首页 | 本学科首页   官方微博 | 高级检索  
相似文献
 共查询到20条相似文献,搜索用时 15 毫秒
1.
The electronic, magnetic, and thermodynamic properties of alkali/alkaline earth metal ion-adsorbed gallium nitride nanocage (Ga5N10_NC) have been investigated using density functional theory. The results denote that alkali/alkaline earth-metal ion-adsorbed Ga5N10_NC systems are stable compounds, with the most stable adsorption site being the center of the cage ring. The partial density of states (PDOS) can estimate a certain charge assembly between Li+, Na+, K+/ Be2+, Mg2+, Ca2+ and Ga5N10_NC which indicate the complex dominant of metallic features as: Ca2+ > Mg2+ > Be2+ >> K+ > Na+ > Li+. For confirmation of magnetic-alignment of Ga5N10_NC, monovalent (M+) and divalent (M2+) metal ions were added to the sample to measure the effects of metals on the magnetic-alignment properties of Ga5N10_NC. Furthermore, the reported results of NMR spectroscopy have exhibited that both M+ and M2+ can be optimized to achieve optimal alignment of nanocage in the presence of an applied magnetic field; however, chemical shift anisotropy spans for Ca2+– and Mg2+–containing samples is due to Ca2+ and Mg2+ ions binding to Ga5N10_NC. Regarding IR spectroscopy, Li+@ Ga5N10_NC and Be2+@ Ga5N10_NC with more electronegativity appear the most fluctuations through adsorption process. Moreover, based on NQR analysis, Ca2+ has shown a different graph of electric potential during trapping in Ga5N10_NC compared to other metal cations. Based on the results of amounts in this research, the selectivity of metal ion adsorption by gallium nitride nanocage (ion sensor) has been approved as: K+>Na+> Li+ in alkali metals and Ca2+>Mg2+> Be2+ in alkaline earth metals.  相似文献   

2.
王宏贾建峰  武海顺 《中国化学》2006,24(11):1509-1513
Using quantum chemistry methods B3LYP/6-31++G(d,p) to optimize endohedral complexes X@(HBNH)12 (X=Li^0/+, Na^0/+, K^0/+, Be^0/2+, Mg^0/2+, Ca^0/2+, H and He), the geometries with the lowest energy were achieved. Inclusion energy, standard equilibrium constant, natural charge, spin density, ionization potentials, and HOMO-LUMO energy gap were also discussed. The calculation predicted that X=Na^0/+, K^0/+, Mg^0/2+, Ca^0/2+, H and He are nearly located at the center of (HBNH)12 cluster. Li^+ lies in less than 0.021 nm departure from the center. Li and Be^0/2+ dramatically deviate from the center. (HBNH)12 prefers to enclose Li^+, Be^2+, Mg^2+, and Ca^2+ in it than others. Moreover, M@(HBNH)12 (M=Li, Na, K) species are "superalkalis" in that they possess lower first ionization potentials than the Cs atom (3.9 eV).  相似文献   

3.
N-Tosyl-2,6-diisopropyl-4-(2,3-dimethoxylbenzoylamide)aniline (1) has been synthesized and its metal ion (Na+, K+, Ca2+, Mg2+) coordinating properties investigated by FT-IR, ESI-MS, and 1H NMR methods. Among the tested metal ions, the overall stability constant (log K) for Mg2+ (6.89) is the highest (Na+, 5.64; K+, 5.43; Ca2+, 5.51) in 10% water/THF at 25.0 ± 0.5 °C determined by UV-vis spectroscopy, indicating that 1 is a potent ionophore for Mg2+ ion.  相似文献   

