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1.
On the Existence of Intermediate Reaction Products of Potassium Hydrogen Phosphate and Diphosphate: K2H8(PO4)2P2O7 The crystal structure of K2H8(PO4)2P2O7 has been determined from diffractometer data obtained using MoKα radiation. The space group is Pca21 with a = 9.364(2), b = 7.458(2) and c = 19.560(2) Å, V = 1 366.0 Å3; dm = 2.17(1) g/cm3. Z = 4 · μ(MoKα) = 12.47 cm?1. The structure was solved by direct methods. The crystal structure was refined to R = 0.025 for 416 independent reflexions. Two kinds of PO4 exist and the mean value of P? O is 1.55(2) Å for one and 1.53(2) Å for the other. In P2O7 the angle P? O? P is 135(1)°. The distances P? O of bridge are 1.59(2) and 1.57(2) Å the mean value of P? O in terminals ? PO3 is 1.51(2) Å. The coordination numbers of the potassium ions are nine and eight. K2H8(PO4)2P2O7, compound with mixed anion PO4/P2O7 may be considered as reactional intermediary between acid orthophosphate and pyrophosphate.  相似文献   

2.
Sbai  K.  Atibi  A.  Charaf  A.  Radid  M.  Jouini  A. 《Journal of Thermal Analysis and Calorimetry》2002,69(2):627-645
We have studied the dehydration and the calcination under atmospheric pressure of cyclotriphosphate tetrahydrate of nickel and sodium, NiNa4(P3O9)2·6H2O, between 25 and 700°C by thermal analyses (TG, DTA) infrared spectrometry and X-ray diffraction. This study allows us the identification and the crystallographic characterization of a new phase, NiNa4(PO3)6, obtained between 350 and 450°C. NiNa4(PO3)6 crystallizes in the triclinic system, P–1, with the following unit cell parameters a=6.157(3) Å, b=6.820(6) Å, c=10.918(6) Å, =80.21(5)°, =97.80(9)°, =113.49(3)°, V=409.8 Å3, Z=1, M(19)=25 and F(19)=48 (0.0095; 42). The calcination of NiNa4(PO3)6, between 500 and 600°C, leads to a mixture of long-chain polyphosphates NiNa(PO3)3 and NaPO3. The kinetic characteristics of the dehydration of NiNa4(P3O9)2·6H2O were determined and discussed. The vibrational spectrum of the title compound, NiNa4(P3O9)2·6H2O, was interpreted in the domain of the stretching vibrations of the P3O9 rings, on the basis of its crystalline structure and in the light of the calculation of the normal IR frequencies of the P3O9 ring with D3h symmetry.
This revised version was published online in November 2005 with corrections to the Cover Date.  相似文献   

3.
Single crystals of the first anhydrous thallium nickel phosphates were prepared by reaction of heterogeneous Tl/Ni/P alloys with oxygen. TlNi4(PO4)3 (pale‐yellow, orthorhombic, space group Cmc21, a = 6.441(2)Å, b = 16.410(4)Å, c = 9.624(2)Å, Z = 4) crystallizes with a structure closely related to that of NaNi4(PO4)3. Tl4Ni7(PO4)6 (yellow‐brown, monoclinic, space group Cm, a = 10.711(1)Å, b = 14.275(2)Å, c = 6.688(2)Å, β = 103.50(2)°, Z = 8) is isotypic with Na4Ni7(PO4)6, and Tl2Ni4(P2O7)(PO4)2 (brown, monoclinic, space group C2/c, a = 10.389(2)Å, b = 13.888(16)Å, c = 18.198(3)Å, β = 103.1(2)°, Z = 8) adopts the K2Ni4(P2O7)(PO4)2 structure. Tl2Ni4(P2O7)(PO4)2 could also be prepared in nearly single phase form by reaction of Tl2CO3, NiO, and (NH4)2HPO4.  相似文献   

4.
The LiPO3-La(P3O9) system was studied by microdifferential thermal analysis. The only new compound observed in the system was LiLa(PO3)4, melting incongruently at 960°C. A eutectic appears at 640°C, for the mixture containing 5 mole% LaP3O9. Crystallographic data and powder diagrams of the new compound are given. The LiLa(PO3)4 is an LiNd(PO3)4 isotype. It crystallises in the monoclinic system C2/c with a unit cell a = 16.53 (3), b = 7.08 (3), c = 9.88 (2) Å, β = 126.42 (5), and Z = 4.  相似文献   

