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1.
Enthalpies of solution of thymine and uracil in water and in dimethylsulfoxide (DMSO) were measured calorimetrically in the temperature range 25–40°C. H s o at 25°C for thymine and uracil in water were found to be 23.1±0.5 and 29.5±0.3 kJ-mol–1, respectively. In DMSO, H s o were 7.9±0.1 and 10.2±0.1 kJ-mol–1, respectively. In aqueous solution C p o for the two nucleic acid bases were relatively large and positive with C p o of thymine being larger. Both transfer quantities H t o and C p,t o for the proceses H2ODMSO for the two nucleic acid bases were negative. It is proposed that, the differences in the values obtained for the two bases is due principally to increased order in the water adjacent to the methyl group in thymine.  相似文献   

2.
Complexes of formula CuCl2 · 2arg and CuCl2 · 4ala (arg = arginine; ala = alanine) were prepared at room temperature by a solid state route. The metal–amino acid solid state interactions were studied by i.r. spectroscopy and solution calorimetry. For both complexes, participation of the carboxylate group as well as nitrogen in coordination are inferred, based on the i.r. data. For the copper–arginine compound, the calculated thermochemical parameters are: rHm = –114.9 ± 1.42 and fHm = –1608.3 ± 11.6 kJ mol–1. For copper–alanine compound, a complete set of thermochemical parameters were calculated: rHm = –18.0 ± 0.9; fHm = –2490.4 ± 4.3; DHm = 597.2 ± 17.7; MHm = 771.9 ± 18.7; gHm = 627.1 ± 22.3 and D (Cu–L) = 156.8 ± 5.7 kJ mol–1. Based on rHm and dissolution enthalpy values, a stronger intermolecular solid state interaction can be inferred for the arginine complex, than for the alanine one complex, probably due to the formation of intermolecular hydrogen bonds in the former.  相似文献   

3.
The kinetics of acid-catalyzed hydrolysis of the [Co(en)(L)2(O2CO)]+ ion (L = imidazole, 1-methylimidazole, 2-methylimidazole) follows the rate law –d[complex]/dt = {k 1 K[H+]/(1 + K[H+])}[complex] (15–30 or 25–40 °C, [H+] = 0.1–1.0 M and I = 1.0 M (NaClO4)). The reaction course consists of a rapid pre-equilibrium protonation, followed by a rate determining chelate ring opening process and subsequent fast release of the one-end bound carbonato ligand. Kinetic parameters, k 1 and K, at 25 °C are 5.5 × 10–2 s–1, 0.44 M–1 (ImH), 5.1 × 10–2 s–1, 0.54 M–1 (1-Meim) and 3.8 × 10–3 s–1, 0.74 M–1 (2-MeimH) respectively, and activation parameters for k 1 are H1 = 43.7 ± 8.9 kJ mol–1, S1 = –123 ± 30 J mol–1 deg–1 (ImH), H1 = 43.1 ± 0.3 kJ mol–1, S1 = –125 ± 1 J mol–1 deg–1 (1-Meim) and H1 = 64.2 ± 4.3 kJ mol–1, S1 = –77 ± 14 J mol–1 deg–1 (2-MeimH). The results are compared with those for similar cobalt(III) complexes.  相似文献   

4.
The kinetics of the interaction of adenosine 5-monophosphate (5-AMP) with cis-[Pt(en)(H2O)2]2+ have been studied spectrophotometrically as a function of [Pt(en)(H2O)2]2+, [5-AMP] and temperature at pH 4.0, where the substrate complex exists predominantly as the diaqua species. Both N1 and N7 donor sites of 5-AMP are active for coordination to Pt at this pH. Base stacking and metal-induced macrochelate formation of 5-AMP plays a vital role in determining the concentration limit of 5-AMP during kinetics. Substitution occurs in two consecutive steps; both dependent on the 5-AMP concentration. Activation parameters for both steps have been calculated. The low H 1 (42.76 ± 1.64 kJ mol–1) and large negative values of S 1 (–112.1 ± 5.1 J K–1 mol–1) as well as H 2 (58.1 ± 1.4 kJ mol–1) and S 2 (–84.2 ± 4.4 J K–1 mol–1) indicate associative modes of activation for both ligand substitution processes in the two consecutive steps.  相似文献   