4.
Density functional theory calculation was carried out on cation‐π complexes formed by cations [M = H+, Li+, Na+, K+, Be2+, Mg2+, and Ca2+] and π systems of annelated benzene. The cation‐π bonding energy of Be2+ or Mg2+ with annelated benzene is very strong in comparison with the common cation‐π intermolecular interaction, and the bonding energies follow the order Be2+ > Mg2+ > Ca2+ > Li+ > Na+ > K+. Similarly, the interaction energies follow the trend 1‐M < 2‐M < 3‐M for all the metal cations considered. These outcomes may be due to the weak interactions of the metal cations with C? H and the interactions of metal cations with π in addition to the nature of a metal cation. We have also investigated on all the possible substituted sites, and find that the metal ion tends to interact with all ring atoms while proton prefers to bind covalently to one of the ring carbons. The binding of metal cations with annelated benzenes has striking effect on nuclear magnetic resonance chemical shifts using the gauge independent atomic orbital method. © 2008 Wiley Periodicals, Inc. Int J Quantum Chem, 2009  相似文献   

5.
IR spectra of 3 normal solutions of 14 different salts [chlorides of Al+++, Be++, Mg++, Ca++, Sr++, Ba++, Zn++, Cd++, Li+, Na+, K+, Rb+, Cs+, N(CH3) 4 + ] in both, 96% H2O+4% D2O and 100% H2O, were measured in the frequency range =2 800–2 100 cm–1. From up to 18 single measurements for each solution the frequencies and halfwidths of the O-D stretching bands of isotopically dilute HDO were determined with high accuracy. Frequencies in the range =2 510–2 529 cm–1 and halfwidths in the range =155–205 cm–1 resulted atT=30°C with standard deviations typical less than ±1 cm–1 and ±4 cm–1, respectively. An almost perfect correlation between the O-D stretching band parameters and the polarizing power of the cations was obtained.Herrn Prof. Dr.A. Neckel, Wien, zum 60. Geburtstag gewidmet.  相似文献   

6.
A consistent set of G B , H B , and S B parameters have been determined from ion specific electrode, calorimetric, and spectrophotometric studies for the binding of Ca2+ and Mg2+ to bovine calmodulin at pH=7.0 and an ionic strength I of 0.113M. A non-linear least squares analysis of calcium specific ion electrode data yields, on a molar basis, four calcium dissociation constants: 10–7 for the first site, 10–5 for the fourth site, and two constants between these values. Both calorimetric experiments and an indicator method provide evidence that Mg2+ binds to calmodulin, probably at the same sites as Ca2+, but with affinities about 100 times smaller: 4×10–5 for the first site and 2×10–3 for the fourth. Calorimetric titrations on Ca2+ binding to calmodulin in three buffers are consistent with 0.46 protons released upon binding at all four sites and yield an average H B per site of 5.6 and 7.9 kJ-mol–1 for Ca2+ and Mg2+, respectively. The entropy of the system increases by 524 and 361 J-K–1-mol–1 when Ca2+ and Mg2+, respectively, bind to four sites on calmodulin, i.e., the selectivity of calmodulin for Ca2+ is primarily derived from entropy effects. Further analysis based on elimination of the entropy term for the metal ions demonstrates that calmodulin bound to Ca2+ has a larger entropy than the unbound calmodulin; the opposite is true for calmodulin bound to Mg2+. These analyses are consistent with the hypothesis that Ca2+ forms tight complexes at all sites on calmodulin and that release of waters of hydration upon binding is the source of the increase of entropy in the system.  相似文献   

7.
The thermodynamic stability constants and thermodynamic parameters for the complexation reaction of Be2+, Mg2+ and Ca2+ with 3-hydroxy-2-naphthoic acid have been determined pH metrically in a 70% v/v dioxane-water medium in the presence of potassium nitrate. The study showed the formation 1:1 and 1:2 complexes of Be2+, Mg2+ and 1:1 complex of Ca2+ with 3-hydroxy-2-naphthoic acid. The order of overall stability is Be2+>Mg2+>Ca2+.  相似文献   

