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The thermal dehydration and decomposition of Cd(BF4)2·6H2O were studied by means of DTA, TG, DSC and X-ray diffraction methods and the end products of the thermal decomposition were identified. The results of thermal analysis show that the compound is fused first, then it is dehydrated until Cd(BF4)2·3H2O is obtained, which has not been described in the literature so far. The enthalpy of phase transition is H
ph.tr.=115.6 kJ mol–1 Separation of the compound is difficult since it is highly hygroscopic. Then, dehydration and decomposition take place simultaneously until CdF2 is obtained which is proved by X-ray diffraction. On further increasing the temperature, CdF2 is oxidized to CdO and the characteristic curve assumes a linear character.Based on TG data, kinetic analyses were carried out separately for both parts of the curve: first until formation of the trihydrate and then — until formation of CdF2. The formal kinetic parameters are as follows:for the first phase:E
*=45.3 kJ mol–1; rate equationF=2/3; correlation coefficient 0.9858 for the second phase:E
*=230.1 kJ mol–1; rate equationF=(1–)2/3[1-(1–)1/3]–1; correlation coefficient 0.9982. 相似文献
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NH4MnPO4·H2O was successfully synthesized by precipitating method. The LiMnPO4 was successfully generated through solid state reaction between synthesized NH4MnPO4·H2O precursor and Li2CO3. The morphologies were observed to depend on the reaction temperatures. The thermal decomposition of NH4MnPO4·H2O and the formation process of LiMnPO4 were confirmed by TG/DTG/DTA, FTIR, AAS/AES, XRD and SEM methods. The average crystallite size of NH4MnPO4·H2O, Mn2P2O7 and LiMnPO4 were found to be around 51.2, 44.9 and 48.1 nm, respectively. The non–isothermal kinetic parameters (kinetic triplet: Eα, A, g(α)) of the formation process of LiMnPO4 were evaluated from TG data by using Ozawa–Flynn–Wall and Kissinger–Akahira–Sunose methods. The iterative methods of both equations were carried out to determine the exact values of Eα. The Coats–Redfern equation and kinetic compensation effects were successfully applied to confirm the activation energy and the most probable mechanism functions of the formation of LiMnPO4. The thermodynamic functions (ΔH≠, ΔS≠, ΔG≠) of the transition state complexes of the formation of LiMnPO4 were calculated from the kinetic parameters for the first time. 相似文献
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《Journal of solid state chemistry》1986,61(2):263-268
The heat capacities of MnCl2·2H2O and MnCl2·2D2O have been experimentally determined from 1.4 to 300 K. The smooth heat capacity and the thermodynamic functions (H°T − H°0) and S°T are reported for the two compounds over the 10 and 300 K temperature range. The error in the thermodynamic functions at 10 K is estimated at 3%. Additional error in the tabulated values arising from the heat capacity data above 10 K is thought to be less than 1%. Lambda-shaped heat capacity features associated with antiferromagnetic ordering were observed at 6.67 ± 0.08 and 6.61 ± 0.08 K for the dihydrate and dideuterate, respectively. In addition, compound heat capacity anomalies consisting of a small lambda-shaped feature at 57.7 ± 0.5 K with a comparably large high-temperature shoulder extending to approximately 70 K were observed in both the dihydrate and dideuterate. The entropies associated with these anomalies are 0.42 ± 0.04 and 1.04 ± 0.04 J/mole-K, respectively. 相似文献
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Shilov G. V. Nikitina Z. K. Dobrovolskii Yu. A. Leonova L. S. Chernyak A. V. Tarasov V. P. Atovmyan L. O. 《Russian Journal of Coordination Chemistry》2004,30(11):759-764
Single crystals of the Rb4H2I2O10· 4H2O were synthesized for the first time and studied by X-ray diffraction analysis. The crystals are monoclinic, a = 7.321(6) Å, b = 12.599(8) Å, c = 8.198(8) Å, = 96.30(7)°, Z = 2, space group P21/c. The H2I2O10
4– anion is formed by the edge-sharing IO6 octahedra. The anions are united by hydrogen bonds into a chain running along the x axis. The chains are combined by water molecules into a three-dimensional structure through hydrogen bonds. The compound is a proton conductor. The conductivity values measured at 20–60°C vary within 10–6 to 10–4 ohm–1 cm–1. 相似文献
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Saifon Kullyakool Chanaiporn Danvirutai Khatcharin Siriwong Pittayagorn Noisong 《Journal of Thermal Analysis and Calorimetry》2014,115(2):1497-1507
The nickel phosphate octahydrate (Ni3(PO4)2·8H2O) was synthesized by a simple procedure and characterized by FTIR, TG/DTG/DTA, AAS, and XRD techniques. The morphologies of the title compound and its decomposition product were studied by the SEM method. The dehydration process of the synthesized hydrate occurred in one step over the temperature range of 120–250 °C, and the thermal decomposition product at 800 °C was found to be Ni3(PO4)2. The kinetic parameters (E and A) of this step were calculated using the Ozawa–Flynn–Wall and Kissinger–Akahira–Sunose methods. The iterative methods of both equations were carried out to determine the exact values of E, which confirm the single-step mechanism of the dehydration process. The non-isothermal kinetic method was used to determine the mechanism function of the dehydration, which indicates the contracting disk mechanism of R1 model as the most probable mechanism function and agrees well with the isothermal data. Besides, the isokinetic temperature value (T i) was calculated from the spectroscopic data. The thermodynamic functions of the activated complex (ΔS ≠, ΔH ≠, and ΔG ≠) of the dehydration process were calculated using the activated complex theory of Eyring. The kinetic parameters and thermodynamic functions of the activated complex for the dehydration process of Ni3(PO4)2·8H2O are reported for the first time. 相似文献
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Gaydamaka Anna A. Bagryantseva Irina N. Ponomareva Valentina G. 《Journal of Thermal Analysis and Calorimetry》2018,133(2):1121-1127
Journal of Thermal Analysis and Calorimetry - Thermal properties and phase transformations of Rb2HPO4·2H2O have been investigated by differential scanning calorimetry and thermogravimetry and... 相似文献
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Two pure hydrated lead borates, Pb(BO2)2·H2O and PbB4O7·4H2O, have been characterized by XRD, FT-IR, DTA-TG techniques and chemical analysis. The molar enthalpies of solution of Pb(BO2)2·H2O and PbB4O7·4H2O in 1 mol dm?3 HNO3(aq) were measured to be (?35.00 ± 0.18) kJ mol?1 and (35.37 ± 0.14) kJ mol?1, respectively. The molar enthalpy of solution of H3BO3(s) in 1 mol dm?3 HNO3(aq) was measured to be (21.19 ± 0.18) kJ mol?1. The molar enthalpy of solution of PbO(s) in (HNO3 + H3BO3)(aq) was measured to be ?(61.84 ± 0.10) kJ mol?1. From these data and with incorporation of the enthalpies of formation of PbO(s), H3BO3(s) and H2O(l), the standard molar enthalpies of formation of ?(1820.5 ± 1.8) kJ mol?1 for Pb(BO2)2·H2O and ?(4038.1 ± 3.4) kJ mol?1 for PbB4O7·4H2O were obtained on the basis of the appropriate thermochemical cycles. 相似文献