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1.
使用C6H11CO2Na和bipy为配体与Mn(ClO4)2·6H2O在水热条件下反应,制备了双核化合[Mn2(O2CC6H11)2(bipy)4](ClO4)2(C6H11CO2H=环己烷甲酸;bipy=2,2’-联吡啶)。在双核阳离子[Mn2(O2CC6H11)2(bipy)4]2+结构中,锰原子之间通过两个环己烷甲酸根采取顺-反构型连接。该双核分子之间通过π-π堆积和弱C-H…O的氢键形成一个三维超分子网状结构。磁性质研究表明,锰离子之间存在弱反铁磁性耦合。  相似文献   

2.
以取代的二硫代草酰胺根作为桥联配体, 合成了3种新的三核镍配合物[Ni3(Ped)2](ClO4)2(H2O) (1)、[Ni3(Ped)2](NO3)2(H2O) (2)和[Ni3(Ped)2](Ac)2(H2O)2 (3),及2种新的异三核铜镍和铜锰配合物[CuNi2(Ped)2](NO3)2(H2O)2 (4)和[CuMn2(Ped)2](NO3)2(H2O)2 (5) (H2Ped =N,N′-双(2-吡啶乙基)二硫代草酰胺)。通过元素分析、红外光谱、紫外可见光谱、电导、电子顺磁共振谱等对配合物进行了表征,对配合物进行了热分析。测定了配合物(5)的变温磁化率,研究了配合物(5)中Cu(Ⅱ)-Mn(Ⅱ)离子间的磁相互作用,结果表明在Cu(Ⅱ)-Mn(Ⅱ)离子间的磁相互作用具有高自旋基态的非正规自旋态性质。  相似文献   

3.
通过Salen型双肟配体H2L1(H2L1=5,5′-二(N,N′-二乙胺)-2,2′-[乙二氧双(氮次甲基)]二酚)与乙酸铜反应,合成了一种双核铜(Ⅱ)配合物[Cu2(L2)2](H2L2=4-(N,N′-二乙胺)水杨醛O-(2-羟乙基)肟),并对其进行了X-射线衍射单晶结构分析。  相似文献   

4.
桥环和螺环化合物是有机化学中常用的概念而在其他领域鲜有提及。在本研究中,我们将桥环和螺环的概念拓展至超分子化学领域中并提出了相应的构筑策略。在刚性直线型配体中引入额外的螯合位点,通过配位驱动、分步组装的方法合成了复杂的3个有机金属超分子桥环化合物[(Cp*Rh)6(μ-η2-η2-C2O4)2(μ-C2O4)(LA)2](OTf)6(1)、[(Cp*Rh)6(dhbq)2(pyrazine)(LA)2](OTf)8(2)和[(Cp*Rh)6(tpphz)2(bpea)(LA)2](OTf)12(3),以及一个超分子螺环化合物(Cp*Rh)12(bibzim)3Ru (LA)3(LB)3](OTf)10(PF6)4(4),其中LA=3,3′-di (pyridin-4-yl)-2,2′-bipyridine,OTf-=CF3SO3-,dhbq=2,5-dihydroxy-1,4-benzoquinone,tpphz=tetrapyrido[3,2-a∶2′,3′-c∶3″,2″-h∶2'',3''-j]phenazine,bpea=1,2-di (pyridin-4-yl) ethane,bibzim=2,2′-bisbenzimidazole,LB=4,4′-di (pyridin-4-yl)-1,1′-biphenyl。并通过单晶X射线衍射的方法一一表征了它们的单晶结构。  相似文献   

5.
以2-甲基-8-羟基喹啉(HL)为配体合成了2个含有镝离子的配位化合物[Dy2L4(HL)4(H2O)2](ClO4)2·2H2O(1)和[Dy2L6(C2H5OH)]·H2O(2)。虽然在这两个配位化合物中配体都是2-甲基-8-羟基喹啉,但其参与配位的方式不同。这导致2个化合物中镝离子所处的配位环境不同,进而对化合物的磁性产生了影响。  相似文献   