5.
Apparent equilibrium constants and calorimetric enthalpies of reaction have been measured for the reaction L-tryptophan(aq) + H2O(l) = indole(aq) + pyruvate(aq) + ammonia(aq) which is catalyzed by L-tryptophanase. High-pressure liquid-chromatography and microcalorimetery were used to perform these measurements. The equilibrium measurements were performed as a function of pH, temperature, and ionic strength. The results have been interpreted with a chemical equilibrium model to obtain thermodynamic quantities for the reference reaction: L-tryptophan(aq) + H2O(l) = indole(aq) + pyruvate(aq) + NH 4 + (aq). At T=25°C and Im=O the results for this reaction are: Ko=(1.05±0.13)×10–4, G°=(22.71±0.33) kJ-mol–1, H°=(62.0±2.3) kJ-mol–1, and S°=(132±8) J-K–1-mol–1. These results have been used together with thermodynamic results from the literature to calculate standard Gibbs energies of formation, standard enthalpies of formation, standard molar entropies, standard molar heat capacities, and standard transformed formation properties for the substances participating in this reaction.Presented at the Symposium, 76th CSC Congress, Sherbrooke, Quebec, May 30–June 3, 1993, honoring Professor Donald Patterson on the occasion of his 65th birthday.  相似文献   

6.
Summary The oxidation of MeCHO by chromium(VI) has been studied in HClO4 medium over a wide range of experimental conditions and has been found to obey the rate law;v=k[MeCHO][HCrO 4 ][H+]. The calculated H and-S values for the reaction are 30±2kJ mol–1 and 171±7J mol–1deg–1, respectively. The mechanism is discussed in terms of carbon-hydrogen bond cleavage.  相似文献   

7.
Complexation of sulfones (S) with the -diketonate Eu(Fod)3 (Fod–heptafluorodimethyloctanedione) in the ground and excited electronic states in benzene solutions was studied. The stability constants and thermodynamic parameters for the formation of complexes Eu(Fod)3 · S in the ground state (K, H 0, S 0) and Eu(Fod)3 * · S in the excited state (K*, H 0 *, S 0 *) were determined. The excitation of ff transitions of Eu(III) was found to enhance the stability of Eu(Fod)3 · S complexes, apparently due to an increase in the acceptor ability of the Eu(III) chelate. This fact confirms the involvement of the 4f orbital in the chemical bond formation. The compensation effect was observed for the thermodynamic parameters: S 0 = (2.9 ± 0.3) × 10–3H 0 + (35.0 ± 4.0) in the ground and S 0 * = (3.3 ± 0.3) × 10–3H 0 * + (49.0 ± 5.0) in the excited states of Eu(Fod)3. It was shown that electronic excitation of the 4f orbital of Eu(Fod)3 influences isotopic effects in complexation with sulfolanes.  相似文献   

8.
The two thermodynamic dissociation constants of glycine at 11 temperatures from 5 to 55°C in 50 mass % methanol-water mixed solvent have been determined from precise emf measurements with hydrogen-silver bromide electrodes in cells without liquid junction. The first acidic dissociation constant (K 1)for the process HG+H++G± is expressed as a function ofT(oK) by the equation pK 1 = 2043.5/T – 9.6504 + 0.019308T. At 25°C, pK 1is 2.961 in the mixed solvent, as compared with 2.350 in water, with H°=1497 cal-mole–1, G°=4038 cal-mole–1, S°=–8.52 cal-°K–1-mole–1, and C p o =–53 cal-°K–1-mole–1. The second acidic dissociation constant (K 2)for the process G±H++G over the temperature range studied is given by the equation pK 2 = 3627.1/T – 7.2371 + 0.015587T. At 25°C, pK 2is 9.578 in MeOH–H2O as compared with 9.780 in water, whereas H° is 10,257 cal-mole–1, G° is 13,063 cal-mole–1, S° is –9.41 cal-°K–1-mole–1, and C p o is –43 cal-°K–1-mole–1. The protonated glycine becomes weaker in 50 mass % methanol-water, whereas the second dissociation process becomes stronger despite the lower dielectric constant of the mixed solvent (=56.3 at 25°C).  相似文献   

