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1.
螯合吸附材料PAO/SiO_2对重金属离子的螯合吸附行为   总被引:2,自引:0,他引:2  
将丙烯腈接枝聚合在微米级硅胶微粒表面,经偕胺肟化转变,制得了接枝有聚偕胺肟(PAO)的复合型螯合吸附材料PAO/SiO2。本文重点考察了螯合吸附材料PAO/SiO2对几种重金属离子的螯合吸附行为,深入地研究了吸附机理。研究结果表明,偕胺肟基团与重金属离子之间的静电作用与配位螯合作用的协同,导致PAO/SiO2对重金属离子产生强的螯合吸附作用。在可抑制金属离子水解的pH范围内,介质的pH值越高,PAO/SiO2的螯合吸附能力越强;PAO/SiO2对性质不同的金属离子的吸附性能是有差别的,吸附容量的顺序为Cu2+Ni2+Pb2+Cd2+。  相似文献   

2.
以硫酸铈铵为引发剂,实施了丙烯腈(AN)在交联聚乙烯醇(CPVA)微球表面的接枝聚合,制备了接枝微球CPVA-g-PAN,然后以盐酸羟胺为试剂,通过偕胺肟(AO)化转变,将接枝的PAN转变为聚偕胺肟(PAO),制得了接枝有聚偕胺肟的功能微球CPVA-g-PAO,采用红外光谱(FTIR)法、扫描电子显微镜(SEM)及zeta电位测定等法,对功能微球CPVA-g-PAO的化学结构及物理化学特性进行了表征,重点考察了各主要因素对接枝PAN的偕胺肟化转变反应的影响,也以脲酸为模型分子,初探了功能微球CPVA-g-PAO对生物分子的吸附性能.实验结果表明,在腈基的偕胺肟转变反应中,介质pH与反应温度是两个主要影响因素,对于本研究体系,适宜的反应条件是温度70℃,介质pH=6~7.在此条件下,反应4h,可使腈基转化率达到72%.在较大的pH范围内,功能微球CPVA-g-PAO的zeta电位为数值较大的正值,对内源性代谢毒素分子脲酸具有很强的吸附作用,吸附容量达95mg/g。  相似文献   

3.
使含有氨基的改性硅胶微粒表面的氨基与溶液中的过硫酸盐构成氧化-还原引发体系,实施了甲基丙烯酸二甲基氨基乙酯(DMAEMA)在硅胶微粒表面的引发接枝聚合,制得接枝微粒PDMAEMA/SiO2;又以氯乙胺为试剂,使接枝的大分子PDMAEMA的叔胺基团发生季铵化反应,实现了接枝微粒PDMAEMA/SiO2的季铵化(Quaternization)转变,制得了阳离子性功能接枝微粒QPDMAEMA/SiO2。采用红外光谱(FTIR)、扫描电子显微镜(SEM)及Zeta电位测定等多种手段对两种微粒进行了表征。主要研究了温度对接枝聚合和季铵化转变反应的影响,优化了反应条件。还考察了功能接枝微粒QPDMAEMA/SiO2对阿魏酸的子吸附性能。研究结果表明,采用-NH2//S2O82-表面引发体系,可有效地实现DMAEMA的接枝聚合,适宜的反应温度为35℃;氯乙胺与接枝微粒叔胺基团之间的季铵化反应可顺利进行,适宜的反应温度为60℃,叔胺基团的季铵化度可达82%。凭借主-客体之间的强静电相互作用并协同以阳离子-π相互作用,功能接枝微粒QPDMAEMA/SiO2对阿魏酸可产生很强的吸附作用,在中性条件下,吸附容量高达187mg/g。  相似文献   