6.
以硫酸镉、叠氮化钠和4-氰基吡啶或3-氰基吡啶为反应物,在水热条件下,通过原位反应分别得到了2个基于硫酸根离子和5-(4-吡啶基)四氮唑(4-Hptz)或5-(3-吡啶基)四氮唑(3-Hptz)配体的,具有三维层-柱状框架结构的无机-有机杂化材料,即[Cd2(H2O)(OH)(SO4)(4-ptz)]n(1)和[Cd2(OH)(SO4)(3-ptz)]n(2)。通过元素分析、红外光谱、热重分析以及单晶和粉末X-射线衍射分析对它们的组成和结构进行了表征。在配合物12的结构中,每个镉(Ⅱ)离子的配位数均为6,处于扭曲的八面体配位环境中,SO42-和OH-阴离子连接镉(Ⅱ)离子扩展形成碱式硫酸镉的二维无机阳离子层结构[Cd2(H2O)(OH)(SO4)]nn+(1)或[Cd2(OH)(SO4)]nn+(2),相邻的二维无机阳离子层间再通过4-ptz-(1)或3-ptz-(2)进一步柱连接,形成三维层-柱状结构的无机-有机杂化框架结构。室温下的固体荧光实验表明,在350nm的光激发下,配合物12分别在481和489nm处出现强烈的荧光发射。  相似文献   

7.
采用两个易扭转异构的双三齿有机配体,双吡啶二甲基-6,6′-二酰肼-2,2′-连吡啶(H2L1)和双吡啶二乙基-6,6′-二酰肼-2,2′-连吡啶(H2L2),和金属镍离子组装得到2个金属螺旋体(helicate),Ni2(HL1)2(PF6)(BF4)(CH3OH)(H2O)2 (1)和Ni2(HL2)(H2L2)(ClO4)3(C2H5OH)(CH3OH)H2O)3 (2),并测定了它们的晶体结构。同时由配体H2L3出发,通过逐级组装的方法,得到一个镍-银杂金属的配位聚合物Ni2Ag2(HL3)2(ClO4)2(CH3CN)3 (3)。单晶结构表明,配位聚合物3中配体H2L3首先与镍离子组装成分子盒化合物(molecular box),该结构单元进一步通过Ag离子与分子盒外围N原子配位,使分子盒互相串连成一维配位聚合物3,分子盒聚集体沿c方向伸展成一维链结构,链与链之间相互平行,进一步堆积成二维孔道结构。  相似文献   

8.
以硫酸镉、叠氮化钠和4-氰基吡啶或3-氰基吡啶为反应物,在水热条件下,通过原位反应分别得到了2个基于硫酸根离子和5-(4-吡啶基)四氮唑(4-Hptz)或5-(3-吡啶基)四氮唑(3-Hptz)配体的,具有三维层-柱状框架结构的无机-有机杂化材料,即[Cd2(H2O)(OH)(SO4)(4-ptz)]n(1)和[Cd2(OH)(SO4)(3-ptz)]n(2)。通过元素分析、红外光谱、热重分析以及单晶和粉末X-射线衍射分析对它们的组成和结构进行了表征。在配合物12的结构中,每个镉(Ⅱ)离子的配位数均为6,处于扭曲的八面体配位环境中,SO42-和OH-阴离子连接镉(Ⅱ)离子扩展形成碱式硫酸镉的二维无机阳离子层结构[Cd2(H2O)(OH)(SO4)]nn+(1)或[Cd2(OH)(SO4)]nn+(2),相邻的二维无机阳离子层间再通过4-ptz-(1)或3-ptz-(2)进一步柱连接,形成三维层-柱状结构的无机-有机杂化框架结构。室温下的固体荧光实验表明,在350 nm的光激发下,配合物12分别在481和489 nm处出现强烈的荧光发射。  相似文献   

9.
合成和表征了5个螺旋配位聚合物{[Cu(Hbpma)(H2O)4]2(SO4)3·3.5H2O}n (1)、{[Ni(Hbpma)(H2O)4]4(SO4)6·10.75H2O}n (2)、{[Mn(Hbpma)(H2O)4](SO4)1.5·3H2O}n (3)、{[Zn(Hbpma)(H2O)4]4(SO4)6·4H2O·4CH3OH}n (4)和{[Cu(Hbpma)2(H2O)2](SO4)2·9H2O}n (5), 其中bpma代表N,N'-双(3-吡啶甲基)胺。晶体结构分析表明配合物1~4为一维链状结构, 配合物5为二维层状结构, 其中金属离子由质子化的bpma配体桥连。值得注意的是, 采取反-反式构象的柔性bpma配体使得配合物12为假螺旋链结构, 配合物34为螺旋链结构, 配合物5为螺旋层结构。同时研究了配合物的磁性和热稳定性。  相似文献   

