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1.
Polypyrrole-modified graphitic carbon nitride composites (PPy/g-C3N4) are fabricated using an in-situ polymerization method to improve the visible light photocatalytic activity of g-C3N4. The PPy/g-C3N4 is applied to the photocatalytic degradation of methylene blue (MB) under visible light irradiation. Various characterization techniques are employed to investigate the relationship between the structural properties and photoactivities of the as-prepared composites. Results show that the specific surface area of the PPy/g-C3N4 composites increases upon assembly of the amorphous PPy nanoparticles on the g-C3N4 surface. Owing to the strong conductivity, the PPy can be used as a transition channel for electrons to move onto the g-C3N4 surface, thus inhibiting the recombination of photogenerated carriers of g-C3N4 and improving the photocatalytic performance. The elevated light adsorption of PPy/g-C3N4 composites is attributed to the strong absorption coefficient of PPy. The composite containing 0.75 wt% PPy exhibits a photocatalytic efficiency that is 3 times higher than that of g-C3N4 in 2 h. Moreover, the degradation kinetics follow a pseudo-first-order model. A detailed photocatalytic mechanism is proposed with ·OH and ·O2? radicals as the main reactive species. The present work provides new insights into the mechanistic understanding of PPy in PPy/g-C3N4 composites for environmental applications.  相似文献   

2.
Nd3NCl6 and Nd4NS3Cl3: Two Derivatives of Neodymium Nitride with Discrete Units of Edge‐Shared ([N2Nd6]12+) and Isolated [NNd4]9+ Tetrahedra, respectively For the preparation of Nd3NCl6 (orthorhombic, Pbca; a = 1049.71(8), b = 1106.83(8), c = 1621.1(1) pm; Z = 8) and Nd4NS3Cl3 (hexagonal, P63mc; a = 922.78(6), c = 683.06(4) pm; Z = 2) elemental neodymium is reacted with sodium azide (NaN3), neodymium trichloride (NdCl3) and in the case of Nd4NS3Cl3 additionally with sulfur in evacuated silica tubes at 750 °C (Nd3NCl6) and 850 °C (Nd4NS3Cl3), respectively. Thereby the hydrolysis‐sensitive nitride chloride forms coarse, brick‐shaped single crystals, while those of the insensitive nitride sulfide chloride emerge hexagonally and pillar‐shaped. The pale violet compounds each exhibit [NNd4] tetrahedra as characteristic structural features, which are connected via a common edge to form discrete pairs of tetrahedra ([N2Nd6]12+) in Nd3NCl6 and are present in Nd4NS3Cl3 even as isolated [NNd4]9+ units. Their three‐dimensional cross‐linkage as well as the charge‐balance regulation proceed solely through Cl anions in the nitride chloride, but through equimolar amounts of S2– and Cl anions in the nitride sulfide chloride. The crystal structure of Nd3NCl6 shows three crystallographically independent Nd3+ cations, each of which is eightfold coordinated by anions (Nd1: 2 N3– + 6 Cl; Nd2 and Nd3: 1 N3– + 7 Cl). Only two different kinds of Nd3+ underlie the structure of Nd4NS3Cl3: Nd1 is surrounded by one N3–, six S2– and three Cl with CN = 10, whereas one N3–, four S2– and three Cl only are coordinating Nd2 with CN = 8.  相似文献   

3.
The crystal structures of N-o-hydroxybenzimido-meso-tetraphenylporphyrinatozinc(II) toluene solvate [Zn(N-NCO(o-OH)C6H4-tpp)·C6H5CH3; 4·C6H5CH3], N-o-hydroxybenzimido-meso-tetraphenylporphyrinatonickel(II) chloroform solvate [Ni(N-NCO(o-OH)C6H4-tpp)·0.6CHCl3; 5·0.6 CHCl3], N-o-hydroxybenzimido-meso-tetraphenylporphyrinatocopper(II) toluene solvate [Cu(N-NCO(o-OH)C6H4-tpp)·C6H5CH3; 6·C6H5CH3] and N-o-oxido-benzimido-meso-tetraphenylporphyrinato(-κ4,N1,N2,N3,N5,κO2) manganese (III) methylene chloride·methanol solvate [Mn(N-NCO(o-O)C6H4-tpp)·CH2Cl2·MeOH; 8·CH2Cl2·MeOH] were established. The coordination sphere around Zn2+ ion in 4·C6H5CH3, (or Ni2+ ion in 5·0.6 CHCl3 or Cu2+ ion in 6·C6H5CH3) is a distorted square planar (DSP) whereas for Mn3+ in 8·CH2Cl2·MeOH, it is a distorted trigonal bipyramid (DTBP) with O(1), N(1) and N(3) lying in the equatorial plane for 8·CH2Cl2·MeOH. The g value of 8.27 measured from the parallel polarization of X-band EPR spectra at 293 K is consistent with the high-spin mononuclear manganese(III) (S = 2) in 8. The magnitude of axial (D) zero-field splitting (ZFS) for the mononuclear Mn(III) in 8 was determined approximately as 3.0 cm?1 by the paramagnetic susceptibility measurements and conventional EPR spectroscopy.  相似文献   