4.
通过用表面引发接枝聚合和高分子反应制备8-羟基喹啉型复合螯合微粒.首先使用γ-氨丙基三甲氧基硅烷(AMPS)对微米级硅胶微粒进行表面改性,制得改性微粒AMPS-SiO2;使改性微粒AMPS-SiO2表面的氨基与溶液中的过硫酸盐构成氧化-还原引发体系,实施了甲基丙烯酸羟乙酯(HEMA)在硅胶微粒表面的高效引发接枝聚合,制得了接枝微粒PHEMA/SiO2.又以5-氯甲基-8-羟基喹啉(CHQ)为试剂,使接枝的PHEMA发生大分子反应,实现了接枝微粒PHEMA/SiO2的8-羟基喹啉功能化转变,制得了复合微粒HQ-PHEMA/SiO2.采用多种手段对两种微粒进行了表征,重点研究了氨基-过硫酸盐表面引发接枝体系的接枝聚合机理,并研究了CHQ与接枝PHEMA的醇羟基之间取代反应的机理,还初步考察了功能微粒HQ-PHEMA/SiO2对重金属离子的螯合吸附性能.研究结果表明,氨基-过硫酸盐表面引发接枝聚合体系具有很高的引发活性,在室温(30℃)即可制得高接枝密度(40 g/100g)的接枝微粒PHEMA/SiO2;CHQ与接枝PHEMA的醇羟基之间的取代反应遵循SN1的反应历程,使用强极性溶剂有利于反应的进行.微粒HQ-PHEMA/SiO2对重金属离子呈现很强的螯合吸附能力,是一种功能复合微粒.  相似文献   

5.
首先使用偶联剂γ-氨丙基三甲氧基硅烷(AMPS)对微米级硅胶微粒进行了表面改性,制得表面带有伯胺基的改性微粒SiO2-AMPS,接着使4-(二乙氨基)水杨醛(DEAS)与微球SiO2-AMPS发生席夫碱反应,制得表面含有芳叔胺基的改性微粒SiO2-DEAS.使改性微粒SiO2-DEAS表面的芳叔胺基团与溶液中的BPO构成氧化-还原引发体系,实现了油溶性单体苯乙烯(St)在硅胶微粒表面的引发接枝聚合,制得了高接枝度(27 g/100g)的接枝微粒SiO2-DEAS-g-PSt.采用红外光谱(FTIR)、扫描电镜(SEM)及热重分析(TGA)等方法对接枝微粒SiO2-DEAS-g-PSt进行了表征.在此基础上,重点研究了主要因素对芳叔胺-BPO体系引发St接枝聚合的影响.研究结果表明,与在固体微粒表面引入可聚合双键的"穿过接枝"(grafting through)法相比,芳叔胺-BPO体系引发的接枝聚合,由于活性位点位于载体表面,故具有高的接枝度,是油溶性单体的一种高效率的表面引发接枝法.为制得高接枝度的接枝微粒SiO2-DEAS-g-PSt,适宜的温度为50℃,适宜的BPO用量为单体的3 wt%左右,适宜的单体浓度为10 wt%.  相似文献   

6.
使用偶联剂γ-巯丙基三甲氧基硅烷(MPMS,KH-590),对微米级硅胶微粒进行了表面化学改性,制得了表面带有巯基的改性微粒MPMS-SiO2.使改性微粒MPMS-SiO2表面的巯基与溶液中的BPO构成氧化-还原引发体系,实现了油溶性单体甲基丙烯酸缩水甘油酯(GMA)在硅胶微粒表面的引发接枝聚合,制得了接枝度为26g/100g的接枝微粒PGMA/SiO2.采用红外光谱(FTIR)、扫描电镜(SEM)及热重分析(TGA)等方法对接枝微粒PGMA/SiO2进行了表征。在此基础上,重点研究了主要因素对巯基-BPO体系引发GMA接枝聚合的影响.研究结果表明,巯基-BPO体系引发的接枝聚合,由于活性位点位于固体表面,因此也是一种表面引发接枝法。与在固体微粒表面引入可聚合双键的"穿过接枝"("grafting through")法相比,巯基-BPO引发体系可更有效地实现油溶性单体的接枝聚合.为制得高接枝度的接枝微粒PGMA/SiO2,适宜的温度为55℃,适宜的BPO用量为单体的1wt%左右,适宜的单体浓度为10 wt%。  相似文献   