5.
Chemical preparation methods, X-ray diffraction and vibrational data are reported for six triphosphates type MIINa3P3O10.12H2O (MII = Cu, Ni and Mg) and their anhydrous forms MIINa3P3O10. These condensed phosphates are respectively, CuNa3P3O10.12H2O, MgNa3P3O10.12H2O, NiNa3P3O10.12H2O, CuNa3P3O10, NiNa3P3O10 and MgNa3P3O10. The hydrate triphosphates were prepared by the method of ion-exchange resin, where as their anhydrous forms were prepared by total thermal dehydration of MIINa3P3O10.12H2O (MII = Cu, Ni and Mg).CuNa3P3O10.12H2O, MgNa3P3O10.12H2O and NiNa3P3O10.12H2O are isotypic, and crystallize in the monoclinic system, space group is P21/n, Z = 4, the unit-cell parameters are: CuNa3P3O10.12H2O, a = 15.052(8) Å, b = 9.234(3) Å,c = 14.767(8) Å and β = 90.03(5)°. MgNa3P3O10.12H2O: a = 15.049(1) (1) Å, b = 9.245(4) Å, c = 14 0.722(3) (2) Å and β = 90.00(5)°.NiNa3P3O10.12H2O: a = 15.010(1) Å, b = 9.208(4) Å, c = 14.710(2) Å and β = 90.00(5)°.The anhydrous forms CuNa3P3O10, MgNa3P3O10 and NiNa3P3O10 crystallize in the monoclinic system, space group is P21/n, Z = 4, the unit-cell parameters are: CuNa3P3O10, a = 12.464(0) Å, b = 8.437(7) Å, c = 12.083(1) Å and β = 109.77(8) °; MgNa3P3O10: a = 11.931(4) (1) Å, b = 12.912(2) Å, c = 10.057(0) Å and β = 113.83(2)° and NiNa3P3O10: a = 12.686(8)Å, b = 9.271(2) (4) Å, c = 11.440(3) Å and β = 102,95(5)°.  相似文献   

6.
Chemical preparations and crystal structures are described for two new bismuth salts: BiHNH4P3O10 and BiNH4(PO3)4. The first one is a new type of tripolyphosphate, while the second one, a long chain polyphosphate, is isostructural with RbNd(PO3)4 and some other MILn(PO3)4 compounds. BiHNH4P3O10 is triclinic, P1 , with a = 7.032(8), b = 7.696(4), c = 8.659(3) Å, α = 106.20(4), β = 105.86(4), γ = 82.78(4)°, Z = 2, V = 432.3 Å3, Dx = 3.694. BiNH4(PO3)4 is monoclinic, P21/n, with a = 10.925(9), b = 9.034(8), c = 10.438(9) Å, β = 106.18(4), Z = 4, V = 989.4 Å3, Dx = 3.644. The crystal structure of BiHNH4P3O10 has been solved by using 4253 independent reflexíons with a final R value of 0.056. The unit cell contains two P3O105? groups related by an inversion center while bismuth atoms in a eightfold coordination build infinite chains of edge-sharing BiO8 polyhedra running parallel to the a axis. The crystal structure of BiNH4(PO3)4 has been solved using 4330 independent reflexions with a final R value of 0.047. Infinite (PO3) chains spread along the [101] direction, alternating with isolated BiO8 polyhedra.  相似文献   

7.
New Heteropolyanions of the M2X2W20 Structure Type with Antimony(III) as a Heteroatom The syntheses of two new heteropolyanions of the M2X2W20 structure type are presented. They are characterized by X‐ray structure analysis and vibrational spectra. Na6(NH4)4[Zn2(H2O)6(WO2)2(SbW9O33)2]·36H2O (1) is monoclinic (P21/n) with a = 12.873(3)Å, b = 25.303(4)Å, c = 15.975(4)Å and β = 91.99(3)°. Na10[Mn2(H2O)6(WO2)2(SbW9O33)2]·40H2O (2) also crystallizes in the space group P21/n with a = 12.892(3)Å, b = 25.219(5)Å, c = 16.166(3)Å and β = 94.41(3)°. Both polyanions are isostructural to anions of this structure type containing other heteroatoms. They are built up by two β‐B‐SbW9 fragments, which are derived from defect structures of the Keggin anion. These subÍunits are connected by two formal WO2 groups with further stabilization by addition of two M(H2O)3 groups (M = ZnII, MnII, FeIII, CoII) leading to the M2X2W20‐type heteropolytungstates.  相似文献   