4.
Three Cd(II) or Co(II) macroacyclic Schiff-base complexes [CoL1Br]ClO4 (1), [CdL2Cl]ClO4 (2) and [CdL3(NO3)]ClO4 (3) were prepared by template condensation of 2-pyridinecarboxaldehyde and three different amines containing piperazine moiety, N,N′-bis(2-aminoethyl)piperazine, N,N′(2-aminoethyl)(3-aminopropyl)piperazine and N,N′-bis(3-aminopropyl)piperazine, in the presence of Co(II) or Cd(II) metal ions, respectively. All complexes have been studied with IR, FAB mass and microanalysis and for complex (3) by 1H and 13C NMR spectra. One of these complexes, [CdL3(NO3)]ClO4 (3) has been characterized through X-ray crystallography. In complex (3), the Cd(II) ion is coordinated by the six nitrogen donor atoms from the ligand and by one oxygen atom from a monodentate nitrate ion in a N6O environment.  相似文献   

5.
F. Cech  E. Zbiral 《Tetrahedron》1975,31(6):605-612
IR-spectroscopic measurements between ?60° and 0°C show the existence of C6H5J(OAc)2-n(N3)n generated by the reaction of C6H5J(OAc)2 with (CH3)3SiN3. C6H5J(OAc)2-n(N3)n reacts with 2,3-dimethylbutad to give substances C12H20N6 (1), having the probable structure of 2,3,5-trimethyl-3,6-di-azidomethyl-heptadiene-1,5 and 3,4-diazido-3-methylbutanone-2 (2). Likewise we get from 1,3-cyclohexadiene the diazide C12H16N6 (3), and 4-azido-cyclohexene-2-on-1 (4). Analogously from cyclopentadiene we get the carbonylcompound 4-azido-cyclopentene-2-on-1 (5). E-5-azido-hexene-3-on (8) results from 2,4-E,Z-hexadiene. 1,3-cyclooctadiene gives as main product 6 (4-azido-cyclooctene-2-on-1) but also some 7 (8-azido-cyclooctene-2-on-1) emerging from an attack on positions 1 and 2.Δ1,3, Δ3,5 and Δ4,6-cholestadiene yield in a regio- and stereo-specific manner the products 9 (1α-azidocholestene-2-on-4), 10 (6β-azidocholestene-4-on-3) and 11 (4β-azidocholestene-5-on-7). These last examples confirm our suggestions from the preponderance of the 1,4-functionalisation.  相似文献   

6.
Based on the action of methyl fluorone on Ge(IV) the use of this reagent for the detection of germanium is described. It is necessary to treat with 6N HCl to make this reaction specific.However, another derivative of fluorone, namely phenyl fluorone, is still better for identifying Ge(IV). By placing a drop of the solution under test, previously strongly acidified (3 N to 6N in HCl), on a phenyl fluorone reagent paper and adding 2 or 3 drops of 6 N HNO3, a. sensitive and specific reaction for germanium is obtained.The only interfering ions are those of strong oxidising agents (Ce+4, Cr+6, Mn+7, etc.) which destroy the reagents and must be eliminated in the first place.Other ions and ions of the group of the sulphides soluble in alkalisulfides do not interfere, even in the proportion of 100 parts by weight, to 1 of Ge. The limit of dilution is about 10-5.5.  相似文献   

7.
《Tetrahedron: Asymmetry》1998,9(18):3223-3229
The complexes [(η6-p-iPrC6H4Me)Ru(NO2pesa)Cl] 2, [(η6-p-iPrC6H4Me)Ru(oxazsa)Cl] 3 and [(η6-p-iPrC6H4Me)Ru(pepy)Cl] 4, chiral in the chelate ligand and chiral at the ruthenium atom, have been prepared by reaction of [(η6-p-iPrC6H4Me)RuCl2]2 with the anions of the (S)-configured bidentate N,O- and N,N-ligands. [(η6-p-iPrC6H4Me)Ru(pesa)I] 5 was synthesized by halide exchange. The diastereomer ratios of compounds 24 with respect to the stereogenic ruthenium atom are in CDCl3 2a:2b=81:19, 3a:3b=77:23 and 4a:4b=61:39. Compound 5 is obtained diastereomerically pure. An X-ray structure analysis of 3 shows (RRu,SC)-configuration  相似文献   

