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1.
Contributions to the Thermal Behaviour of Sulfates. II. On the Thermal Dehydration of ZnSO4 · 7 H2O and the Effect of High Temperature upon Anhydrous ZnSO4 The dehydration of ZnSO4 · 7 H2O and effect of high temperature upon unhydrous ZnSO4 was examined by means of continous high temperature Guinier photographs. On heating in air ZnSO4 · 7 H2O decomposes stepwise to ZnSO4 · 6 H2O, to an unknown hydrate, to the monohydrate and finally to N? ZnSO4, which is the thermodynamically stable modification at S.T.P. At about 700°C a reversible transformation to H-ZnSO4 can be observed which can start from N? ZnSO4 or H-ZnSO4, proceeds to the oxide sulfate Zn3O(SO4)2 and finally to ZnO. ZnSO4 · 6 H2O crystallizes monoclinically in the hexahydrite structure with a25°C = 9.981 Å, b25°C = 7.250 Å, c25°C = 24.280 Å, β25°C = 98.45°, Z = 8, space group: C 2/c. Cubic H-ZnSO4 is the first A2+B6+O4 compound of H-Cristobalit structure; probable space group F 4 3 m with a700°C = 7.18 Å, Z =4, N-Zn3O(SO4)2 is monoclinic probable space group B 2 with a25°c=13.987 Å, b25°c=6.706 Å, c25°c =7.379 Å β25°c=90.69°, Z=4, Above 420°C N-Zn3(SO4)2 becomes orthorhombic where at first of all H′-Zn3O(SO4)2 which has a reversible transformation point to H-Zn3O(SO4)2 at 655°C is formed. The probable space group of H-Zn2O(SO4)2 is C 2221 with a 850°C = 7.36 Å, b350°C = 13.96 Å, c850°C = 6.79 Å Z = 4, The solid solution N? Cu1,5Zn1,5O(SO4)2 is isotypic with N? Zn3O(SO4)2 and has the lattice constants a25°C = 14.03 Å, b25°C = 6.62 Å, c25°C = 7.33 Å, β25°C = 90.58°, Transoformations into the non quenchable high temperature modifications H-ZnSO4, H′-Zn3O(SO4)2 and H-Zn3O(SO4)2 are displacive. The thermal expansion of N-ZnSO4 and H-ZnSO4 and H-ZnSO4 has been exa-mined.  相似文献   

2.
Methane reacted with MnF3 between 350-650°C affording hydrogen fluoride, MnF2, the fluoromethanes CH3F, CH2F2, CHF3 and CF4 and a complex mixture of less volatile fluorocarbons.Methane reacted with FeF3 between 650-950°C giving the fluoromethenes CH3F, CH2F2 and CHF3, C2H4 and carbon, as well as hydrogen fluoride and FeF2.A more detailed study of the CuF2-CH4 reaction between 600-850°C showed that copper metal, hydrogen fluoride and CH3F were always obtained, other products including CH2F2, CHF3, CF4, C2H4, C2H6, C2F6 and carbon. Yields of the fluoromethanes were enhanced by using relatively large amount of CuF2 and by adding CaF2 as an inert support. A nearly constant reaction rate occurred at a fixed temperature. Dilution of methane with nitrogen decreased yields of carbon and CH3F but increased yields of C2H4 and C2H6.A brief study of the reactions with CuF2 and some of the CH4-CuF2 reaction products was also made. Ethane and ethene both afforded traces of trifluoromethane and relatively large yields of carbon and hydrogen fluoride. That the fluorination of methane to tetrafluoromethane could take place sequentially was demonstrated by reactions with CH3F, CH2F2 and CHF3. Some pyrolysis of CH2F2 and CHF3 also occurred under the chosen reaction conditions.The CH4-CuF2 reaction was made part of a cyclic process in which generation of the CuF2 in situ from copper metal by successive reaction with oxygen at 400°C and hydrogen fluoride at temperatures rising to 600°C was followed by reaction with methane; 68% coversion to fluorinated products occurred. The cycle was completed by re-conversion of the copper metal residue back to CuF2 and further reaction with methane when almost identical yields of fluorocarbons and hydrogen fluoride were obtained.  相似文献   