8.
Contributions on the Thermal Behaviour of Anhydrous Phosphates. IX. Synthesis and Crystal Structure of Cr6(P2O7)4. A Pyrophosphate Containing Di- and Trivalent Chromium Cr6(P2O7)4 (Cr22+Cr43+(P2O7)4) can be obtained reducing CrPO4 by phosphorus (950°C, 48 h, 100 mg iodine as mineralizer). By means of chemical transport reactions (transport agent iodine; 1050 → 950°C) the compound has been separated from its neighbour phases (Cr2P2O7, CrP3O9) and crystallized (greenish, transparent crystals; edge length up to 0.3 mm). The crystal structure of Cr6(P2O7)4 (Spcgrp.: P-1; z = 1; a = 4.7128(8) Å, b = 12.667(3) Å, c = 7.843(2) Å, α = 89.65(2)°, β = 92.02(2)°, γ = 90.37(2) has been solved and refined from single crystal data (2713 unique reflections, 194 parameter, R = 0.035). Cr2+ is surrounded by six oxygen atoms which occupy the corners of an elongated octahedron (4 × dCr? O ≈? 2.04 Å; 2 × dCr? O ≈? 2.62 Å). The Cr3+ ions are also coordinated octahedraly (1.930 Å ≤ dCr? O ≤ 2.061 Å). The crystallographically independent pyrophosphate groups show nearly eclipsed conformation. The bridging angles (P? O? P) are 136.5° and 138.9° respectively.  相似文献   

9.
Contributions on Crystal Chemistry and Thermal Behaviour of Anhydrous Phosphates. XXXII. New Orthophosphates of Divalent Chromium — Mg3Cr3(PO4)4, Mg3, 75Cr2, 25(PO4)4, Ca3Cr3(PO4)4 and Ca2, 00Cr4, 00(PO4)4 Solid state reactions via the gas phase led in the systems A3(PO4)2 / Cr3(PO4)2 (A = Mg, Ca) to the four new compounds Mg3Cr3(PO4)4 ( A ), Mg3.75Cr2.25(PO4)4 ( B ), Ca3Cr3(PO4)4 ( C ), and Ca2.00Cr4.00(PO4)4 ( D ). These were characterized by single crystal structure investigations [( A ): P21/n, Z = 1, a = 4.863(2) Å, b = 9.507(4) Å, c = 6.439(2) Å, β = 91.13(6)°, 1855 independend reflections, 63 parameters, R1 = 0.035, wR2 = 0.083; ( B ): P21/a, Z = 2, a = 6.427(2) Å, b = 9.363(2) Å, c = 10.051(3) Å, β = 106.16(3)°, 1687 indep. refl., 121 param., R1 = 0.032, wR2 = 0.085; ( C ): P‐1, Z = 2, a = 8.961(1) Å, b = 8.994(1) Å, c = 9.881(1) Å, α = 104.96(2)°, β = 106.03(2)°, γ = 110.19(2)°, 2908 indep. refl., 235 param., R1 = 0.036, wR2 = 0.111; ( D ): C2/c, Z = 4, a = 17.511(2) Å, b = 4.9933(6) Å, c = 16.825(2) Å, β = 117.95(1)°, 1506 indep. refl., 121 param., R1 = 0.034, wR2 = 0.098]. The crystal structures contain divalent chromium on various crystallographic sites, each showing a (4+n)‐coordination (n = 1, 2, 3). For the magnesium compounds and Ca2.00Cr4.00(PO4)4 a disorder of the divalent cations Mg2+/Cr2+ or Ca2+/Cr2+ is observed. Mg3.75Cr2.25(PO4)4 adopts a new structure type, while Mg3Cr3(PO4)4 is isotypic to Mg3(PO4)2. Ca3Cr3(PO4)4 and Ca2.00Cr4.00(PO4) 4 are structurally very closely related and belong to the Ca3Cu3(PO4)4‐structure family. The orthophosphate Ca9Cr(PO4)7, containing trivalent chromium, has been obtained besides C and D .  相似文献   