8.
The reaction of [Cp1CoI2]2 (1b) with 2 equiv of NaNCNH affords the 16-membered macrocyclic NCNH-bridged tetracobalt(III) complex [Cp1CoI(μ2-NCNH-N,N′)]4 (2b), while that with 2 equiv of Na2NCN yields the C3-elongated cubane-like NCN-bridged tetracobalt(III) complex [Cp1Co(μ3-NCN-N,N,N′)3(CoCp1)33-NCN-N,N,N)] (4b). Treatment of [Cp1RhCl2]2 (1c) with 2 equiv of NaNCNH gives the C3-elongated cubane-like tetrarhodium(III) complex [Cp1Rh(μ3-NCN-N,N,N′)3(RhCp1)33-NCN-N,N,N)] (4c) via the macrocyclic complex [Cp1RhCl(μ2-NCNH-N,N′)]4 (2c). On the other hand, the reaction of [Cp1CoCl]2 (7) with Na2NCN affords the anionic bis(NCN)-capped tricobalt(II) complex Na[(Cp1Co)33-NCN-N,N,N)2] (6). The molecular structures of complexes 2b · CH2Cl2 and 4c · 2C6H6 have been confirmed by X-ray analyses. The electrochemical properties of these types of NCN-bridged group 9 metal complexes have also been examined.  相似文献   

9.
The first MnIII complexes with Schiff bases and tricyanomethanide-anion were synthesized: [Mn(salen)C(CN)3(H2O)] (1), [Mn(5-Brsalen)C(CN)3(H2O)] (2), [Mn(salpn)C(CN)3(H2O)] (3), [Mn(3-MeOsalen)C(CN)3(H2O)] (4), [Mn(5-Brsalen)(MeOH)(H2O)][C(CN)3] (5), and [Mn(3-MeOsalpn)(H2O)2][C(CN)3] (6), where SalenH2 is N,N′-bis(salicylidene)ethylenediamine, 5-BrsalenH2 is N,N′-bis(5-bromosalicylidene)ethylenediamine, SalpnH2 is N,N′-bis-(salicylidene)-1,3-diaminopropane, 3-MeOsalenH2 is N,N′-bis(3-methoxysalicylidene)-ethylenediamine, 3-MeOsalpnH2N,N′-bis(3-methoxysalicylidene)-1,3-diaminopropane. The tricyanomethanide anion in complexes 14 acts as a the terminal ligand, whereas in complexes 5 and 6 tricyanomethanide is not coordinated by MnIII and acts as an out-of-sphere counterion. The structures of complexes 14 are characterized by the formation of dimers due to hydrogen bonds between the water molecules and oxygen atoms of the Schiff bases. The Mn...Mn distances inside the dimers are 4.69–5.41 Å. Complex 6 has a zigzag chain structure consisting of the [Mn(3-MeOsalpn)(H2O)2]+ cations bound by double bridging aqua ligands. The study of the magnetic properties of complexes 1, 3, 4, and 6 showed the existence of antiferromagnetic interactions between the MnIII ions through the system of hydrogen bonds.  相似文献   

10.
Adsorption and activation of dinitrogen (N2) is an indispensable process in nitrogen fixation. Metal nitride species continue to attract attention as a promising catalyst for ammonia synthesis. However, the detailed mechanisms at a molecular level between reactive nitride species and N2 remain unclear at elevated temperature, which is important to understand the temperature effect and narrow the gap between the gas phase system and condensed phase system. Herein, the 14N/15N isotopic exchange in the reaction between tantalum nitride cluster anions Ta314N3- and 15N2 leading to the regeneration of 14N2/14N15N was observed at elevated temperature (393-593 K) using mass spectrometry. With the aid of theoretical calculations, the exchange mechanism and the effect of temperature to promote the dissociation of N2 on Ta3N3? were elucidated. A comparison experiment for Ta314N4-/15N2 couple indicated that only desorption of 15N2 from Ta314N415N2- took place at elevated temperature. The different exchange behavior can be well understood by the fact that nitrogen vacancy is a requisite for the dinitrogen activation over metal nitride species. This study may shed light on understanding the role of nitrogen vacancy in nitride species for ammonia synthesis and provide clues in designing effective catalysts for nitrogen fixation.  相似文献   

