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1.
王俊 《分子催化》2019,33(6):429-437
以不同端基烷基链长度的1.0G超支化大分子为桥联基,通过对其端基氨基进行催化功能改性,合成了系列具有不同桥联基长度的超支化PNP铬系催化剂。采用红外光谱(IR)、核磁共振氢谱(1H-NMR)、核磁共振磷谱(31P-NMR)、紫外光谱(UV)和质谱(MS)等表征方法证明合成催化剂的结构与理论结构相符。详细考察了溶剂种类、反应温度、Al/Cr摩尔比、反应压力、催化剂用量和催化剂结构对催化剂乙烯齐聚性能的影响。实验结果表明,当以甲苯为溶剂,甲基铝氧烷(MAO)为助催化剂时,超支化PNP铬系催化剂表现出良好的催化乙烯齐聚性能,产物以低碳烯烃为主。最佳条件下,催化活性最高可达到1.69×105g/mol Cr·h,己烯和辛烯的选择性为43.3%以上。相同聚合条件下,其催化活性随着端基烷基链长度的增加而下降。  相似文献   

2.
王俊  李昱颖  张娜  陈丽铎 《分子催化》2019,33(5):429-437
以正辛胺和十二胺为原料,分别制备了两种超支化PNP配体,通过引入金属铬活性位点的方法合成了具有不同烷基链长度的超支化PNP铬系催化剂.采用红外光谱(IR)、核磁共振磷谱(~(31)P-NMR)、核磁共振氢谱(~1H-NMR)、紫外光谱(UV)和质谱(MS)等表征方法证明合成催化剂的结构与理论结构预测相符.详细考察了催化剂用量、溶剂种类、反应条件以及配合物结构对乙烯齐聚性能的影响.实验结果显示,超支化PNP铬系催化剂在甲苯作溶剂,甲基铝氧烷(MAO)做助催化剂时表现出良好的催化乙烯齐聚性能,产物主要为低碳烯烃.在最佳条件下,催化活性最高可达到1.69×10~5 g·(mol Cr·h)~(-1),己烯和辛烯的选择性为43.3%以上.相同聚合条件下,其催化活性随着端基烷基链长度的增加而下降.  相似文献   

3.
以1,8-辛二胺为核的1.0代(1.0G)树枝状大分子、水杨醛和六水氯化钴为原料,依次通过席夫碱反应和配位反应合成了一种新型的树枝状水杨醛亚胺配体和钴系催化剂;并对目标产物进行FT-IR、UV、1H NMR和MS表征,证实其合成产物的结构与理论结构相符。考察了助催化剂种类、溶剂种类、反应条件及金属活性中心对乙烯齐聚性能的影响。结果表明,当以一氯二乙基铝(Et2AlCl)为助催化剂,甲苯为溶剂时,催化剂具有良好的催化乙烯齐聚性能,并在反应温度为25℃、Al/Co摩尔比为1500、压力为1.0 MPa、时间为0.5 h时,催化活性达到6.84×105 g/(mol Co?h),齐聚产物中C8及C8以上的烯烃含量为52.77%。  相似文献   

4.
以1,8-辛二胺为核的1.0代(1.0G)树枝状分子、水杨醛和六水氯化钴为原料,依次通过席夫碱反应和配位反应合成了一种新型树枝状水杨醛亚胺配体和钴催化剂;并对目标产物进行FT-IR、UV、1H NMR和MS表征,证实其合成产物的结构与理论结构相符。考察了助催化剂种类、溶剂种类、反应条件及金属活性中心对乙烯齐聚性能的影响。结果表明,当以一氯二乙基铝(Et2Al Cl)为助催化剂、甲苯为溶剂时,催化剂具有良好的催化乙烯齐聚性能,并在反应温度为25℃、Al/Co摩尔比为1500、压力为1.0MPa、时间为0.5h时,催化活性达到6.84×10~5g/(mol Co·h),齐聚产物中C_8及C_8以上的烯烃含量为52.77%。  相似文献   

5.
以1.0代(G)超支化大分子(C38H51N9O2)为配体骨架,2-氯-4-甲基吡啶和CrCl3(THF)3为原料,依次经过取代和配合反应合成了一种超支化双吡啶亚胺配体及其铬催化剂。 利用紫外-可见光谱(UV-Vis)、傅里叶变换红外光谱(FT-IR)、电喷雾电离质谱(ESI-MS)、核磁共振氢谱(1H NMR)和元素分析等方法对其进行表征。 结果与理论设计预期一致。 考察了反应温度、乙烯压力、Al与Cr摩尔比(n(Al)/n(Cr))、溶剂及助催化剂种类等因素对催化剂催化乙烯齐聚性能的影响。 结果表明,以甲苯为溶剂,甲基铝氧烷(MAO)为助催化剂,当反应温度为45 ℃,乙烯压力为4 MPa,n(Al)/n(Cr)=300,催化剂用量为7 μmol时,活性可达1.32×105 g/(mol(Cr)·h),C6和C8的选择性为59.30%。  相似文献   