8.
A heterocyclic hydrazone ligand, pyridine-2-carboxaldehyde-2-pyridylhydrazone, HL, 1, was investigated as a new chromogenic agent for selective detection of Pd2+. The ligand HL, 1, undergoes 1:1 complexation with Pd2+ and Cu2+ to form complexes [Pd(L)Cl], 1a and [Cu(HL)Cl2], 1b respectively. The complex 1a gives a characteristic absorption peak at 536 nm with distinct reddish-pink coloration. The change in color can easily be distinguished from other metal complexes by the naked eye. No obvious interference was observed in the presence of other metal ions (Na+, K+, Mg2+, Ca2+, Al3+, Mn2+, Fe3+, Co2+, Ni2+, Cu2+, Zn2+, Cd2+, Sn2+, Hg2+, Pb2+). The association constants, Kass (UV–Vis), were found to be 5.52 ± 0.004 × 104 for 1a and 4.94 ± 0.006 × 104 for 1b at 298 K. On excitation at 295 nm, the ligand HL, 1 strongly emits at 372 nm due to an intraligand 1(π–π) transition. Upon complexation the emission peaks are blue shifted (λex 295 nm, λem 358 nm for 1a and λex 295 nm, λem 367 nm for 1b) along with a quenching (F/F0 0.32 for 1a and 0.88 for 1b) in the emission intensity. DFT and TDDFT calculations were highly consistent with the spectroscopic behavior of the ligand and complexes. The molecular structure of the complex 1b has been determined by single crystal X-ray diffraction studies.  相似文献   

9.
A novel chromogenic calix[4]arene 3, which has within a molecule both the triazoles and the hydroxyl azophenols as the metal-binding sites and the azophenol moiety as a coloration sites was designed and synthesized. Calix[4]arene 3 is highly sensitive to Ca2+ and Pb2+ ions, which can be detected by the naked eye. Furthermore, the association constants for the 1:1 complexes of 3·Ca2+ and 3·Pb2+ were determined to be 7.06 × 104 M−1 and 8.57 × 103 M−1, respectively.  相似文献   

10.
DFT (B3LYP functional) and MP2 methods using 6-311+G(2d,2p) basis set have been employed to examine the effect of ring fusion to benzene on the cation--π interactions involving alkali metal ions (Li+, Na+, and K+) and alkaline earth metal ions (Be2+, Mg2+ and Ca2+). Our present study indicates that modification of benzene (π-electron source) by fusion of monocyclic or bicyclic (or mixture of these two kinds of rings) strengthens the binding affinity of both alkali and alkaline earth metal cations. The strength of interaction decreases in the following order: Be2+ > Mg2+ > Ca2+ > Li+ > Na+ > K+ for any considered aromatic ligand. The interaction energies for the complexes formed by divalent cations are 4–6 times larger than those for the complexes involving monovalent cations. The structural changes in the ring wherein metal ion binds are examined. The distance between ring centroid and the metal ion is calculated for all of the complexes. Strained bicyclo[2.1.1]hexene ring fusion has substantially larger effect on the strength of cation--π interactions than the monocyclic ring fusion for all of the cations due to the π-electron localization at the central benzene ring.  相似文献   

11.
The syntheses, structures, spectroscopy, and electrochemistry for six Ir(III) and Rh(III) mixed sandwich mononuclear complexes involving tridentate macrocycles and pentamethylcyclopentadienide (Cp*) are reported. The complexes are readily prepared by direct ligand substitution reactions from the dichloro bridged binuclear complexes, [{M(Cp*)(Cl)2}2]. All complexes have the general formula [M(L)(Cp*)]X2 (M = Ir(III) or Rh(III), L = macrocycle, or Cl) and exhibit a distorted octahedral structure involving three donor atoms from the macrocycle and the facially coordinating carbocyclic Cp* ligand. The complex cations include: [Rh(η5 -Cp*)(9S3)]2+ (1), [Rh(η5-Cp*)(9N3)]2+ (2), [Rh(η5-Cp*)(10S3)]2+ (3), [Ir(η5-Cp*)(9S3)]2+ (4), [Ir(η5-Cp*)(9N3)]2+ (5), and [Ir(η5-Cp*)(10S3)]2+ (6), where 9S3 = 1,4,7-trithiacyclononane, 9N3 = 1,4,7-triazacyclononane, and 10S3 = 1,4,7-trithiacyclodecane. The structures for all six complexes are supported by 1H and 13C{1H} NMR spectroscopy, and five complexes are also characterized by single-crystal X-ray crystallography (complexes 1-5). The 1H NMR splittings between the two sets of methylene protons for both the Rh(III) and Ir(III) 9S3 complexes are much larger (0.4 vs. 0.2 ppm) compared to those in the two 9N3 complexes. Similarly, the 13C{1H} NMR spectra in all four thioether complexes show that the ring carbons in the Cp* ligand are shifted by over 10 ppm downfield compared to the azacrown complexes. The electrochemistry of the complexes is surprisingly invariable and is dominated by a single irreversible metal-centered reduction near −1.2 V vs. Fc/Fc+.  相似文献   