11.
A variety of piano-stool complexes of cyclopentadienyl ruthenium(II) with imidazole-based PN ligands have been synthesized starting from the precursor complexes [CpRu(C10H8)]PF6, [CpRu(NCMe)3]PF6 and [CpRu(PPh3)2Cl]. PN ligands used are imidazol-2-yl, -4-yl and -5-yl phosphines.Depending on the ligand and precursor different types of coordination modes were observed; in the case of polyimidazolyl PN ligands these were κ1P-monodentate, κ2P,N-, κ2N,N- and κ3N,N,N- chelating and μ-κP2N,N-brigding. The solid-state structures of [CpRu(1a)2Cl ]·H2O (5.H2O) and [{CpRu(μ-κ2-N,N-κ1-P-2b)}2](C6H5PO3H)2(C6H5PO3H2)2, a hydrolysis product of the as well determined [{CpRu(2b)}2](PF6)2.2CH3CN (7b.2CH3CN) were determined (1a = imidazol-2-yldiphenyl phosphine, 2b = bis(1-methylimidazol-2-yl)phenyl phosphine, 3a = tris(imidazol-2-yl)phosphine). Furthermore, the complexes [CpRu(L)2]PF6 (L = imidazol-2-yl or imidazol-4-yl phosphine) have been screened for their catalytic activity in the hydration of 1-octyne.  相似文献   

12.
Reaction of hexachlorocyclotriphosphazene, N3P3Cl6 (1), with the sodium derivative of the fluorinated diol, 2,2,3,3,4,4,5,5-octafluorohexane-1,6-diol, (2), in THF solution at room temperature afforded five products, whose structures have been characterised by 1H, 19F and 31P NMR spectroscopy: the mono-ansa compound N3P3Cl4[OCH2(CF2)4CH2O] (3); the single-bridged compound N3P3Cl5[OCH2(CF2)4CH2O]N3P3Cl5 (4), two double-bridged compounds N3P3Cl4(OCH2(CF2)4CH2O)2N3P3Cl4, (5-anti, 5-syn) and the triple-bridged compound N3P3Cl3(OCH2(CF2)4CH2O)3N3P3Cl3 (6). X-ray crystallographic studies confirmed the structures of the ansa compound (3), the double-bridged compound (5-anti) and the first example of a triple-bridged cyclotriphosphazene derivative (6). The results were also compared with those for reactions of (1) with analogous fluorinated shorter diols (1,4-butane- and 1,5-pentane-diols). It is found that on increasing the chain length of the diol, there is a decrease in the relative proportion of intramolecular reactions giving spiro and ansa derivatives and an increase in the amount of bridged cyclophosphazene derivatives via intermolecular reactions.  相似文献   

13.
Four half-sandwich ruthenium(II) complexes [(η6-C6H6)Ru(L1-O)][PF6] (1), [(η6-C6H6)Ru(L2-O)][PF6] (2), [(η6-C6H6)Ru(L3-O)][PF6] (3), [(η6-C6H6)Ru(L4-O)][PF6] (4a), and [(η6-C6H6)Ru(L4-O)][BPh4] (4b) [L1-OH, 4-nitro-6-{[(2′-(pyridin-2-yl)ethyl)methylamino]methyl}-phenol; L2-OH, 2,4-di-tert-butyl-6-{[(2′-(pyridin-2-yl)ethyl)methylamino]methyl}-phenol; L3-OH, 2,4-di-tert-butyl-6-{[2′-((pyridin-2-yl)benzylamino)methyl}-phenol; L4-OH, 2,4-di-tert-butyl-6-{[(2′-imethylaminoethyl)methylamino]methyl}-phenol (L4-OH)], supported by a systematically varied series of tridentate phenolate-based pyridylalkylamine and alkylamine ligands are reported. The molecular structures of 1-3, 4a, and 4b have been elucidated in solution using 1H NMR spectroscopy and of 1, 3, and 4b in the solid state by X-ray crystallography. Notably, due to coordination by the ligands the Ru center assumes a chiral center and in turn the central amine nitrogen also becomes chiral. The 1H NMR spectra exhibit only one set of signals, suggesting that the reaction is completely diastereoselective [1: SRu,SN/RRu,RN; 2: RRu,RN/SRu,SN; 3: SRu,RN/RRu,SN; 4b: SRu,RN/RRu,SN]. The crystal packing in 1 and 3 is stabilized by C-HO interactions, in 4b no meaningful secondary interactions are observed. From the standpoint of generating phenoxyl radical, as investigated by cyclic voltammetry (CV), complex 1 is redox-inactive in MeCN solution. However, 2, 3, and 4a generate a one-electron oxidized phenoxyl radical coordinated species [2]2+, [3]2+, and [4a]2+, respectively. The radical species are characterized by CV, UV-Vis, and EPR spectroscopy. The stability of the radical species has been determined by measuring the decay constant (UV-Vis spectroscopy).  相似文献   

