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1.
合成了晶态层状有机-无机多功能材料苯乙烯基膦酸-磷酸氢锆(α-ZPPVPA),并研究了正丁胺(BA)对α-ZPPVPA的插层性能。用元素分析、XRD、IR、TG、SEM和TEM等分析方法对α-ZPPVPA及其插层化合物α-ZPPVPA-BA进行了结构表征和形貌分析。结果表明,正丁胺成功地插入了α-ZPPVPA层板之间,层间距为2.41 nm,正丁胺的插入使α-ZPPVPA的层间距(1.66 nm)增大了0.75 nm,插入的正丁胺在α-ZPPVPA中呈双分子层排列,且苯乙烯基侧链不饱和双键的存在不影响α-ZPPVPA与正丁胺的插层反应。  相似文献   

2.
采用IR、XRD、SEM、EDS、DT-TG和滴定实验等技术手段研究主体三聚磷酸二氢铝(ATP)与客体甲胺、乙胺、正丙胺和正丁胺等有机胺的插层反应特性。 实验结果表明,ATP与甲胺、乙胺、正丙胺、正丁胺发生了化学反应,有机胺中的N与ATP层间-OH上的H形成配位键。 这些有机胺通过插层反应改变了ATP的酸性、层间距和热分解温度,但没有改变颗粒的层状形貌。 层间距从0.795 nm增大至1.71 nm,层间距d与有机胺的碳原子数Cn呈线性关系:d=0.229Cn+0.811,R2=0.9986。 有机胺分子链越长则越具有剥离倾向。  相似文献   

3.
分别采用溶液搅拌和超声的方法,研究了有机正丁胺分子对苯膦酸铜的插层反应.对插层复合物进行了红外光谱(IR)、X射线粉末衍射(XRD)和热重分析等测试及结构分析.结果表明,有机正丁胺的插入使得苯膦酸铜的层间距增大.  相似文献   

4.
采用直接插入法制备了六氢吡啶(HHP)对α-Zr(HPO4)2·H2O(α-ZrP)的超分子插层复合物α-ZrP-HHP。用元素分析、红外光谱(IR)、X射线粉末衍射(XRD)和TG-DSC热分析等手段表征其结构,结果表明,六氢吡啶的插入使层间距增大了0·59nm,插入的六氢吡啶客体分子在主体底物中形成双分子层。研究了α-ZrP-HHP对含酚类物质(包括苯酚、4-氯苯酚、2,4-二氯苯酚)废水的吸附,结果表明,α-ZrP-HHP对上述三种酚类物质的吸附量呈如下规律:2,4-二氯苯酚>4-氯苯酚>苯酚。  相似文献   

5.
以三氧化钼为无机主体, 用十二烷基胺对三氧化钼层间进行改性, 成功地制备了三氧化钼/苯胺层状复合材料. X射线衍射、元素分析、扫描电子显微镜、红外光谱测试及差热分析结果表明, 苯胺分子已成功地插入三氧化钼层间, 所得复合物化学式为[ANI]0.4MoO3. 插层后, 三氧化钼仍保持规则有序的层状结构, 其层间距扩大至1.318 nm. 讨论了无机主体与有机客体之间的相互作用、苯胺在层间的可能排布形式以及苯胺插入层间的反应机理.  相似文献   

6.
通过硝酸根插层层状双金属氢氧化物(LDH)与可逆加成-断裂链转移(RAFT)试剂S,S’-对(α,α’-二甲基-α″-乙酸)三硫代碳酸酯(CTA)阴离子的离子交换制备CTA阴离子插层LDH,再通过原位RAFT活性自由基聚合制备偏氯乙烯-丙烯酸甲酯(VDC-MA)共聚物/LDH纳米复合材料.采用傅里叶变换红外光谱、元素分析和X-射线衍射、透射电子显微镜、凝胶渗透色谱仪和热失重仪表征了CTA阴离子插层LDH和纳米复合材料的结构和性能.结果表明,CTA阴离子可以置换硝酸根阴离子插入到LDH层间,LDH层间距由0.89 nm增大到1.50 nm;在原位RAFT聚合过程中,LDH逐渐剥离,LDH以纳米层板形式分散在VDC-MA共聚物基体中;VDC-MA共聚物数均分子量随加入的插层CTA阴离子含量增加而减小,聚合具有活性特征.此外,含量LDH的引入可明显提高VDC-MA共聚物的热稳定性.  相似文献   