3.
Dicarboxylate Groups as Ligands and Anions in Aquamagnesium Complexes: Crystal Structures of [Mg (C4H2O4)(H2O)4] · H2O and [Mg(H2O)6](C4HO4)2 · 2H2O ((C4H2O4)2— = Fumarate; (C4HO4) = Hydrogenacetylenedicarboxylate) Crystals of tetraaqua(fumarato)magnesium‐hydrate ( 1 ) and hexaaquamagnesium‐bis(hydrogenacetylenedicarboxylate)‐dihydrate ( 2 ) were prepared by reacting MgCl2 with sodium fumarate and acetylenedicarboxylic acid, respectively. In 1 cis‐Mg(H2O)4 units are bridged by α, Ö‐bonded fumarate groups. The resulting zig zag chains exhibit the maximum symmetry compatible with space group symmetry C2/c. 2 consists of layers of voluminous [Mg(H2O)6]2+ cations alternating with layers of C4HO4 anions. The nearly planar anions are held together by parallel stacking and by short hydrogen bonds. Both structures contain efficient H bridging systems. 1 : Space group C2/c, Z = 4, lattice constants at 20 °C: a = 5.298(1), b = 13.178(2), c = 13.374(2)Å; ß = 94.79(2)°, R1 = 0.024. 2 : Space group P1, Z = 1, lattice constants at 20 °C: a = 5.985(1), b = 6.515(1), c = 11.129(1)Å; α = 105.24(2), ß = 91.87(3), γ = 90.92(1)°, R1 = 0.034.  相似文献   

4.
An IR/UV study of the interaction between ethyl benzoate and Al(C2H5)3 in dilute heptane solution at 25–75°C demonstrated that the ester is readily reduced under these conditions with the formation of two aluminum dialkyl alkoxides, Al(C2H5)2 and Al(C2H5)2OC(C2H5)2C6H5, as major products. Rate constants of the reduction of the initial AI(C2H5)3 · ester complex by free AI(C2H5)3 are 2.9 (26°C), 14.4 (50°C), and 59.6 (75°C) L/mol min; Eact = 52.0 kj/mol. Study of propylene polymerization with this catalytic system at 50°C showed that preliminary aging of the AI(C2H5)4–ethyl benzoate mixtures at 25°C for 24 h and at 50°C for 2 h does not adversely affect catalyst performance. These data suggest that the possible actual modifier in this catalytic system is aluminum alkoxide with a highly branched tertiary alkoxy group.  相似文献   

5.
Reactions of Cu2 with several small molecules have been studied in the gas phase, under thermalized conditions at room temperature, in a fast-flow reactor. They fall into one of two categories. Cu2 does not react with O2, N2O, N2, H2, and CH4 at pressures up to 6 torr. This implies bimolecular rate constants of less than 5 × 10?15 cm3 s?1 at 6 torr He. Cu2 reacts with CO, NH3, C2H4, and C3H6 in a manner characteristic of association reactions. Second-order rate constants for all four of these reagents are dependent on total pressure. The reactions with CO, NH3, and C2H4 are in their low pressure limit at up to 6 torr He buffer gas pressure. The reaction with C3H6 begins to show fall-off behavior at pressures above 3 torr. Limiting low-pressure, third-order rate constants are 0.66 ± 0.10, 8.8 ± 1.2, 9.3 ± 1.4, and 85 ± 15 × 10?30 cm6 s?1 in He for CO, NH3, C2H4, and C3H6, respectively. Modeling studies of these rate constants imply that the association complexes are bound by at least 20 kcal mol?1 in the case of C2H4 and C3H6 and at least 25 kcal mol?1 in the other cases. The implications of these results for Cu-ligand bonding are developed in comparison with existing work on the interactions of these ligands with Cu atoms, larger clusters, and surfaces. © 1994 John Wiley & Sons, Inc.  相似文献   

6.
4-Vinylpyridinium trifluoromethanesulfonate monomers substituted at nitrogen with H, O, CH3, C2H5, C6H13, and C12H25 were synthesized and characterized spectroscopically. Thermal analyses (DSC and TGA) were carried out on all the compounds. The solid monomers (N? H, N? CH3, N? C6H13, and N? C12H25) exhibited endothermic melting followed by exothermic polymerization and exothermic decomposition (>400°C). Liquid N? C2H5 monomer revealed only exothermic polymerization and decomposition. The N? O polymer underwent thermal decomposition below 300°C. The N–C12H25 homopolymer, prepared from monomer in the DSC or in bulk, displayed an unusual thermal transition at 250°C, which has been attributed to a polymer backbone reorientation leading to side-chain ordering of the dodecyl groups.  相似文献   