9.
Summary The interaction of aquo-ethylenediaminetetraacetatoruthenate(III) with ferricyanide ion was studied spectrophotometrically as a function of ferricyanide ion concentration, pH (1.5–8.5) and temperature (30–45°C) at ionic strength 0.2 M (NaClO4). Kinetic and activation parameters (H=27.1±1.75 KJ mol–1, S=–136.7±5.57 J mol–1 deg–1) are consistent with the proposed mechanism.  相似文献   

10.
Stereochemical nonrigidity of the hexacoordinated (O—Ge)-chelate bis(2-oxo-1-hexahydroazepinylmethyl)dichlorogermane in CDCl3 was studied by dynamic NMR. The activation parameters of the intramolecular rearrangement at the coordination center are G # 298 = 12.3±0.2 kcal mol–1, H # = 16.9±0.2 kcal mol–1, and S # = 15.3±0.7 cal mol–1 K–1. The dissociative mechanism of ligand exchange involving the cleavage of the OGe coordination bond is discussed based on the positive entropy of activation.  相似文献   

11.
Summary The vibrational spectra of solutions have been analyzed to assess both qualitatively and quantitatively the changes in enthalpy and entropy for ion pair formation in solutions of LiNCS, Mg(NCS)2, and LiN3 in liquid ammonia, dimethylformamide, dimethylsulphoxide and acetonitrile. Contrary to predictions both the H ass and S ass terms are all positive in the cases examined, indicating that the driving force in the ion association process derives from solvent-solute restructuring, and not the energy of the interaction between the cation and anion. This characteristic of contact ion pair formation is likely to be found to be applicable over a wide range of solvents. The following specific values of the thermodynamic parameters at 298 K have been obtained: LiNCS/DMF, G=–1.3 (1) kJ mol–1, H ass =+1.8 (5) kJ mol, S ass =+10 (2) J mol–1 K–1; LiNCS/DMSO, G=+0.9 (2) kJ mol–1, H ass =+0.3 (3) kJ mol–1; Mg(NCS)2/DMF, G ass =–4.0 (3) kJ mol–1, H ass =+15 (4) kJ mol–1, S=+64 (17) kJ mol–1; LiN3/DMSO, G ass =–2.5 (3) kJ mol–1, H ass =+4.9 (9) kJ mol–1, S ass =+25 (10) J K–1 mol–1.Submitted to celebrate the 70th Birthday of Professor Viktor Gutmann, and in recognition of his considerable contributions towards the better understanding of Chemistry in the Solution Phase  相似文献   

12.
Solubility of naphthalene in water was measured at 25°C and pressures up to 200 MPa. The solubility decreased with increasing pressure. From the pressure coefficient of the solubility, the volume change V accompanying the dissolution was estimated as 13.8±0.4 cm 3 -mol –1 . Further we estimated the volume change V CH accompanying hydrophobic hydration as –0.1±0.6 cm 3 -mol –1 using the V value, the molar volume of crystalline naphthalene, and the partial molar volume of naphthalene in n-heptane. This V CH is much larger (i.e., less negative) than that for hydrophobic hydration of alkyl-chain compounds and suggests that the hydration structure of naphthalene differs from that of alkyl-chain compounds.  相似文献   