10.
Three new cobalt complexes were synthesized by solid-state reaction at room temperature. It was found that one mole of complex reacted with two moles of oxygen at room temperature. And the oxygenated complexes [Co·(L1)2·2O2](NO3)2·2H2O (L1=N,N′-bis(4-hydroxyl-3-methoxy-benzyl)-triethylenetetramine), [Co·(L2)2·2O2](NO3)2 ·2H2O (L2=N,N′-bis(4-hydroxyl-benzyl)-triethylenetetramine) and [Co·L3·2O2](NO3)2·2H2O (L3=N,N′-bis(2-hydroxyl-benzyl)-triethylenetetramine) were obtained and characterized by elemental analysis, IR spectra, 1H NMR, TG/DTA, UV-Vis and molar conductance. The coordinated oxygen contents in the oxygenated complex were also determined by weight method. It was found that one O2 molecule coordinated to the Co ion and formed superoxo type oxygenated complex.  相似文献   

11.
We prepared Zn–Al layered double hydroxide (LDH) thin films intercalated with sulfonated 1,3′,3′-trimethyl-6-nitrospiro[2H-chromene-2,2′-indoline] anions (SP-SO3 ?) by immersion of sol–gel derived amorphous Al2O3–ZnO thin films in hot water containing SP-SO3H. Extended interlayer spacing, in comparison to the Zn–Al LDH with carbonate anions, was observed after immersion in distilled water containing SP-SO3H at 60 °C for 30 min, indicating that we formed Zn–Al LDH films with SP-SO3 ? directly on glass substrates. The merocyanine form of SP-SO3 ? was shown by UV spectra to have stabilized in the hydroxide layers of LDH.  相似文献   

12.
Due to their structural merits that arise from their stability and high surface area, the layered double hydroxide (LDH) materials have caused strong attention. These characteristics provided intriguing possibilities with improved efficiency for catalytic applications. In this work, the preparation of 1-butyl-3-methylimidazolium hydroxide ([BMIM]+OH) intercalated by a facile approach in a layered double hydroxide (LDH) matrix is reported and its implementation as a greener catalyst is shown. Different physico-chemical techniques such as XRD, FTIR, TGA, and N2-physisorption, HRTEM, and CO2 adsorption are implemented to characterize the structure of the fabricated catalysts. The [BMIM]+OH/LDH exhibit outstanding catalytic performance in Knoevenagel condensation, resulting from the high LDH surface area and synergistic effects between both the intercalated ionic liquid and LDHs matrix. Knoevenagel’s fabricated catalysts can be exploited to catalyze different condensations and can be reused well. This work therefore generates good opportunities in the field of catalysis for the preparing and implementation of LDH-based catalysts.  相似文献   

13.
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   

14.
On intercalation ofp-toluenesulfonate (PTS) into Mg/Al (0.73/0.27) layered double hydroxide (LDH), the layer expanded from 4.77 Å to 17.7 Å, indicating that the plane of PTS was perpendicular to the plane of the LDH layers. Thermal treatment of the PTS intercalate resulted in 82% of the included PTS being evolved as decomposition products. This value was higher than the value of 32.5% obtained with sodium PTS and 43.8% with a mixed sample of PTS and Mg/Al (0.73/0.27) LDH. It was considered that the intercalated PTS in Mg/Al (0.73/0.27) LDH was easy to decompose because interaction between intercalated PTS and Mg/Al (0.73/0.27) LDH was smaller than that between sodium and PTS in sodium PTS.  相似文献   

15.
Zn-Al-CO(3) layered double hydroxide was synthesized at room temperature using a procedure reported elsewhere. After characterization, 0.5 g of the Zn-Al-CO(3) layered compound was reacted under air with 15 cm(3) of ethylene glycol at 80 degrees C for a period of 5 days. After washing with acetone and drying at 50 degrees C, the resulting white powder was characterized by X-ray powder diffraction, thermal analysis (simultaneous TG/DSC), elemental analysis (C, H, N, Al, and Zn content), and FTIR spectroscopy. All of the experimental data were consistent with the bidentade grafting of ethylene glycol into the interlayer surface of the Al-Zn double hydroxide. The stoichiometry obtained [Zn(0.66)Al(0.34)(OCH(2)CH(2)O)](OH)(0.34).0.4H(2)O] showed that all of the surface hydroxide groups were replaced by ethylene glycol through Al-(Zn)-O-C bonds. Carbonate could not be detected by FTIR, proving that OH(-) was probably the actual intercalated counteranion. Copyright 2000 Academic Press.  相似文献   