7.
Solubility measurements of several nonpolar gases (He, Ne, Ar, Kr, Xe, H2, N2, CH4, C2H4, C2H6, CF4, SF6, and CO2) in 2,2,2-trifluoroethanol at 25°C and 101.33 kPa partial pressure of gas are reported. Gibbs energy for the solution process at 25°C is evaluated from the experimental values of the solubility of gases expressed as mole fraction. Lennard-Jones 6–12 pair potential parameters for 2,2,2-trifluoroethanol are estimated by using the scaled particle theory (SPT); and experimental solubilities are compared with those calculated from the values of these parameters through the SPT model.  相似文献   

8.
Sorption of He, H2, N2, O2, Ar, CH4, C2H6, and C2H6 in polybutadiene and the dilation of the polymer due to sorption of the gases are investigated over the pressure range 0-50 atm at 25°C. For CO2 the measurements are made at temperatures ranging from 15 to 80°C. Partial molar volumes of the gases in the polymer are determined. The temperature dependence of partial molar volume is discussed on the basis of the data for CO2. The Flory-Huggins interaction parameters of CO2, C2H4, and C2H6 are also estimated.  相似文献   

9.
刘佩芳  文利柏 《中国化学》1998,16(3):234-242
The mass transport and charge transfer kinetics of ozone reduction at Nafion coated Au electrodes were studied in 0.5 mol/L H2SO4 and highly resistive solutions such as distilled water and tap water. The diffusion coefficient and partition coefficient of ozone in Nafion coating are 1.78×10-6 cm2·s-1 and 2.75 at 25℃ (based on dry state thickness), respectively. The heterogeneous rate constants and Tafel slopes for ozone reduction at bare Au are 4.1×10-6 cm·s-1, 1.0×10-6 cm·s-1 and 181 mV, 207 mV in 0.5 mol/L H2SO4 and distilled water respectively and the corresponding values for Nafion coated Au are 5.5×10-6 cm·s-1, 1.1×10-6 cm·s-1 and 182 mV, 168 mV respectively. The Au microelectrode with 3 μm Nafion coating shows good linearity over the range 0-10 mmol/L ozone in distilled water with sensitivity 61 μA·ppm-1 ·cm-2, detection limit 10 ppb and 95% response time below 5 s at 25℃. The temperature coefficient in range of 11-30℃ is 1.3%.  相似文献   

10.
The kinetics of ethane oxidation was studied at 320, 340, 353 and 380°C, mixture composition 2 C2H6 + 1 O2, and total pressure 609 torr. It was found that at 320°C CH2O and CH3CHO were branching agents. A series of experiments was conducted on 2C2H6 + O2 oxidation in the presence of 0.7% 14C-labeled ethylene. The ethylene oxide was found to form only from C2H4, formaldehyde formed from C2H4 and C2H6; and CH3CHO, C2H5OH, and CH3OH formed only from ethane. The formation rates of C2H4, C2H4O, and CH2O were calculated by the kinetic tracer method. At 320°C the fraction of oxygen-containing products formed from C2H4 was 16–18%, and at 353 and 380°C it was 30–40%.  相似文献   

11.
The removal of *UF6 (A state) molecules by selected alkanes has been investigated at 25°C. The following rate constants (units of 1011 l/mol·sec) were evaluated: iso-C4F10, 0.0432 ± 0.0115; n-C4F10, 0.0764 ± 0.020; C2F6, 0.0192 ± 0.0052; CH4, 0.0612 ± 0.0061; C2H6, 3.78 ± 0.60; C3H8, 5.08 ± 0.60; n-C4H10, 5.05 ± 0.78; iso-C4H10, 4.17 ± 1.15; neo-C5H12, 6.59 ± 0.93; CF3? CH3, 0.0385 ± 0.0056; CF2H? CF2H, 0.0729 ± 0.0074; and CF2H? CFH2, 0.149 ± 0.015. The perfluoro-alkane quenching of *UF6 proceeds via a physical mechanism. The other alkane quenching reactions are consistent with a chemical mechanism also contributing in varying degrees which may involve removal of two hydrogens from the alkane.  相似文献   

12.
Triclinic single crystals of [(C6H10)(NH3)2][Ni(H2O)4C6H2(COO)4]·4H2O have been prepared in aqueous solution at 55 °C. Space group (Nr. 2), a = 691.23(6), b = 924.84(5), c = 1082.43(7) pm, α = 74.208(6)°, β = 75.558(7)°, γ = 68.251(6)°, V = 0.60985(7) nm3, Z = 1. The Nickel(II) species, located on a crystallographic inversion centre, is coordinated in a trans‐octahedral fashion by two oxygen atoms stemming from the centrosymmetric pyromellitate anions and four from water molecules (Ni–O 205.82(12) – 208.11(13) pm). The connection between Ni2+ and [C6H2(COO)4)]4? leads to infinite chain‐like polyanions extending parallel to with {Ni(H2O)4[C6H2(COO)4]2?}n composition. [(C6H10)(NH3)2]2+‐cations are accomodated between the chains, compensating for the negative charge of the polyanions. Thermogravimetric analysis in air showed that the loss of water of crystallisation occurs in two steps between 102 and 206 °C, corresponding to the loss of 6 and 2 water molecules per formula unit, respectively. The dehydrated sample was stable between 206 and 353 °C. Further decomposition yielded nickel(II) oxide (NiO).  相似文献   