7.
使用偶联剂γ-巯丙基三甲氧基硅烷(MPMS,KH-590),对微米级硅胶微粒进行了表面化学改性,将巯基引入硅胶微粒表面(SiO2-MPMS),构成巯基-Ce(Ⅳ)盐氧化-还原引发体系,探索研究了丙烯腈在硅胶微粒表面的引发接枝聚合,制得了高接枝度(30 g/100g)的接枝微粒SiO2-MPMS-g-PAN.采用红外光谱(FTIR)、扫描电镜(SEM)及热重分析(TGA)等方法对接枝微粒SiO2-MPMS-g-PAN进行了表征.在此基础上,重点研究了主要因素对巯基-Ce(Ⅳ)盐体系引发AN接枝聚合的影响.研究结果表明,类似于羟基-Ce(Ⅳ)盐体系,巯基-Ce(Ⅳ)盐体系也可以有效地引发乙烯基单体在固体微粒表面接枝聚合.与在固体微粒表面引入可聚合双键的"grafting through"接枝聚合法相比,铈盐引发的接枝聚合,由于活性位点居于载体表面,故具有高的接枝度,是一种高效率的表面引发接枝法.为制得高接枝度的接枝微粒SiO2-MPMS-g-PAN,本研究体系适宜的酸浓度为0.25 mol/L;Ce(Ⅳ)盐浓度为5.0×10-3 mol/L;接枝聚合宜在50℃下进行.  相似文献   

8.
李丁  高保娇  位霄鹏 《应用化学》2011,28(2):154-158
将偶联剂γ-氨丙基三甲氧基硅烷(AMPS)键合在硅胶微粒表面,得到改性微粒AMPS-SiO2;使改性微粒表面的氨基与溶液中的过硫酸铵构成氧化-还原引发体系,实现了甲基丙烯酸(MAA)在硅胶微粒的表面引发接枝聚合,制得了高接枝度(0.30 g/g)的接枝微粒SiO2-g-PMAA;研究了影响表面引发接枝聚合的主要因素。 结果表明,适宜的温度为40 ℃。 已接枝到硅胶表面的聚合物层对后续的接枝聚合产生阻隔作用。 适宜的引发剂用量为单体质量的1.1%,适宜的单体质量分数为5%左右。  相似文献   

9.
胡伟民  高保娇  曹林交 《化学通报》2013,(12):1098-1104
使用偶联剂γ-氨丙基三甲氧基硅烷(AMPS)对微米级硅胶微粒进行表面化学改性,将氨基引入硅胶微粒表面,构成氨基-Ce(Ⅳ)盐氧化-还原引发体系。研究了在其作用下对苯乙烯磺酸钠(SSS)在硅胶微粒表面的接枝聚合,制得了具有较高接枝度(18g/100g)的接枝微粒PSSS/SiO2。采用FTIR、SEM及TGA等方法对接枝微粒进行表征。考察了对该表面引发接枝聚合体系接枝度影响的主要因素。结果表明,氨基-Ce(Ⅳ)盐体系可以有效地引发乙烯基单体在固体微粒表面的接枝聚合,氨基的质子化对产生自由基的引发步骤具有负影响;为提高PSSS的接枝度,引发剂溶液(铈盐+硫酸)宜采用滴加的方式加入;适宜的单体浓度为14(wt)%;接枝聚合宜在50℃下进行。接枝微粒PSSS/SiO2是一种功能复合微粒,凭借离子交换作用,对重金属离子和稀土离子均可产生强的吸附作用。  相似文献   