10.
Yellowish single crystals of acidic mercury(I) phosphate (Hg2)2(H2PO4)(PO4) were obtained at 200 °C under hydrothermal conditions in 32% HF from a starting complex of microcrystalline (Hg2)2P2O7. Refinement of single crystal data converged at a conventional residual R[F2 > 2σ(F2)] = 3.8% (C2/c, Z = 8, a = 9.597(2) Å, b = 12.673(2) Å, c = 7.976(1) Å, β = 110.91(1)°, V = 906.2(2) Å3, 1426 independent reflections > 2σ out of 4147 reflections, 66 variables). The crystal structure consists of Hg22+‐dumbbells and discrete phosphate groups H2PO4 and PO43–. The Hg22+ pairs are built of two crystallographically independent Hg atoms with a distance d(Hg1–Hg2) = 2.5240(6) Å. The oxygen coordination sphere around the mercury atoms is asymmetric with three O atoms for Hg1 and four O atoms for Hg2. The oxygen atoms belong to the different PO4 tetrahedra, which in case of H2PO4‐groups are connected by hydrogen bonding. Upon heating over 230 °C, (Hg2)2(H2PO4)(PO4) condenses to (Hg2)2P2O7, which in turn disproportionates at higher temperatures into Hg2P2O7 and elemental mercury.  相似文献   

11.
Contributions on Crystal Structures and Thermal Behaviour of Anhydrous Phosphates. XXIII. Preparation, Crystal Structure, and Thermal Behaviour of the Mercury(I) Phosphates α-(Hg2)3(PO4)2, β-(Hg2)3(PO4)2, and (Hg2)2P2O7 Light-yellow single crystals of (Hg2)2P2O7 have been obtained via chemical vapour transport in a temperature gradient (500 °C → 450 °C, 23 d) using Hg2Cl2 as transport agent. Characteristic feature of the crystal structure (P2/n, Z = 2, a = 9,186(1), b = 4,902(1), c = 9,484(1) Å, β = 98,82(2)°, 1228 independent of 5004 reflections, R(F) = 0,066 for 61 variables, 7 atoms in the asymmetric unit) are Hg22+-units with d(Hg1–Hg1) = 2,508 Å and d(Hg2–Hg2) = 2,519 Å. The dumbbells Hg22+ are coordinated by oxygen, thus forming polyhedra [(Hg12)O4] and [(Hg22)O6]. These polyhedra share some oxygen atoms. In addition they are linked by the diphosphate anion P2O74– (ecliptic conformation; ∠(P,O,P) = 129°) to built up the 3-dimensional structure. Under hydrothermal conditions (T = 400 °C) orange single crystals of the mercury(I) orthophosphates α-(Hg2)3(PO4)2 and β-(Hg2)3(PO4)2 have been obtained from (Hg2)2P2O7 and H3PO4 (c = 1%). The crystal structures of both modifications have been refined from X-ray single crystal data [α-form (β-form): P21/c (P21/n), Z = 2 (2), a = 8,576(3) (7,869(3)), b = 4,956(1) (8,059(3)), c = 15,436(3) (9,217(4)) Å, β = 128,16(3) (108,76(4))°, 1218 (1602) independent reflections of 4339 (6358) reflections, R(F) = 0,039 (0,048) for 74 (74) variables, 8 (8) atoms in the asymmetric unit]. In the structure of α-(Hg2)3(PO4)2 three crystallographically independent mercury atoms, located in two independent dumbbells, are coordinated by three oxygen atoms each. Thus, [(Hg2)O6] dimers with a strongly distorted tetrahedral coordination of all mercury atoms are formed. Such dimers are present besides [(Hg2)O5]-polyhedra in the less dense crystal structure of β-(Hg2)3(PO4)2 (d(Hg–Hg) = 2,518 Å). The mercury(I) phosphates are thermally labile and disproportionate between 200 °C (β-(Hg2)3(PO4)2) and 480 °C (α-(Hg2)3(PO4)2) to elemental mercury and the corresponding mercury(II) phosphate.  相似文献   

12.
The AgPO3-LaP3O9 system was investigated for the first time by DTA, X-ray diffraction, and IR spectroscopy. The only definite compound observed in the system was AgLa (PO3)4, which melted incongruently at 800°C. The method of preparation, powder diagram and crystallographic data of AgLa(PO3)4 are given. AgLa(PO3)4 crystallises in the monoclinic system P21/C with a unit cell: a = 12.38(2) Å; b = 12.88(2) Å; c = 7.33(1) Å; β = 127°91(6) z = 4. Its IR absorption spectrum is typical of a chain phosphate.  相似文献   