13.
The solubility, solubility product and the thermodynamic functions for the CeF3–H2O system have been measured using the radiometric, conductometric and potentiometric techniques. The radiometric values for the solubility and solubility product, the lowest and more acceptable for reasons cited in previous papers, are 3.14·10–5 M and 2.17·10–17 respectively. The enthalpy change measured by the conductometric method is almost twice as that obtained by potentiometric method due to abnormal conductances registered at higher temperatures. The average values for Ho and Go and So at 298 K are 53.0±17.4, 91.7±4.0 and –129.7±58.2 KJ·mol–1 respectively. The positive values for Ho and Go and the negative value for So are indicative of the low solubility of this salt in water. The stability constants for the mono- and difluoride complexes of Ce(III) have been determined potentiometrically using unsaturated solution mixtures of Ce(III) and F. These values for CeF+ and CeF 2 + are 997±98 and (1.03±0.44)·105, respectively. Studies on pH dependence of the solubility shows that the solubility reaches a minimum value at a pH of about 3.2.  相似文献   

14.
The first and second molal dissociation quotients of succinic acid were measured potentiometrically with a hydrogen-electrode, concentration cell. These measurements were carried out from 0 to 225°C over 25° intervals at five ionic strengths ranging from 0.1 to 5.0 molal (NaCl). The dissociation quotients from this and two other studies were combined and treated with empirical equations to yield the following thermodynamic quantities for the first acid dissociation equilibrium at 25°C: log K1a=–4.210±0.003; H 1a 0 =2.9±0.2 kJ-mol–1; S 1a 0 =–71±1 J-mol–1-K–1; and C p1a 0 =–98±3 J-mol–1-K–1; and for the second acid dissociation equilibrium at 25°C: log K2a=–5.638±0.001; H 2a 0 = –0.5±0.1 kJ-mol–1; S 2a 0 =–109.7±0.4 J-mol–1-K–1; and C p2a 0 = –215±8 J-mol–1-K–1.  相似文献   

15.
Two compounds of sulphamide type:p-amino-benzene sulphonamide (I) and 3,4-dimethylisoxazol 5-sulphanylamide (II) were studied by combustion calorimetry and by differential scanning calorimetry (DSC).The enthalpies in solid state at 298,15 K of combustion, c H m o (I)=-2788,5±1,6 kJ mol–1, c H m o (II)=-5036±3,8 kJ mol–1 and of formation, f H m o (I)=-458,3±1,6 kJ mol–1, fH m o (II)=-180,1±3,8 kJ mol–1 were determined.The thermal effects concerning the melting and phase transition of this compounds were also measured.
  相似文献   

16.
Summary Base hydrolysis of the bis(ethylenediamine)thiosulphatocobalt(III) was investigated spectrophotometrically between 35 and 65 °C and with base concentrations (NaOH) up to 2.0 mol dm–3. The hydrolysis consists of a one-stage reaction, followed by a slow dechelation step, and then by a fast ligand loss. The reaction is base-dependent. The products of the reaction are an equilibrium mixture ofcis- andtrans-Coen2 (OH) 2 + . Activation parameters for the reaction as determined by the Eyring equation, are H=77.8±4.6 kJ mol–1 and S=–75±20 JK–1 mol–1.  相似文献   

17.
The oxidation-reduction reaction between U(VI) and Ti(III) in HCl solution was studied spectrophotometrically. The reaction is second-order at all concentrations of reactants, HCl, ferrous chloride and mannitol used in this work. In 5M HCl the rate constantk increases with increasing Ti(III) concentration, whereas it decreases with increasing U(VI) concentration, with increasing HCl concentration from 1.00M to 7.17M and increases thereafter from 7.17M to 11.79M. The addition of mannitol causes a consistent decrease in the rate of reaction, whereas ferrous chloride has no effect. The activation energy for this oxidation-reduction reaction was 47.90±0.11 kJ·mol–1. The values of H , G and S were 45.40±0.11 kJ·mol–1, 72.50±0.17 kJ·mol–1 and –91.10±0.22J·k–1·mol–1, respectively. The mode of reaction is discussed in the light of kinetic results.  相似文献   