16.
10-Hydroxycamptothecin (HCPT) as a hydrophobic anticancer drug brings many challenges in the clinical applications due to its poor water solubility and the presence of a chemically unstable lactone ring. In this work, the nanocomposites of HCPT intercalated layered double hydroxide (LDH) were prepared by a secondary intercalation method, and the encapsulated HCPT could keep the biologically active lactone form. A Zn–Al–NO3 LDH was pillared with sebacate anions by a co-precipitation method in an aqueous medium, and then HCPT was intercalated into the LDH's gallery via hydrophobic interaction in an ethanol medium. The parallel alkyl chains of perpendicularly arranged sebacate anions in the LDH gallery provide a hydrophobic space for the drug intercalation. The in vitro release kinetics of HCPT from the nanocomposites could be fitted with the pseudo-second-order kinetic model, and the diffusion of HCPT through the LDH particles played an important role in controlling the drug release. The nanocomposites can be considered as a potential drug delivery system.  相似文献   

17.
由离子交换法制备4,4′-偶氮二(4-氰基戊酸)根(ACP)单独插层和ACP/对苯乙烯磺酸根(VBS)复合插层的层状双金属氢氧化物(LDH),再通过原位悬浮聚合制得聚苯乙烯(PS)/LDH纳米复合材料,对插层改性LDH和复合材料进行了结构和性能表征.X-射线衍射和元素分析表明ACP可以单独或与VBS一起插入到LDH层间.透射电镜和X-射线衍射分析表明采用ACP/VBS复合插层LDH与苯乙烯原位聚合得到的复合材料中LDH剥离程度高,熔融加工后LDH基本以纳米层板形式分散在PS基体中.LDH的引入可明显提高PS的热稳定性,而熔体流动性下降.  相似文献   

18.
A large anionic pigment has been intercalated into a layered double hydroxide (LDH) host by ion-exchange of an Mg/Al LDH-nitrate precursor with a solution of C.I. Pigment Red 48:2 (the calcium salt of 4-((5-chloro-4-methyl-2-sulfophenyl)azo)-3-hydroxy-2-naphthalene-carboxylic acid), in ethane-1,2-diol. After intercalation of the pigment, the interlayer distance in the LDH increases from 0.86 to 1.72 nm. Infrared spectra and TG-DTA curves reveal the presence of a complex system of supramolecular host-guest interactions. The UV-visible diffuse reflectance spectra of C.I. Pigment Red 48:2 show marked changes after heating at 200 °C and above, whereas there are no significant changes in the spectra of the intercalated pigment after heating at temperatures up to 300 °C, showing that the thermostability is markedly enhanced by intercalation in the LDH host. The pigment-intercalated LDHs exhibits much higher photostability to UV light than the pristine pigment, in the case of both the pure solids and their composites with polypropylene, as shown by measurement of CIE 1976 L*a*b* color difference (ΔE) values.  相似文献   

19.
A two-step photoreaction is induced by irradiation of the PtIV complex trans,cis-[Pt(OCOCH3)2I2(en)] with visible light in the presence of guanosine 5′-monophosphate (5′-GMP; see scheme): A photoinduced ligand exchange followed by photoreduction gives the bis-GMP adduct of [Pt(en)]2+. Although the dihydroxodiiodo complex also undergoes a photoinduced ligand exchange, no reaction with the nucleotide was observed.  相似文献   

20.
The intercalation of amino acids for the Zn-Al-layered double hydroxide (LDH) has been investigated by the calcination-rehydration reaction at 298 K using mainly phenylalanine (Phe) as a guest amino acid. The Zn-Al oxide precursor prepared by the calcination of Zn-Al-carbonated LDH at 773 K for 2 h was used as the host material. The amount of Phe intercalated by the rehydration was remarkably influenced by the initial solution pH and reached ca. 2.7 times for anion exchange capacity (AEC) of the LDH at neutral and weak alkaline solutions, suggesting that Phe was intercalated as amphoteric ion form into the LDH interlayer. As Phe is intercalated for the LDH as monovalent anion in alkaline solution, the amount of Phe intercalated at pH 10.5 corresponded with AEC of the LDH. The solid products were found to have the expanded LDH structure, which confirmed that Phe was intercalated into the LDH interlayer as amphoteric ion or anion form. The basal spacing, d003, of the Phe/LDH was 1.58 nm at pH 7.0 and 0.80 nm at pH 10.5; two kinds of expansion suggested for Phe in the interlayer space as vertical (pH 7.0) and horizontal (pH 10.5) orientations. The intercalation behavior of various amino acids for the LDH was also found to be greatly influenced by the feature of the amino acid side-chain, namely, its carbon-chain length, structure and physicochemical property. In particular, α-amino acids possessing a hydrophobic or negative-charged side-chain were preferentially intercalated for the LDH.  相似文献   

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