12.
The gas-phase chemistry of anionic [M + Cat2+ – 3H]? complexes between Ca2+-specific peptides and the alkaline earth metal ions Mg2+, Ca2+ and Ba2+ is reported. The metal ion complexes were studied using fast atom bombardment, collision-induced decomposition (CID) and molecular mechanical calculations. The CID reactions and molecular mechanical calculations revealed that the Ca2+–peptide complexes are bound differently to the Mg2+– and Ba2+–peptide complexes and that the intrinsic (gas-phase) chemistry is reflected by known aqueousphase chemistry.  相似文献   

13.
A new intramolecular charge transfer (ICT) probe 3 is found to display a highly selective photophysical response in the presence of Zn2+, among various biologically significant metal ions examined. The absorption band of 3 is red shifted by 84 nm and the fluorescence intensity increases 13-fold in the presence of Zn2+. The binding interaction follows the order Zn2+ > Cd2+ > Mg2+ > Ba2+ > Ca2+ > K+ ≅ Na+ ≅ Li+ and the stability constant for 3 + Zn2+ is over an order of magnitude higher compared to biologically competing Ca2+ and Mg2+.  相似文献   

14.
In order to predict the extraction ability of 12-crown-4 for different metallic ions, the complexes [M(12-crown-4)] and [M(H2O)4] (where M=Li+, Na+, K+, Be2+, Mg2+, Ca2+, Cu2+ and Zn2+) were investigated by the density functional theory without restrictions for their geometry. The metal binding capability was evaluated using the binding energy, and the effect of nature of the metal on the binding properties was also studied. The results of the calculations showed that the coordination ability of a donor molecule towards different metal ions increased in proportion to their ionization potential. In addition, based on the extraction distribution coefficient, we found that 12-crown-4 can selectively extract Cu2+ and Be2+ ions from aqueous solutions of mixed cations. Obviously, the stability of complexes and the extraction power of extractants depend greatly on the nature of the metal ions. Calculation results from our study could be used to predict the extraction power of this crown ether and could play a guiding role in planning experiments.  相似文献   

15.
A polydentate ligand, H2L “[1-(5-isopropyl-2-methyl phenoxy)-3-(N-2-hydroxy benzyl-N-((pyridine-2-yl)amino) propan-2-ol]”, containing a N2O2 donor moiety was synthesized by refluxing 2-((5-isopropyl-2-methylphenoxy)methyl)oxirane and HBPA (N-(2-hydroxybenzyl)-N-(2-pyridylmethyl)amine). This synthesized ligand was used for the preparation of complexes with different metal ions, viz. [Cu(HL)Cl] (1), [Ni(HL)Cl] (2), [Zn(HL)Cl] (3) and [Fe(HL)Cl2] (4). The ligand and metal complexes were characterized by 1H NMR, mass, ESI-MS, elemental analysis, IR, UV-Vis and electron paramagnetic resonance (EPR) spectroscopy. The crystal structure for one of the complexes, [Cu(HL)Cl], was solved from the X-ray crystallography data. The structure of the complex, based on the trigonality index tau, suggests an intermediate geometry between square pyramidal (sp) and trigonal bipyramidal (tb). Both the ligand and the metal complexes show oxidative cleavage of plasmid DNA (pBR322) without addition of any exogenous agent, even at a concentration of 5 μM. The binding constants for these compounds were found to be in the range 5.33-0.065 × 105 M−1.  相似文献   