7.
10-羟基喜树碱-癸二酸-LDH杂化物的制备及性能   总被引:1,自引:0,他引:1  
采用二次插层法成功制备了10-羟基喜树碱(HCPT)-癸二酸(SC)插层的层状双金属氢氧化物(LDH). 先采用共沉淀法制备SC柱撑LDH杂化物(SC-LDH), 再在乙醇介质中将HCPT插入LDH层间形成HCPT-SC-LDH纳米杂化物. 依据SC和HCPT的分子尺寸和纳米杂化物的通道高度, 推测SC分子在层间可能为双层排列, SC分子两端的羧基同时键合在同一个LDH层片表面上; HCPT分子插入(或溶入)SC分子碳氢链形成的疏水区中. 所制备的纳米杂化物既可稳定HCPT的内酯环, 又可明显提高HCPT的溶解度, 还具有明显的药物缓释效果, 其释放动力学过程符合准二级动力学方程.  相似文献   

8.
水溶性阳离子型卟啉对层状磷酸锆插层行为的研究   总被引:4,自引:0,他引:4  
王海燕  韩大雄  相明辉  彭涛  李娜  李克安 《化学学报》2005,63(14):1361-1364
比较了水溶性卟啉meso-四(4-N-甲基吡啶基)卟啉(TMPyP)对具有不同层间距和结构的层状磷酸锆[α-磷酸锆(α-ZrP)和γ-磷酸锆(γ-ZrP)]的插层行为. 研究发现: 相比α-磷酸锆, γ-磷酸锆虽然具有相对较大的层间距, 但同α-磷酸锆一样, TMPyP不能直接嵌入其中. 为嵌入TMPyP, 用预撑剂正丁胺(BA)处理磷酸锆. TMPyP可以嵌入α-ZrP•BA和α-ZrP•2BA(分别为单层丁胺和双层丁胺嵌入α-磷酸锆而形成的插层化合物), 其中, TMPyP以较短的时间与单层排列的丁胺交换而嵌入磷酸锆; 而卟啉却不能嵌入具有较大层间距的γ-ZrP•2BA(双层丁胺嵌入γ-磷酸锆而形成的一种很稳定的形式), 表明预撑剂在磷酸锆层板间的流动性是影响卟啉嵌入的一个重要因素. 另外, 结合XRD、红外、可见吸收等实验数据和α-磷酸锆层板高电荷密度的特性, 我们可推算出: TMPyP以自由碱的形式呈单层倾斜方式紧密堆积在α-磷酸锆层板间.  相似文献   

9.
以剥层重堆法制备了NH 4/MoS2插层复合物,该复合物可以作为长期储存的单层MoS2,同时也可作为先驱体以便插入其它客体分子制成新的插层复合物.通过XRD、热重分析和元素分析等测试技术对该插层复合物进行了表征.结果表明,MoS2经NH 4插层后,其层间距由0.615nm增加到0.954nm,由元素分析和热重分析得出插层复合物的组成分别为(NH 4)3.1 MoS2 和(NH 4 )2.9 MoS2 . 插层复合物在空气中放置30 d后,其XRD和热重分析的结果表明该插层复合物的储存稳定性良好. 此外,插层复合物的插层程度受氯化铵溶液浓度、反应温度、反应时间等反应条件的影响,质量分数为1.0%的氯化铵溶液, 反应温度30 ℃和反应时间12 h,所得到的NH 4 /MoS2插层复合物层间距最大.  相似文献   

10.
晶态层状(甘氨酸-N;N-双亚甲基膦酸-磷酸氢)锆的制备和插层;(甘氨酸-N;N-双亚甲基膦酸-磷酸氢)锆; 正丁胺; 插层  相似文献   

11.
Intercalation of basic amino acids into layered zirconium proline-N-methylphosphonate phosphate (α-ZPMP) was investigated at room temperature. Three kinds of host-guest compounds were prepared and characterised by elemental analysis, inductively coupled plasma analysis (ICP), Fourier transform infrared spectrum (FT-IR), Raman spectrum, X-ray powder diffraction (XRD) and thermoanalysis. The interaction of amino acid guests with P-OH of α-ZPMP host was documented by FT-IR and Raman spectra. In addition, the XRD patterns indicated that l-arginine or l-lysine were intercalated into the interlayer galleries of α-ZPMP host; the interlayer distances of the Larginine and l-lysine intercalation compounds were expanded from 1.520 nm to 2.218 nm and 2.207 nm, respectively. l-arginine and l-lysine would be arranged as a mono-molecule layer in different orientations. The interlayer distance of l-histidine (d = 1.522 nm) was similar to that of α-ZPMP host (d = 1.520 nm), l-histidine might be adsorbed on the outer surface of the α-ZPMP host. Thermoanalysis showed that the intercalated l-arginine and l-lysine were removed at 110–305°C or 150–250°C, respectively, the adsorbed l-histidine was released at a temperature of up to 320°C.  相似文献   