10.
高学超  高保娇  牛庆媛  赵婧 《化学学报》2010,68(11):1109-1118
将丙烯腈接枝聚合于硅胶微粒表面, 然后将接枝的聚丙烯腈转化为聚偕胺肟(PAO), 制得了功能接枝微粒PAO/SiO2. 采用本课题组建立的新型分子表面印迹技术, 以稀土钆离子为模板离子, 戊二醛为交联剂, 对接枝在硅胶表面的PAO大分子链进行了离子印迹(IIP), 制备了钆离子表面印迹材料IIP-PAO/SiO2. 以与钆元素相邻的稀土元素铕及钐的离子为对比物, 采用静态与动态两种方法, 考察研究了表面印迹材料IIP-PAO/SiO2对钆离子的结合性能与离子识别特性. 研究结果表明, 离子表面印迹材料IIP-PAO/SiO2对钆离子具有特异的识别选择性与优良的结合亲和性. 相对于离子半径与其仅差1~3 pm的相邻稀土离子铕离子及钐离子, IIP-PAO/SiO2对钆离子的识别选择性系数分别为7.49与7.93. 此外, 印迹材料IIP-PAO/SiO2还具有良好的洗脱性能, 以稀盐酸溶液作为洗脱液, 29个床体积内解吸率可达99.54%.  相似文献   

11.
含偕胺肟基螯合纤维的制备及结构和性能的研究   总被引:4,自引:0,他引:4  
通过羟胺与聚丙烯腈的反应制得含偕胺肟基螯合纤维,当腈基转化率为53.7%时,纤维对Au~(3+)的吸附量达626.7mg/g.对反应条件、纤维结构和性能相互关系的研究表明,聚丙烯腈的超分子结构致密性及序态越低越有利于反应;处理过程中,纤维蕴晶区在70℃时开始融化;纤维中偕胺肟基含量随羟胺浓度提高或反应时间延长而提高到一定值后变化趋于平缓,当反应温度高于70℃时,随反应温度升高而提高;纤维断裂强度随反应时间延长而下降;当反应温度高于70℃时明显下降。为获得偕胺肟基含量高、力学性能良好的纤维,聚丙烯腈纤维的偕胺肟化反应宜在略低于70℃的温度下以较短时间进行.  相似文献   

12.
采用"接出(grafting from)"方式,在溶液聚合体系中将苯乙烯(St)接枝聚合在微米级硅胶表面,制备了接枝微粒PSt/SiO2;使用新型氯甲基化试剂1,4-二氯甲氧基丁烷,对接枝在硅胶表面的聚苯乙烯进行了氯甲基化(CM)反应,制得了氯甲基聚苯乙烯/硅胶(CMPS/SiO2)复合微粒.采用热重分析(TG)测定了PSt/SiO2的接枝度,并使用扫描电子显微镜(SEM)观察了其形貌;通过红外光谱法(FTIR)与佛尔哈德分析法表征了CMPS/SiO2的化学结构与组成.重点考察了各种因素对PSt/SiO2氯甲基化反应过程的影响规律.研究结果表明,CMPS/SiO2的制备不仅具有绿色环保的特点,而且反应容易控制.反应时间、溶剂种类与用量、催化剂种类与用量及氯甲基化试剂的用量等因素均会对该复合微粒的制备产生影响,如影响CMPS/SiO2的氯甲基化程度;抑制或促进已接枝的PSt大分子链之间通过Friedel-Crafts反应发生交联.若选用SnCl4为催化剂,以CH2Cl2为溶剂,在室温下反应10 h左右,可制得氯含量接近16 wt%(以接枝的PSt为基准计算)的CMPS/SiO2.  相似文献   

13.
A study was made of the ceric ammonium nitrate-initiated graft polymerization of acrylonitrile (AN) onto a number of modified starches that had been reduced in molecular weight by either acid, hypochlorite, or enzyme treatment. With highly soluble starches, much of the starting material was recovered as ungrafted carbohydrate, and the reaction product was largely dimethylformamide-soluble polymer with a high polyacrylonitrile (PAN) content. The molecular weight of grafted PAN was lower when the modified starches existed as granules in water dispersion; however, heating (60°C) an aqueous slurry of an acid-modified corn starch (with intact granules) before the reaction had relatively little effect on the composition of the copolymer. Decreasing the concentrations in water of modified starch and AN resulted in more frequent and lower molecular weight grafts of PAN. Aqueous methanol as a reaction medium for an acid-modified starch with intact granules led to more frequent grafting of lower molecular weight PAN than when water alone was used. The number of grafted chains, however, was fewer than found with unmodified wheat starch under comparable conditions. A modified starch with the granule structure completely broken down gave no detectable reaction in aqueous methanol.  相似文献   