6.
合成了一种具有超支化结构的新型水杨醛亚胺配体及其Ni(Ⅱ)配合物, 利用元素分析、 电喷雾电离质谱(ESI-MS)、 傅里叶变换红外光谱(FTIR)、 紫外-可见光谱(UV-Vis)、 氢核磁共振谱(1H NMR)和碳核磁共振谱(13C NMR)对其结构进行了表征. 以甲基铝氧烷(MAO)为助催化剂, 考察了超支化水杨醛亚胺镍配合物对乙烯齐聚反应的催化活性及聚合条件(Al/Ni摩尔比、 聚合温度)对催化剂活性及聚合产物分布的影响. 结果表明, 在反应温度为25 ℃、 Al/Ni摩尔比为500时, 该催化剂的活性最高达到5.59×105 g/(mol Ni·h), 得到的聚合产物为全馏分烯烃, 其中高碳烯烃C10~C18的含量最高达91%.  相似文献   

7.
以1.0代(1.0G)树枝状大分子、水杨醛和FeCl_2·4H_2O为原料,依次经过希夫碱反应和络合反应合成了一种双核水杨醛亚胺铁系催化剂。FT-IR、1 H NMR、UV和MS证实合成产物的结构与理论结构相符。以甲基铝氧烷(MAO)为助催化剂,考察了溶剂种类、反应温度、反应压力、Al/Fe摩尔比及金属活性中心种类对催化体系催化乙烯齐聚性能的影响。结果表明,当以甲苯为溶剂,聚合时间为30min,反应温度为15℃、反应压力为0.5MPa、Al/Fe摩尔比为1000时,该双核水杨醛亚胺铁系催化剂的活性可达1.14×10~5g/(mol Fe·h),齐聚产物中C_4及C_6烯烃含量高达90%以上。  相似文献   

8.
以γ-氨丙基三乙氧基硅烷和水杨醛为原料,通过席夫碱反应合成一类硅烷基Schiff碱亚胺配体;分别以六水氯化镍和六水氯化钴为络合试剂,通过络合反应合成两类硅烷基Schiff碱亚胺络合过渡金属催化剂.元素分析、FT-IR、~1H NMR和ICP证实合成的硅烷基Schiff碱亚胺配体及其相应的过渡金属催化剂的结构与其理论结构相符.两类硅烷基Schiff碱亚胺络合过渡金属催化剂具有良好的催化乙烯齐聚活性,且其催化性能不仅受助催化剂结构和主催化剂活性中心种类的影响,而且还受聚合反应参数的影响.甲基铝氧烷(MAO)为助催化剂,环己烷为溶剂时,聚合活性和齐聚产物中C_8以上烯烃的含量较高;当Al/Co物质的量比为500、反应温度为25℃、反应压力为0.5 MPa和反应时间为30 min时,硅烷基Schiff碱亚胺络合钴催化剂催化乙烯齐聚的活性为1.13 g·μmol~(-1)·h~(-1),齐聚产物中C_8以上烯烃含量为52.70%.受电子云密度的影响,硅烷基Schiff碱亚胺络合镍催化剂的催化活性高于相应的钴催化剂.  相似文献   

9.
以纳米二氧化硅为载体,树状聚酰胺-胺(PAMAM)镍络合物为催化活性中心,通过共价负载制备了一种具有良好催化活性和循环利用性的PAMAM改性纳米二氧化硅负载镍催化剂(化合物G).采用元素分析、傅里叶变换红外光谱(FTIR)、 X射线衍射(XRD)和扫描电子显微镜(SEM)表征了化合物G的组成及形貌.研究了该类负载镍催化剂催化乙烯齐聚的性能,考察了齐聚条件对其性能的影响.结果表明,化合物G具有良好的催化乙烯齐聚活性和循环利用性.基于灰色关联分析得出反应压力是影响乙烯齐聚活性的最主要因素,反应温度是影响乙烯齐聚选择性的最主要因素.当以甲基铝氧烷(MAO)为助催化剂,反应压力0.7 MPa, n(Al)/n(Ni)为500,反应温度为35℃,主催化剂用量为5μmol时,化合物G催化乙烯齐聚活性为3.75×105 g/(mol Ni·h),齐聚产物中C4~C8烯烃选择性为94.98%.化合物G的树状效应使其金属负载量、催化乙烯齐聚活性和C8烯烃的选择性均高于氨基化改性纳米二氧化硅负载镍(化合物E);且化合物G经3次回收循环使用后,催化乙烯齐聚活性为3.12×105 g/(mol Ni·h),齐...  相似文献   