12.
聚合物/层状无机物纳米复合材料因具有常规复合材料所没有的结构、形态及较常规聚合物基复合材料更优异的性能而引起人们的广泛关注.α-磷酸锆(α-ZrP)作为一种合成的结构规整的层状无机物,其离子交换容量(600mmol/100g)是粘土的6倍,并具有长径比可控和粒子尺寸分布较窄等特点,是制备聚合物/层状无机物纳米复合材料的优良基体.以往的研究工作主要集中于金属氧化物/α-ZrP层柱材料和聚电解质膜两类复合材料,有关聚合物/α-ZrP插层复合材料的研究报道较少.聚丙烯酰胺(PAM)是一种具有广泛用途的水溶性高分子,作为聚电解质,  相似文献   

13.
An organic UV absorbent has been intercalated into a layered double hydroxide (LDH) host by ion exchange of a Zn-Al-LDH-nitrate precursor with a solution of 2,3-dihydroxynaphthalene-6-sulfonic acid (DNSA) sodium salt in water. After intercalation of the UV absorbent, the powder X-ray diffraction (XRD) pattern shows that the interlayer distance in the LDHs increases from 0.90 to 1.59 nm. The possible structure is that the interlayer DNSA anions arrange in a monolayer and in a perpendicular orientation toward the hydroxide layers. Infrared spectra and TG-DTA curves reveal the presence of a complex system of supramolecular host-guest interactions between layers. The thermal stability of the intercalated UV absorbent was investigated by TG-DTA and it was found that this material is more stable than the original organic UV absorbent at high temperature, showing that the thermostability is markedly enhanced after intercalation into the LDH host. The UV absorbent-intercalated LDHs exhibit excellent UV photostability in polypropylene composites.  相似文献   

14.
Crystalline -zirconium phenylphosphonate phosphate was prepared according to Yamanaka's method and the intercalation behavior of n-alkylamines and n-alkyldiamines were investigated. In the case of n-alkylamines, a linear increase in interlayer distance was observed up to a carbon atom number of 12, whereas in n-alkyldiamines, only two di-amines, ethylenediamine and propylenediamine, were intercalated with respective increases in the interlayer distance. The increment of interlayer distance in both monoamines and diamines indicates the formation of a monomolecular layer in the interlayer region of the host, in contrast to the case in -zirconium phosphate as a host.  相似文献   

15.
The intercalation of non-ionized guest pentoses (ribose and 2-deoxyribose) into the Mg-Al and Zn-Al layered double hydroxides (LDHs) was carried out at 298 K by the calcination-rehydration reaction using the Mg-Al and Zn-Al oxide precursors calcined at 773 K. The resulting solid products reconstructed the LDH structure with incorporating pentoses, and the maximum amount of ribose intercalated by the Mg-Al oxide precursor was approximately 20 times that by the Zn-Al oxide precursor. The ribose/Mg-Al LDH was observed to have the expanded LDH structure with a broad (003) spacing of 0.85 nm. As the thickness of the LDH hydroxide basal layer is 0.48 nm, the interlayer distance of the ribose/Mg-Al LDH is 0.37 nm. This value corresponds to molecular size of ribose in thickness (0.36 nm), supporting that ribose is horizontally oriented in the interlayer space of LDH. The maximum amount of ribose intercalated by the Mg-Al oxide precursor was approximately 5 times that of 2-deoxyribose. Ribose is substituted only by the hydroxyl group at C-2 position for 2-deoxyribose. Therefore, the number of hydroxyl group of sugar is essentially important for the intercalation of sugar molecule into the LDH, suggesting that the intercalation behavior of sugar for the LDH was greatly influenced by hydrogen bond between hydroxyl group of the intercalated pentose and the LDH hydroxide basal layers.  相似文献   