14.
The polyethylene (PE) adsorbents were prepared by a radiation-induced grafting of acrylonitrile (AN), acrylic acid (AA), and the mixture of AN/AA onto PE film, and by subsequent amidoximation of cyano groups of poly-AN graft chains. With an increase of AA composition in AN/AA monomer mixture, the water uptake of the grafted polyethylene film increased. In AN/AA mixture, the maximum adsorption of UO2+2 was observed in the adsorbent with a ratio of AN/AA (50/50, mol%) in copolymer. The amidoxime, carboxyl, and amidoxime/carboxyl groups onto PE acted as a chelating site for the selected UO2+2. The complex structure of polyethylene with three functional groups and UO2+2 was confirmed by Fourier Transform Infrared (FTIR) spectroscopy.  相似文献   

15.
Polyamidoxime chelating resin was obtained from polyacrylonitrile (PAN) grafted starch. The nitrile groups of the starch-grafted polyacrylonitrile (St-g-PAN) were converted into amidoximes by reaction with hydroxylamine under basic conditions. The synthesized graft copolymer and polyamidoxime were characterized by FTIR, TGA and elemental microanalysis. Metal chelation of the polyamidoxime resin with iron, copper and zinc has been studied. The produced metal-polyamidoxime polymer complexes were used as catalysts for the oxidation of phenol using H(2)O(2) as oxidizing agent. The oxidation of phenol depends on the central metal ion present in the polyamidoxime complex. Reuse of M-polyamidoxime catalyst/H(2)O(2) system showed a slight decrease in catalytic activities for all M-polyamidoxime catalysts.  相似文献   

16.
Interpenetrating Polymer Networks (IPNs) based on Poly n-vinyl 2-pyrrolidone (PVP) and Acrylonitrile (AN) were prepared by irradiating PVP solutions prepared in AN. PVP/AN mixtures were irradiated by 60Co-γ rays at room temperature at a dose rate of 0.5 kGy/hour. IPNs were characterized by using FT-IR and Thermal Analysis techniques. The chelating adsorbents containing amidoxime groups were prepared by the reaction of these IPNs with hydroxylamine in aqueous NaOH solution at 50°C. These amidoxime containing adsorbents were used in adsorption studies for the recovery of uranium from aqueous systems. The adsorption capacity of an IPN with equivolume fraction of PVP and amidoximated PAN was found to be 750mg UO22+/g dry amidoximated IPN.  相似文献   

17.
Polyacrylonitrile (PAN) was grafted from surfaces of chloro‐modified silica‐gel with their surface chlorines as initiation sites, using an iron (III)‐mediated surface‐initiated atom transfer radical polymerization (ATRP) with activators regenerated by electron transfer (SI‐ARGET ATRP) method. The graft reaction exhibits first‐order kinetics with respect to the polymerization time in the low‐monomer‐conversion stage. The conversion of monomer (C%) and the percentage of grafting (PG%) increased with increasing of the polymerizing time and reached 23 and 730% after a polymerizing time of 24 hr, respectively. Hydroxylamine (NH2OH·HCl) was used to modify the cyano groups of SG‐g‐PAN to obtain amidoxime (AO) groups. The AO SG‐g‐PAN was used to remove Hg2+. The adsorption kinetics indicated that the pseudo‐second‐order model was more suitable to describe the adsorption kinetics of AO SG‐g‐PAN for Hg2+. The adsorption isotherms demonstrated that Langmuir model was much better than Freundlich model to describe the isothermal process. Copyright © 2010 John Wiley & Sons, Ltd.  相似文献   

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