13.
Abstract

Chemical presparation, thermal behavior, and infrared (IR) studies are discussed for the cyclotriphosphate MnK4(P3O9)2.2H2O and its anhydrous form MnK4(P3O9)2. The total dehydration of MnK4(P3O9)2.2H2O, between 200 and 550 °C, leads to its anhydrous form MnK4(P3O9)2. MnK4(P3O9)2 is a new cyclotriphosphate crystallizing in the rhombohedral system and is stable until its melting point at 560 °C. The thermal behavior of MnK4(P3O9)2.2H2O has been investigated and interpreted by comparison with IR absorption spectrometry and X-ray diffraction experiments. Two different methods, Ozawa and KAS (Kissinger-Akahira-Sunose), were selected in studying the kinetics of thermal behavior of the title compound. Quantum chemical calculations were made for the P3O 3? 9 ion.

Supplemental materials are available for this article. Go to the publisher's online edition of Phosphorus, Sulfur, and Silicon and the Related Elements to view the free supplemental file.

GRAPHICAL ABSTRACT  相似文献   

14.
Pale rose single crystals of SrMn2(PO4)2 were obtained from a mixture of SrCl2 · 6 H2O, Mn(CH3COO)2, and (NH4)2HPO4 after thermal decomposition and finally melting at 1100 °C. The new crystal structure of strontium manganese orthophosphate [P‐1, Z = 4, a = 8.860(6) Å, b = 9.054(6) Å, c = 10.260(7) Å, α = 124.27(5)°, β = 90.23(5)°, γ = 90.26(6)°, 4220 independent reflections, R1 = 0.034, wR2 = 0.046] might be described as hexagonal close‐packing of phosphate groups. The octahedral, tetrahedral and trigonal‐bipyramidal voids within this [PO4] packing provide different positions for 8‐ and 10‐fold [SrOx] and distorted octahedral [MnO6] coordination according to a formulation Mn Mn Mn Sr (PO4)4. Single crystals of β′‐Mn3(PO4)2 (pale rose) were grown by chemical vapour transport (850 °C → 800 °C, P/I mixtures as transport agent). The unit cell of β′‐Mn3(PO4)2 [P21/c, Z = 12, a = 8.948(2) Å, b = 10.050(2) Å, c = 24.084(2) Å, β = 120.50°, 2953 independent reflections, R1 = 0.0314, wR2 = 0.095] contains 9 independent Mn2+. The reinvestigation of the crystal structure led to distinctly better agreement factors and significantly reduced standard deviations for the interatomic distances.  相似文献   

15.
Single crystals of oxidephosphates MTi2O2(PO4)2 [M: Fe (dark red), Co (pinkish red), Ni (green)] with edge‐lengths up to 0.4 mm were grown by chemical vapour transport. FeTi2O2(PO4)2 and CoTi2O2(PO4)2 are isotypic to NiTi2O2(PO4)2. The crystal structure of the latter was previously solved from powder data [FeTi2O2(PO4)2 (data for CoTi2O2(PO4)2 and NiTi2O2(PO4)2 in brackets): monoclinic, P21/c, Z = 2, a = 7.394(3) (7.381(6), 7.388(4)) Å, b = 7.396(2) (7.371(5), 7.334(10)) Å, c = 7.401(3) (7.366(6), 7.340(3)) Å, β = 120.20(3) (120.26(6), 120.12(4))°, R1 = 0.0393 (0.0309, 0.0539) wR2 = 0.1154 (0.0740, 0.1389), 2160 (1059, 1564) independent reflections, 75 (76, 77) variables]. The single‐crystal study allowed improved refinement using anisotropic displacement parameters, yielded lower standard deviations for the structural parameters and revealed a small amount of cation disordering. Twinning and cation disordering within the structures are rationalized by a detailed crystallographic classification of the MTi2O2(PO4)2 structure type in terms of group‐subgroup relations. The structure is characterized by a three‐dimensional network of [PO4] tetrahedra and [MIITi2O12] groups formed by face‐sharing of [MIIO6] and [TiO6] octahedra. Electronic absorption spectra of MTi2O2(PO4)2 in the UV/VIS/NIR region show rather large ligand‐field splittings for the strongly trigonally distorted chromophors [MIIO6] (M = Fe, Co, Ni) with interelectronic repulsion parameters beeing slightly smaller than in other phosphates. Interpretation of the spectra within the framework of the angular overlap model reveals a significant second‐sphere ligand field effect of TiIV ions on the electronic levels of the NiII and CoII.  相似文献   

