzed by the complexes also have been discussed.  相似文献   

15.
An ewacylpyrazolone Schiff base and its metal complexes were synthesized. The electrochemical behaviour of complexes was studied. In non-aqueous solvent, the new Schiff base 1-phenyl-3-methyl-4-(2-thenoyl)-5-pyrazolone-2-alanine (HL) was synthesized by the reaction of 2-alanine with 1-phenyl-3-methyl-4-(2-thenoyl)-5-pyrazolone and its complexes UO2(II), Cu(II), Co(II) and Fe(II) were obtained from refluxing a solution of Schiff base and metal nitrate. The polarographic wave of Cu(II) complex was determined at 1.24V(vs.SCE) in the medium of HAc-NaAc (PH=4.6). On the basis of elemental analysis and molar conductance, the general formula of the complexes, UO2L2?H2O,CuL2?2H2O,CoL2?2H2O and FeL2?2H2O, were given. They were characterized by IR, UV-visible, 1H NMR, 13CNMR, thermal analyses and magnetic moments. The results show that the metal ions except UO2 2+ exhibit six coordination in the complexes. The peak current is produced by the reduction of Cu2+ in the copper complex, and the number of electron transfer is 1 at electrode reaction.  相似文献   

16.
A new heterogeneous Schiff base copper(II) complex was prepared by reacting amino‐polystyrene with salicylaldehyde followed by complexation with cupric chloride. The structure of this immobilized complex has been established on the basis of scanning electron microscope (SEM), thermogravimetric analysis (TGA), elemental analysis employing atomic absorption spectroscopy (AAS), and spectrometric methods like diffuse reflectance spectra of solid (DRS) and fourier transform infrared spectroscopy (FTIR). Catalytic activity of this polymer anchored Cu(II) complex was tested by studying the oxidation of cyclohexene, styrene, and benzyl alcohol in the presence of tert‐ butylhydroperoxide as oxidant. Several parameters such as solvent, oxidant, reaction time, reaction temperature, amount of catalyst, and substrates oxidant ratio were varied to optimize the reaction condition. Under optimized reaction conditions, cyclohexene gave a maximum of 74% conversion with three major products 2‐cyclohexene‐1‐one, cyclohexene epoxide, and 2‐cyclohexene‐1‐ol. The conversions of styrene and benzylalcohol proceed with 53% and 77%, respectively. Styrene gives styrene epoxide as the major product while benzylalcohol gives benzaldehyde as the major product. The catalytic results reveal that polymer anchored copper(II) Schiff base complex can be recycled more than five times without much loss in the catalytic activity. Copyright © 2009 John Wiley & Sons, Ltd.  相似文献   

17.
3-Formyl-4-hydroxyphenylguanidine hydrochloride and its Schiff base copper(II), zinc(II), and iron(III) chelates were synthesized and their inhibitory activity against bovine beta-trypsin were determined. Syntheses of Schiff base metal chelates were carried out from 3-formyl-4-hydroxyphenylguanidine, various L-amino acids, and divalent metal acetate. Their structures were established on the basis of spectroscopic evidence and elemental analysis. The inhibitory activity of these chelates against bovine beta-trypsin was determined. The guanidine-containing copper(II) and zinc(II) chelates behaved as potent competitive inhibitors of trypsin. However, similar inhibitory activity was not observed for guanidine-containing iron(III) chelates. The inhibition constants (K(i) values, ca. 10(-5) M) of guanidine-containing Schiff base copper(II) and zinc(II) chelates were slightly lower than those (ca. 10(-6) M) of the corresponding amidine-containing Schiff base chelates with regard to bovine trypsin.  相似文献   

18.
The metal complexes of N, N′‐bis (o‐hydroxy acetophenone) propylene diamine (HPPn) Schiff base were supported on cross‐linked polystyrene beads. The complexation of iron(III), copper(II), and zinc(II) ions on polymer‐anchored HPPn Schiff base was 83.4, 85.7, and 84.5 wt%, respectively, whereas the complexation of these metal ions on unsupported HPPn Schiff base was 82.3, 84.5, and 83.9 wt%. The iron(III) complexes of HPPn Schiff base were octahedral in geometry, whereas copper(II) and zinc(II) ions complexes were square planar and tetrahedral. Complexation of metal ions increased the thermal stability of HPPn Schiff base. Catalytic activity of metal complexes was tested by studying the oxidation of phenol and epoxidation of cyclohexene in the presence of hydrogen peroxide. The polymer‐supported HPPn Schiff base complexes of iron(III) ions showed 73.0 wt% conversion of phenol and 90.6 wt% conversion of cyclohexene at a molar ratio of 1:1:1 of substrate to catalyst and hydrogen peroxide, but unsupported complexes of iron(III) ions showed 63.8 wt% conversion for phenol and 83.2 wt% conversion for cyclohexene. The product selectivity for catechol (CTL) and epoxy cyclohexane (ECH) was 93.1 and 98.3 wt%, respectively with supported HPPn Schiff base complexes of iron(III) ions but was lower with HPPn Schiff base complexes of copper(II) and zinc(II) ions. Activation energy for the epoxidation of cyclohexene and phenol conversion with unsupported HPPn Schiff base complexes of iron(III) ions was 16.6 kJ mol?1 and 21.2 kJ mol?1, respectively, but was lower with supported complexes of iron(III) ions. Copyright © 2007 John Wiley & Sons, Ltd.  相似文献   

19.
A polymer-anchored Pd(II) Schiff base complex has been synthesized by reacting a polymeric amine with 2-pyridinecarboxaldehyde to get the polymer-anchored Schiff base, which was then reacted with palladium acetate. The catalyst was characterized by physicochemical and spectroscopic methods. It shows excellent catalytic activity in the Sonogashira coupling of phenylacetylene with aryl halides using triethylamine as a base and copper iodide as a co-catalyst in water under open air at 70 °C. We have also studied the effects of base and solvent on the coupling reaction. Sonogashira reactions of phenylacetylene with a variety of functionalized aryl halides were performed under the optimized reaction conditions. This catalyst gives excellent yields without the use of phosphine ligands. Further experiments showed that the catalyst can be used five times without much loss in the catalytic activity.  相似文献   

20.
As a new class of potential catalysts for 1,3‐dipolar cycloaddition reactions, fourteen L‐amino acid Schiff base Cu(II) and Ti(IV) complexes were synthesized, characterized, and evaluated for their catalytic activities in the reaction between C,N‐diphenylnitrone and electron‐rich ethyl vinyl ether under both homogeneous and in situ conditions. The methods for preparation and utilization of the catalysts were elucidated in detail, and the results of the catalytic reactions were described and discussed as well. Excellent reaction results were found in the presence of some catalysts (20 mol%) with > 90% endo‐isoazolidines produced, compared with predominantly exo‐isoazolidine produced without a catalyst. In addition, the reaction rate is found to be enhanced remarkably by a Cu(II) complex Schiff base catalyst at room temperature.  相似文献   

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