16.
This paper reports on the swelling and exfoliation behavior of a layered protonic manganese oxide, H(0.13)MnO(2).0.7H(2)O, in a solution of tetrabutylammonium (TBA) hydroxide and the formation and characterizations of unilamellar two-dimensional crystallites of MnO(2). At low doses of TBA ions, layered manganese oxide was observed to undergo normal intercalation, yielding a TBA intercalated phase with a gallery height of 1.25 nm. With a large excess of TBA ions, osmotic swelling occurred, giving rise to a very large intersheet separation of 3.5-7 nm. In an intermediate TBA concentration range, the sample exhibited a broad X-ray diffraction profile with superimposed diffraction features due to intercalation and osmotic swelling. The component responsible for the broad profile was isolated by centrifuging the mixture twice at different speeds, and the recovered colloid was identified as a pile of MnO(2) nanosheets, corresponding to the individual host layer of the precursor layered manganese oxide. Observations by transmission electron microscopy and atomic force microscopy revealed high two-dimensional anisotropy with a lateral dimension of submicrometers and a thickness of approximately 0.8 nm. The nanosheet exhibited broad optical absorption with a peak at 374 nm (epsilon = 1.13 x 10(4) mol(-1) dm(3) cm(-1)). The restacking process of the colloidal MnO(2) nanosheets was followed by aging the colloid at a relative humidity of 95%. The broad diffraction pattern due to the exfoliated sheets weakened with time and eventually resolved into two sharp distinct profiles attributable to a TBA intercalation compound with an intersheet spacing of 1.72 nm and an osmotically swollen hydrate with >10 nm at a very early stage. As drying progressed, the former phase became more abundant without a change in interlayer distance, while the degree of swelling of the latter phase gradually decreased to 2.7 nm that remained unchanged on further aging. Subsequent drying at a lower humidity collapsed the 2.7 nm phase. The resulting single 1.72 nm phase was dehydrated by heating at 150 degrees C to produce a phase with a contracted interlayer spacing of 1.3 nm.  相似文献   

17.
An organic UV absorber has been intercalated into a layered double hydroxide (LDH) host by ion-exchange method using ZnAl-NO3-LDH as a precursor with an aqueous solution of the sodium salt of 5-benzotriazolyl-4-hydroxy-3-sec-butylbenzenesulfonic acid (BZO). After intercalation of the UV absorber, the interlayer distance in the LDHs increases from 0.89 to 2.32 nm. Infrared spectra and thermogravimetry and differential thermal analysis (TG-DTA) curves reveal the presence of a complex system of supramolecular host-guest interactions. The thermostability of BZO is markedly enhanced by intercalation in the LDH host. ZnAl-BZO-LDHs/polypropylene composite materials exhibit excellent UV photostability.  相似文献   

18.
利用分子模拟方法研究了十六烷基三甲基溴化铵(C16TAB)分子数对C16TAB/GO插层复合物的结构变化,探讨了C16TAB在GO层间的排列方式,并通过实验数据进行验证。模拟结果表明,优化后GO结构模型的层间距为0.849 nm;C16TAB/GO插层复合物的层间距随着C16TAB分子数的增加呈5个阶梯状逐渐增大,层间距分别为1.56、1.98、2.33、2.76和3.40 nm,插层饱和时C16TAB分子达到28个。实验结果显示,随着C16TAB分子数的增加,C16TAB/GO插层复合物的层间距逐渐增大,插层饱和时为3.40 nm,实验结果与模拟结果能够很好地吻合。C16TAB在GO层间可能的排列方式为1~5层平躺排列或单层平躺、单层倾斜和单层直立,从能量和结构的角度探明了C16TAB在GO层间的最优排列为1~5层平躺排列。  相似文献   

19.
利用分子模拟方法研究了十六烷基三甲基溴化铵(C16TAB)分子数对C16TAB/GO插层复合物的结构变化,探讨了C16TAB在GO层间的排列方式,并通过实验数据进行验证.模拟结果表明,优化后GO结构模型的层间距为0.849 nm;C16TAB/GO插层复合物的层间距随着C16TAB分子数的增加呈5个阶梯状逐渐增大,层间距分别为1.56、1.98、2.33、2.76和3.40 nm,插层饱和时C16TAB分子达到28个.实验结果显示,随着C16TAB分子数的增加,C16TAB/GO插层复合物的层间距逐渐增大,插层饱和时为3.40 nm,实验结果与模拟结果能够很好地吻合.C16TAB在GO层间可能的排列方式为1~5层平躺排列或单层平躺、单层倾斜和单层直立,从能量和结构的角度探明了C16TAB在GO层间的最优排列为1~5层平躺排列.  相似文献   

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