16.
The dehydration of Ca(H2PO4)2·H2O was examined with simultaneous DTA and TG. This dehydration permitted clearly the apparation of the following phases: Ca(H2PO4)2·0.5H2O, Ca(H2PO4)2, Ca3(HP2O7)2, Ca2HP3O10 et Ca(PO3)2. The reaction of Ca(H2PO4)2·H2O and CaSO4 was also examined with the same technics. It was found that the decomposition of CaSO4 takes place for relatively low temperature (between 600°C and 800°C).  相似文献   

17.
Crystal Structure of KZr2(AsO4)3 KZr2(AsO4)3 crystals have been prepared by the flux method. The compound crystallizes in the rhombohedral system with the parameters: a = 9.028(1), c = 24.399(3) Å. The density is d = 3.694 g/cm3 and Z = 6. The space group is R3 c. The structure has been solved by isotypism with that of NaZr2(PO4)3 to R = 0.041, for 353 independent reflections. It consists in 3-dimensional chains of AsO4 tetrahedra and ZrO6 octahedra. K+ ions are the center of the antiprism with K—O distances equal to 2.813 Å. The Zr–O and As–O distances have the same values of those usually observed (Zr–O = 2,05 Å and As–O = 1.66 Å).  相似文献   

18.
The system CuO‐Fe2O3‐P2O5 has been investigated by means of the solid state reaction between CuO, Fe2O3 and (NH4)2HPO4 in quartz crucibles at 900 °C. The powder samples were characterized by X‐ray diffraction, IR spectroscopy and TG/DTA. Single crystals of a new quaternary phase Cu8Fe2P4O21 were achieved by cooling from the melt of the compound in a sealed, evacuated quartz ampoule. Cu8Fe2O5(PO4)4 crystallizes in the monoclinic space group C2/m (No 12) with a = 15.9733(8) Å, b = 5.9438(3) Å, c = 9.5530(5) Å, β = 113.76(1)°, Z = 2. The three‐dimensional framework consists of [FeO6] octahedra, three different [CuO5] polyhedra and [PO4] tetrahedra. Cu8Fe2P4O21 exhibits an incongruently melting point at 945 °C.  相似文献   

19.
After a short survey of what is the present state of the cyclophosphates associated with the organic molecule NH2(CH2)4NH2, we report chemical preparation and crystal structure for a new example of such compounds. [NH3(CH2)4NH3]2P4O12.2H2O is monoclinic (S.G. : P21/n), with Z = 2 and the following unit-cell parameters : a = 7.6728(8) Å, b = 18.962(3) Å, c = 7.9789(9) Å β = 111.751(9)°. Bidimensional layer arrangement of P4O12 rings connected to the water molecules thanks to weak H-bonds run parallel to the ab plane. The organic groupements located between these inorganic planes perform the three-dimensional cohesion by NH····O hydrogen bonds.  相似文献   

20.
The crystal structure of [C10N2H10]2[P2Mo5O21(OH)2] · 2H2O, contains the heteropolyanion, [P2Mo5O21(OH)2]4—, together with diprotonated 4, 4′‐bipyridine. The heteropolyanion is built up from five MoO6 octahedra sharing four common edges and one common corner, capped by two PO3(OH) tetrahedra. The structure is stabilized by hydrogen bonds involving the hydrogen atoms of the 4, 4′‐bipyridine, water molecules and the oxygen atoms of the pentamolybdatobisphosphate. This is the first example that this kind of cluster could be isolated in the presence of a poly‐functional aromatic molecule ion. Crystal data: triclinic, P1¯ (No. 2), a = 9.983(2)Å, b = 11.269(2)Å, c = 17.604(4)Å, α = 73.50(3)°, β = 84.07(3)°, γ = 67.96(3)°; V = 1760.0(6)Å3; Z = 2; R1 = 0.037 and wR2 = 0.081, for 9138 reflections [I > 2σ(I)].  相似文献   

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