16.
The stability constants of complexes of Mn++, Fe++, Co++, Ni++, Cu++, Zn++, Cd++ and UO with 5,7-dichloro-, 5,7-dibromo- and 5,7-dinitro-8-hydroxyquinoline and their corresponding N-oxides have been determined in 75 + 25 v/v dioxan + water medium at 35°C in presence of 0.20 M sodium perchlorate by pH-titration technique as given by IRVING and Rossotti. A possible explanation for the observed orders of the stability constants of the metal complex with the different ligands, and of the complexes of a particular ligand with different metal ions is also proposed.  相似文献   

17.
Cyclic octapeptide, cyclo[Gly-L-Lys(Z)-Sar-L-Pro]2, (CGLSP2) was synthesized as an ionophore model. Its ion-transport ability through a chloroform membrane was investigated in connection with ion extractability (Kex) and conformational properties. CGLSP2 transported the picrate salts of Ba2+ and Ca2+ efficiently. The Kex sequences were Ba2+>Ca2+Mg2+ and K+>Rb+>Na+, showing good agreement with the selectivity in ion transport. In addition, cation-binding properties of CGLSP2 to alkali and alkaline earth metal ion were investigated in acetonitrile by CD and NMR spectroscopy. Titration curves obtained from CD data revealed three kinds of CGLSP2/cation complexes. The values of 1:1 complex-formation constants (K1) decreased in the order Ba2+>Ca2+>Mg2+>Li+Na+K+.1H- and13C-NMR data showed that free CGLSP2 exists in at least five different conformational states in acetonitrile. After the addition of equimolar amounts of Ba(ClO4)2, these conformations converged into a single C2-symmetric conformation with all-trans peptide bonds.  相似文献   

18.
A series of mono- and binuclear ruthenium(II) tris-bipyridine complexes tethered to oligothienylenevinylenes have been synthesized and characterized by 1H NMR, 13C NMR and TOF-MS spectrometry. Photophysics, electrochemistry and electrogenerated chemiluminescence (ECL) properties of these complexes are investigated. The electronic absorption spectra of the mononuclear ruthenium complexes show a significant red shift both at MLCT (metal-to-ligand charge transfer) and π-π transitions of oligothienylenevinylenes with increase in the number of thiophenyl-2-yl-vinyl unit. For the binuclear complexes these two absorption bands are overlapped. All the metal complexes have very weak emission compared to that of the reference complex Ru(bpy)2+3. The first reduction potentials of all mononuclear ruthenium complexes are less negative than that of Ru(bpy)2+3, due to the moderate electron-withdrawing effect of oligothienylenevinylenes. For binuclear ruthenium complexes, only one Ru(II/III) oxidation peak (E1/2 = 0.96 V vs. Ag/Ag+) was observed, suggesting a weak interaction between two metal centers. Three successive reduction processes of bipyridine ligands are similar among all ruthenium complexes except for RuTRu, which has a very sharp peak owing to the accumulation of neutral product on the electrode surface. All these ruthenium complexes exhibited different ECL property in CH3CN solution without any additional reductant or oxidant. For three mononuclear ruthenium complexes, the ECL intensity strengthens with increase in the number of thiophene-2-yl-vinyl unit. However, the ECL efficiency dramatically decreased in the binuclear ruthenium complexes. The ECL efficiencies of all the reported complexes do not exceed that of Ru(bpy)2+3, where the ECL efficiency decreases in the order of RuTRu > Ru3T > Ru2T > RuT > Ru2TRu (RuT,bis-2,2′-bipyridyl-(4-methyl-4′-(2-thienylethenyl)-2,2′-bipyridine) ruthenium dihexafluorophosphate; Ru2T, bis-2,2′-bipyridyl-(4-methyl-4′-{(E)-2-[5-((E)-2-thienylethenyl)-thienylethenyl]}-2,2′-bipyridine) ruthenium dihexafluorophosphate; Ru3T, bis-2,2′-bipyridyl-(4-methyl-4′-{(E)-2-{(E)-2-[5-((E)-2-thienylethenyl)-thienylethenyl]}}-2,2′-bipyridine) ruthenium dihexafluorophosphate; RuTRu, bis-2,2′-bipyridyl-ruthenium-bis-[2-((E)-4′-methyl-2, 2′-bipyridinyl-4)-ethenyl]-thienyl-bis-2,2′-bipyridyl-ruthenium tetrahexafluorophosphate; Ru2TRu, bis-2,2′-bipyridyl-ruthenium-(E)-1,2-bis-{2-[2-((E)-4′-methyl-2,2′-bipyridinyl-4)-ethenyl]-thienyl}-ethenyl-bis-2,2′-bipyridyl-ruthenium tetrahexafluorophosphate).  相似文献   