18.
A differential scanning calorimeter (DSC) was modified for the determination of enthalpies of solution. The measurements were performed on aqueous solutions of the deoxy- and fluoro-deoxy derivatives of D-glucopyranose (Glu) where the OH group on the C1, C2, C3, and C6 is replaced by H (1HGlu, 2HGlu, 3HGlu, and 6HGlu) and by F (1FGlu, 2FGlu, 3FGlu, and 6FGlu), 4-deoxy 4-fluoro--D-glucopyranoside (4FGlu), 1-methoxy--D-glucopyranoside (MeOGlu), 1-phenoxy--D-glucopyranoside (PheOGlu), D-mannopyranose (Man), and 3-methoxy--D-glucopyranoside (3MeOGlu), at 15.1, 25.0, 35.0, and 45.1°C. The enthalpies of solution sH0(T) ranged from 1.00±0.25 kJ-mol–1 for 6HGlu at 15.1°C to 20.4±1.4 for PhOGlu at 45.1°C and were in good agreement with literature values for Man, Glu, MeOGlu, and 3MeOGlu at 25.0 and 35.0°C and for MeOMan and 2HGlu at 35.0°C. sH0(T) for the derivatives were then extrapolated up to the melting temperature Tm and compared with their enthalpies of fusion, fH also determined from DSC measurements. If the agreement between sH0(Tm) and fH was within the 95% confidence level, then it was concluded that intermolecular interactions between the carbohydrate molecules in the liquid phase were the same as between the carbohydrate and water molecules in the solution phase. This agreement was observed for aqueous solutions of Man, Glu, MeOGlu, 3HGlu, 3FGlu, and 6FGlu.  相似文献   

19.
A detailed investigation of the oxidation of L-ascorbic acid (H2A) by the title complex has been carried out using conventional spectrophotometry at 510 nm, over the ranges: 0.010 [ascorbate] T 0.045 mol dm–3, 3.62 pH 5.34, and 12.0 30.0 °C, 0.50 I 1.00 mol dm–3, and at ionic strength 0.60 mol dm–3 (NaClO4). The main reaction products are the bis(pyridine-2,6-dicarboxylate)cobaltate(II) ion and l-dehydroascorbic acid. The reaction rate is dependent on pH and the total ascorbate concentration in a complex manner, i.e., k obs = (k 1 K 1)[ascorbate] T /(K 1 + [H+]). The second order rate constant, k 1 [rate constant for the reaction of the cobalt(III) complex and HA] at 25.0 °C is 2.31 ± 0.13 mol–1 dm3 s–1. H = 30 ± 4 kJ mol–1 and S = –138 ± 13 J mol–1 K–1. K 1, the dissociation constant for H2A, was determined as 1.58 × 10–4 mol dm–3 at an ionic strength of 0.60 mol dm–3, while the self exchange rate constant, k 11 for the title complex, was determined as 1.28 × 10–5 dm3 mol–1 s–1. An outer-sphere electron transfer mechanism has been proposed.  相似文献   

20.
The kinetics of interaction between DL-Penicillamine and [Rh(H2O)5OH]2+ have been studied spectrophotometrically as a function of [Rh(H2O)5OH2+], [DL-Pen], pH and temperature. The reaction has been monitored at 242 nm, the max of the substituted complex and where the spectral difference between the reactant and product is a maximum. The reaction rate increases with [DL-Pen] and reaches a limiting value at a higher ligand concentration. From the experimental findings an associative interchange mechanism for the substitution process is suggested. The activation parameters (H}=35.8 ± 1.6 kJ mol–1, S=–209 ± 5 J K–1 mol–1) support the proposition. The negative G 0 (–13.6 kJ mol–1) for the first equilibrium step also supports the spontaneous formation of an outersphere association complex.  相似文献   

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