10.
合成了一种N,N-二齿配位的新型树枝状桥联吡啶亚胺配体及其镍配合物,利用元素分析、傅里叶变换红外光谱(FTIR)和电喷雾电离质谱(ESI-MS)对其结构进行了表征.以二氯乙基铝(Et Al Cl2)为助催化剂,考察了树枝状桥联镍配合物催化乙烯齐聚和1-戊烯齐聚的聚合条件对产物分布的影响.结果表明,当聚合时间为60 min,聚合压力为0.5 MPa,Al/Ni摩尔比为150时,乙烯齐聚产物中C10~C14的选择性最高,达到93%,催化活性为0.99×106g/(mol Ni·h);当聚合时间为60 min,Al/Ni摩尔比为300时,1-戊烯齐聚产物中C20的选择性最高为70.5%,催化活性为2.47×105g/(mol Ni·h).该树枝状桥联镍配合物对乙烯齐聚反应和1-戊烯齐聚反应均具有良好的催化活性和较高碳数的齐聚产物选择性.  相似文献   

11.
Supramolecular copolymers can not only enrich the diversity of the polymer backbone but also exhibit certain special and improved properties compared with supramolecular homopolymers. However, the synthesis procedure of supramolecular copolymers is relatively complicated and time‐consuming. Herein, a simple transformation from an AB2‐based supramolecular hyperbranched homopolymer to an AB2+CD2‐based supramolecular hyperbranched alternating copolymer by the “competitive self‐sorting” strategy is reported. After adding CD2 monomer, which bears a competitive neutral guest moiety ( TAPN ) and two receptive benzo‐21‐crown‐7 host moieties ( B21C7 ), to the as‐prepared AB2‐type supramolecular hyperbranched homopolymer constructed by the self‐assembly of dialkylammonium salt ( DAAS , A group)‐functionalized pillar[5]arene ( MeP5 , B groups) monomers, the initial homopolymer structure is disrupted and then reassemble into a new supramolecular hyperbranched alternating copolymer based on the competitive self‐sorting interaction between MeP5 ‐ TAPN and B21C7 ‐ DAAS . This study supplies a convenient approach to directly transform supramolecular homopolymers into supramolecular copolymers.

  相似文献   


12.
It has been a challenge to synthesize high molecular weight and soluble conjugated hyperbranched poly(1,2,3‐triazole)s (hb‐PTAs). In this paper a series of soluble hyperbranched polytriazoles, whose number‐average molecular weight (Mn) and polydispersity index ranged in (1.2–3.3)×104 and 1.7–3.0, respectively, were synthesized with A2+B3 approach. In the polymerization process, diazides A1 – A4 and triyne B1 were used as A2 and B3 monomers; Cu(I)‐catalyst, THF and water were used as their reaction system. At room temperature the final molecular weight could be controlled through reaction time, so finally we obtained soluble conjugated hyperbranched poly(1,2,3‐triazole)s hb‐PTAs (1–4 ). The polymers were soluble in common organic solvents, and all emitted blue light; the films of polymers emitted yellow and blue light, due to the difference in the aggregation of their chromophoric units in the solid state. The thermal properties of the final copolymers were analyzed by differential scanning calorimetry (DSC) and thermogravimetric analysis (TGA).  相似文献   

13.
14.
Starting from 3,5‐diamino benzoic acid, 2‐hydroxy propyl[3,5‐bis{(benzoxycarbonyl)imino}]benzyl ether, an AB2‐type blocked isocyanate monomer with flexible ether group, and 2‐hydroxy propyl[3,5‐bis{(benzoxycarbonyl)imino}]benzoate, an AB2‐type blocked isocyanate monomer with ester group, were synthesized for the first time. Using the same starting compound, 3,5‐bis{(benzoxycarbonyl)imino}benzylalcohol, an AB2‐type blocked isocyanate monomer, was synthesized through a highly efficient short‐cut route. Step‐growth polymerization of these monomers at individually optimized experimental conditions results in the formation of hyperbranched polyurethanes with and without ether and ester groups. Copolymerizations of these monomers with functionally similar AB monomers were also carried out. The molecular weights of the polymers were determined using GPC and the values (Mw) were found to vary from 1.5 × 104 to 1.2 × 106. While hyperbranched polyurethanes having no ether or ester group were found to be thermally stable up to 217 °C, hyperbranched poly(ether–urethane)s and poly(ester–urethane)s were found to be thermally stable up to 245 and 300 °C, respectively. Glass transition temperature (Tg) of polyurethane was reduced significantly when introducing ether groups into the polymer chain, whereas Tg was not observed even up to 250 °C in the case of poly(ester–urethane). Hyperbranched polyurethanes derived from all the three different AB2 monomers were soluble in highly polar solvents and the copolymers showed improved solubility. Polyethylene glycol monomethyl ether of molecular weight 550 and decanol were used as end‐capping groups, which were seen to affect the thermal, solution, and solubility properties of polymers. © 2007 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 45: 3877–3893, 2007  相似文献   