13.
Cross-disproportionation/combination ratios for CFH2 and CF3 with C2H5 radicals have been determined to be Δ = 0.032 ± 0.012 and δ = 0.098 ± 0.020, respectively, over the temperature range 25–75°C. For the pathway that yields CFH and C2H6, δ = 0.020 ± 0.005 at 25°C.  相似文献   

14.
Polythermal Curves of the Quinary System Na+, K+, Mg2+/Cl?, SO//H2O in Range between +25°C and ?10°C Proceeding from the 0°C, ?5°C and ?10°C isothermal curves of the quinary system Na+, K+, Mg2+/C1?, SO//H2O with saturation at NaCl, KCl, and carnallite, respectively, the polythermal curve is represented between 25°C and ?10°C. Within the new defined range of the polythermal curve the invariant five-salt-paragenesis NaCI, KCI, Glauber's salt (Na2SO4 · 10 H2O), bitter salt (MgSO4 · 7 H2O), Schoenite (K2SO4 · MgSO4 · 6 H2O) can be found at ?7,2°C. It represents also the lowest temperature of formation of Schoenite in this system. It was necessary, moreover, to reconsider further univariant and invariant equilibrium solutions in the range between 25° and 0°C.  相似文献   

15.
The two novel thioantimonate(V) compounds [Mn(C6H18N4)(C6H19N4)]SbS4 ( I ) and [Mn(C6H14N2)3][Mn(C6H14N2)2(SbS4)2]·6H2O ( II ) were synthesized under solvothermal conditions by reacting elemental Mn, Sb and S in the stoichiometric ratio in 5 ml tris(2‐aminoethyl)amine (tren) at 140 °C or chxn (trans‐1, 2‐diaminocyclohexane, aqueous solution 50 %) at 130 °C. Compound I crystallises in the triclinic space group P1¯, a = 9.578(2), b = 11.541(2), c = 12.297(2)Å, α = 62.55(1), β = 85.75(1), γ = 89.44(1)°, V = 1202.6(4)Å3, Z = 2, and II in the monoclinic space group C2/c, a = 32.611(2), b = 13.680(1), c = 19.997(1)Å, β = 117.237(5)°, V = 7931.7(8)Å3, Z = 4. In I the Mn2+ cation is surrounded by one tetradentate tren molecule, one protonated tren acting as a monodentate ligand and a monodentate [SbS4]3— anion yielding a distorted octahedral environment. In II one unique Mn2+ ion is in an octahedral environment of three bidentate chxn molecules and the second independent Mn2+ ion is coordinated by two chxn ligands and two monodentate [SbS4]3— units leading to a distorted octahedral surrounding. The compounds were investigated and characterized with thermal and spectroscopic methods.  相似文献   

16.
The reactions of RCo(BDM1,3pn)(H2O) with light, heat, acids, electrophiles and nucleophiles were studied. (HBDM1,3pn is a mononegative, tetradentate dioxime-diimine ligand formed by condensing 2,3-butanedionemonoxime with 1,3-propanediamine in a 2/1 molar ratio; R = CH3, C2H5, n-C3H7, n-C4H9, and C6H3CH2-) Pyrolysis and photolysis of the alkyl complexes result in a cobalt(II) complex (anaerobic conditions) along with alkenes and alkanes. The major organic products from solid state pyrolysis at 200°C or photolysis in water are CH4 (R = CH3), C2H4 (R = C2H5), C3H6 (R = n-C3H7), C4H8 (R = n-C4H9) and (C6H5CH2)2 (R = C6H5CH2). No alkyl—cobalt bond cleavage occurs with acids or bases in most cases. Two exceptions are the reactions with 3 M HNO3 at 25°C and with 1 M NaOH at 52°C. Electrophiles like I2 cleave the alkyl—cobalt bond forming RI and CoIII (BDM1,3pn)I2. Nucleophilic reagents (N-) displace the H2O trans to the alkyl group to form RCo(BDM1,3pn)(N), but do not dealkylate the alkyl complex under the reaction conditions studied.  相似文献   