19.
Ability of aroylhydrazones to change conformation upon interaction with light makes them promising candidates for molecular switches. Isomerization can be controlled through complexation with selected metal ions which bind with different affinity. N′‐[1‐(2‐hydroxyphenyl)ethyliden]iso‐nicotinoylhydrazide (HAPI) is an example of a dual‐wavelenght photoswitching molecule, whose complexation with metal ions was recently experimentally investigated (Franks et al. J. Inorg. Chem. 2014, 53, 1397). In this contribution, complexes between HAPI and K+, Ca2+, Mn2+, Fe2+, Fe3+, Cu+, Cu2+, and Zn2+ ions were investigated using Density Functional Theory, Natural Bond Order analysis, and Quantum Theory of Atoms in Molecules. The most important parameters that determine complex stability are found to be ion radius and charge transferred from ligands to the ion: smaller ion radii and larger CT values characterize formation of more stable complexes. Our results explain experimentally observed effect of different metal ions on photoisomerization through determination of metal ion affinity (MIA): photoisomerization is inhibited if MIA exceeds 100 kcal/mol; for MIA between 50 and 100 kcal/mol excess of metal ions prevents isomerization, whereas in case of MIA below 50 kcal/mol metal ions have no influence on light–HAPI interaction. © 2015 Wiley Periodicals, Inc.  相似文献   

20.
The reaction of metal complexes of the type [M(HL)Cl] or [M(HL)2] [where M = Cu(II), Ni(II), Mn(II), Co(II) and Zn(II) and H2L = N-benzoyldithiocarbazate] with an excess of ethylenediamine (en) in CHCl3–MeOH medium leads to ring closure by desulfurisation to yield unique mixed-ligand complexes 1–4, [Cu(en)2](pot)2(pot = 5-phenyl-1,3,4-oxadiazole-2-thiol), [M(en)2(pot)2] [M = Ni(II), Mn(II)] and [Zn(en)(pot)2]. The metal complexes have been characterized by various physicochemical methods. The molecular structure of [Cu(en)2](pot)2 has been determined by a single crystal X-ray diffraction study. In the centrosymmetric unit of [Cu(en)2](pot)2, the metal ion has a square planar arrangement of four symmetry related N-atoms of two en groups and is ionically bonded to two pot anions. Weak interaction studies on the complex reveal the presence of a hydrogen-bonded network in the molecule involving non-coordinating donor atoms of the pot anion with en resulting in the formation of an extended three-dimensional network. The arrangement of the [Cu(en)2]2+ units, at a dihedral angle of 49.43° to pot, provides a network of intermingled chains leading to a π–π stacked 3-dimensional framework.  相似文献   

设为首页 | 免责声明 | 关于勤云 | 加入收藏

Copyright©北京勤云科技发展有限公司  京ICP备09084417号