15.
Thermodynamic properties of the hyperbranched poly (ester amide) (Hybrane® 1200) were investigated by inverse gas chromatography (IGC) using 19 different solvents as the probes at infinite dilution. Retention data of probes were used for an extensive characterization of the polymer, which includes the determination of the Flory‐Huggins interaction parameter, the weight fraction activity coefficient, the total, partial, and additive solubility parameters. The analysis of the results indicated that the additive value of the solubility parameter is lower than the value obtained from a standard procedure. Furthermore, the solubility parameter decreases with increase of temperature. © 2008 Wiley Periodicals, Inc. J Polym Sci Part B: Polym Phys 46: 2166–2172, 2008  相似文献   

16.
以正十八胺为核的1.0代超支化大分子和β-(3,5-二叔丁基-4-羟基苯基)丙酰氯为原料,通过酰胺化缩合反应,合成了一种具有长链烷基和2个受阻酚基团的新型超支化分子桥联受阻酚类抗氧化剂.通过正交实验确定了超支化分子桥联受阻酚类抗氧化剂的最佳合成体系为:3,5-丙酰氯为酰化剂、K_2CO_3为缚酸剂、苯和水为反应溶剂.通过条件优化实验确定了超支化分子桥联受阻酚类抗氧化剂的最佳合成条件为:3,5-丙酰氯与1.0代超支化大分子的物质的量比为6∶1、反应温度为25 ℃、反应时间为12 h、体系苯与水体积比为6∶1、3,5-丙酰氯与缚酸剂K_2CO_3的物质的量比为1∶1,在此条件下,超支化分子桥联受阻酚类抗氧化剂的收率高达75.5%.FT-IR和1H NMR证实了合成抗氧化剂的化学结构与其理论结构相符.超支化分子桥联受阻酚类抗氧化剂在聚乙烯树脂中的抗氧化性能优于抗氧化剂1076,且随着烷基链长度的增加,抗氧化性能增强.  相似文献   

17.
The confined space produced during the polymerization has access for all small organic molecules or oligomers with small size to enter this confined space; however, it can prevent the macromolecules with big size from entering. Therefore, the reaction between two branched macromolecules is excluded in A2+B3 polymerization system, resulting uncrosslinked branched polymers, and there was no gel point observed throughout the polymerization. © 2008 Wiley Periodicals, Inc. J Polym Sci Part A: Polym Chem 46: 1730–1737, 2008  相似文献   

18.

Hyperbranched poly(amido amine) (h‐PAMAM) was synthesized from different feed ratios of diethylene triamine and methyl acrylate by the simple one‐pot and commercial synthesis method. Reaction procedures and products were intensively studied by FTIR, inherent viscosity and fluorescence techniques. The ill‐structured h‐PAMAM shared similar chemical and physical properties with well defined poly(amido amine) (PAMAM) dendrimers in generation 2 or 3. Its strong fluorescence properties were influenced by pH values, solvents, concentrations, terminal groups and other factors.  相似文献   

19.
End‐capped carbosilane macromolecules were prepared via the hydrosilation and continual addition of phenylethynyl, amine, bis(trimethylsilyl)amine, and cholesterol groups on the AB3‐type hyperbranched carbosilane polymer. The matrix‐assisted laser desorption/ionization time‐of‐flight mass spectroscopic views of the end‐capped hyperbranched carbosilanes agreed with the expected mass distribution, in close regularity. © 2001 John Wiley & Sons, Inc. J Polym Sci Part A: Polym Chem 39: 3287–3293, 2001  相似文献   

20.
In this study, two types of hyperbranched (HB) polythioether could readily be achieved in a short time at ambient temperature through a thiol-Michael addition reaction. Dimethyl acetylenedicarboxylate (DMADC) or methyl propiolate (A2) and trimethylolpropane tris(3-mercaptopropionate) (B3) monomers were reacted using an organobase 1,5,7-triazabicyclo[4.4.0]dec-5-ene (TBD) as a catalyst in chloroform at room temperature to provide subsequent HB polythioethers. The effect of TBD concentration on the polymerization was studied for the DMDAC case monitoring the molecular weight evolution against time. HB polythioethers were characterized using spectroscopic (nuclear magnetic resonance) and chromatographic (gel permeation chromatography with refractive index and light-scattering detectors) techniques. © 2020 Wiley Periodicals, Inc. J. Polym. Sci. 2020 , 58, 824–830  相似文献   

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