17.
A detailed reaction mechanism is developed and used to model experimental data on the pyrolysis of CHF3 and the non-oxidative gas-phase reaction of CHF3 with CH4 in an alumina tube reactor at temperatures between 873 and 1173 K and at atmospheric pressure. It was found that CHF3 can be converted into C2F4 during pyrolysis and CH2CF2 via reaction with CH4. Other products generated include C3F6, CH2F2, C2H3F, C2HF3, C2H6, C2H2 and CHF2CHF2. The rate of CHF3 decomposition can be expressed as 5.2×1013 [s−1] e−295[kJ mol−1]/RT. During the pyrolysis of CHF3 and in the reaction of CHF3 with CH4, the initial steps in the reaction involve the decomposition of CHF3 and subsequent formation of CF2 difluorocarbene radical and HF. It is proposed that CH4 is activated by a series of chain reactions, initiated by H radicals. The NIST HFC and GRI-Mech mechanisms, with minor modifications, are able to obtain satisfactory agreement between modelling results and experimental data. With these modelling analyses, the reactions leading to the formation of major and minor products are fully elucidated.  相似文献   

18.
The interaction between the decadentate ligand triethylenetetraminehexaacetic acid (TTHA or H6Z) and tripositive rare-earth metal ions (Ln3+) has been investigated. The acid formation constants of the hydrogen chelates (LnHZ2?, LnH2Z-) and the formation constants of the normal chelates (LnZ3?) have been evaluated at 15, 25 and 35°C, and at an ionic strength of 0.1 (KNO3), the former by a titration method and the latter by a mercury indicator electrode technique. Enthalpy and entropy changes characterizing the formation of the normal chelates have been calculated at 25°C. These functions have been compared with corresponding values for related chelating agents.  相似文献   

19.
The temperature dependence of the ratios of the rate constants k(C5H10)/k(C6H12) and k(C6H12)/k(C6D12) for the reaction of the cycloalkanes C5H10, C6H12, and C6D12 with OH+ cations in the system (NH4)2S2O8 (0.1 mol/kg)-H2SO4 (94.4 mass %) in the 6–50 °C range has been studied. The activation energies found E(C6H12) − E(C5H10) = − 5.3 ± 0.3 and E(C6D12) − E(C6H12) = 7.9 ± 0.7 (kJ/mol) permits the comparison of OH+ to a group of reagents (NO+2, Pd2+, HSO+3) which interact with the C-H bond via an electrophilic substitution mechanism. Translated from Teoreticheskaya i éksperimental'naya Khimiya, Vol. 44, No. 6, pp. 354–358, November–December, 2008.  相似文献   

20.
2,4-Bismethylthio-1,3,2,4-dithiadiphosphetane 2,4- disulfide, IIa, is prepared from 0,0-dimethyldithiophosphoric acid, Ia, and P4S10 at 160°C. 2,4-Bis(4-phenoxyphenyl)-1,3,2,4- dithiadiphsophetane 2,4-disulfide, IIc, and 2,4-bis(4-phenylthiolophenyl)-1,3,2,4-dithiadiphosphetane 2,4-disulfide, IId, are prepared at l60°C from P4 S10 and diphenylether and diphenylsulfides, respectively. Carboxylic acids RCOOH(R = CH3 C2H5, n-C3H7, n-C4H9, C6H5CH2, C6H8) react with compound Ia at 130°C to give the corresponding methyl dithioesters. Carboxylic acids RCOOH (R = C6H8-CH2, C6H8) react with compound Ib at 200°C for 15 min to give the corresponding ethyl dithioesters, while low boiling acids (R = CH3, C2H8, n-C3H7) yielded mixtures of the corresponding ethyl dithioester and ethyl carboxylate. Carboxylic acid chlorides RCOCl (R = ClCH2, C2H5, t-C4H5 C6H5CH2, C6H5, P-NO2C6H4) react with compound IIa at 80°C to give the corresponding methyl dithioesters in good yields. S-Substituted thioesters react with IIC at 85°C to give the corresponding dithioesters in good yields. Dihydro2(3H)-furanone, VI, and 5-methyl-2(3H)-furanone, VII, react with IIa at 80°C; to dihydro-2(3H)-thiophenethione, VIII and 2,2'-dithiobis(5-methyl thiophene),IX, respectively. Also XI reacts with IIa,IIc, and IId to give VIII in nearly quantitative yields.  相似文献   

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