14.
The reaction of tris(2-hydroxyphenyl)amine with Ge(OEt)4 produced 1,1′-oxybis(1-germa-5-aza-2,8,9-trioxatribenzobicyclo[3.3.3]undeca-3,6,10-triene) (11). This reaction proceeded via 1-ethoxy-1-germa-5-aza-2,8,9-trioxatribenzobicyclo[3.3.3]undeca-3,6,10-triene (10a). In oxo-bridged germatrane dimer 11, the Ge---O---Ge moiety is bent at an angle of 131.2(4)°, and Ge---Obridge distances are 1.750(7) and 1.743(6) Å. The other Ge---O distances, by comparison, averaged 1.785(7) Å. The germanium centers in 11 are nearly trigonal bipyramidal by virtue of significant interaction with transannular nitrogen: the Ge---N distances are 2.235(8) and 2.247(7) Å. Ab initio calculations on 11 and H3Ge---O---GeH3 predict a linear Ge---O---Ge geometry when d-orbitals are omitted from the basis set, but correctly predict a bent geometry when d-orbitals are used.  相似文献   

15.
The reaction of EtAlCl2 with 1,2-{LiN(PMes2)}2C6H4 (Mes = 2,4,6-Me3C6H2) and of butyloctylmagnesium with 1,2-{NH(PPh2)}2C6H4 gave [AlEt(1,2-{N(PMes2)}2C6H42N,N′)(THF)] (1) and [Mg(1,2-{N(PPh2)}2C6H42N,N′)(THF)2] (2), respectively. Complexes 1 and 2 were fully characterised by NMR (1H, 13C, 31P) and IR spectroscopy and mass spectrometry. Complexes 1 and 2 were employed as catalysts in the polymerisation of -caprolactone, which produced polymers with a narrow molecular weight distribution. For comparison the polymerisations of -caprolactone and β-butyrolactone were carried out with the Zn complex [ZnPr{1-N(PMes2)-2-N(PHMes2)C6H42N,N′}] (3) as catalyst, which produced polymers with narrow molecular weight distributions and high molecular weights.  相似文献   

16.
Treatment of [RuHCl(CS)(PPh3)3] with Hg(o-C6H4N=NC6H5)2 affords [RuCl(CS)(η2C,N-o-C6H4N=NC6H5)(PPh3)2] (1) in good yield, where the cyclometallated azobenzene ligand coordinates through an ortho-C and one azo-N to give a five-membered chelate ring. Reaction of 1 with AgNO3 followed by NaBr or NaI affords the chloride-exchanged products [RuX(CO)(η2C,N-o-C6H4N=NC6H5)(PPh3)2] (2, 3), whereas reaction of 1 with AgOC(O)Me or NaS2CNEt2·2H2O gives the halide mono-phosphine-substituted complexes [Ru(CS)(LL)(η2C,N-o-C6H4NNC6H5)(PPh3)] (4, 5). In the solid-state structures of 1 and 3 there are significant changes in the bond lengths for the cyclometallated azobenzene ligand are observed relative to free azobenzene. These are discussed, with the aid of spectroscopic and crystallographic data, in terms of a cis-push–pull effect.  相似文献   

17.
The reaction of hexafluoro-cyclo-triphosphazene P3N3F6 with ammonia in acetonitrile has been studied. New compounds, (2-imino-2,4,4,6,6-pentafluoro-2λ5,4λ5,6λ5-cyclo-triphosphaza-1,3,5-trienyl)-2-amino-4,4,6,6-tetrafluoro-2λ5,4λ5,6λ5-cyclo-triphosphaza-1,3,5-triene, P3N3F5–NH–P3N3F4NH2 (2) and cis and trans isomers of non-gem-2,4-diamino-2,4,6,6-tetrafluoro-2λ5,4λ5,6λ5-cyclo-triphosphaza-1,3,5-triene, P3N3F4(NH2)2 (4, 5), were detected by GC/MS, and 31P NMR spectroscopy in reaction mixtures. X-ray diffraction analysis of P3N3F5–NH–P3N3F4NH2 (2) revealed two conformational polymorphs, 2A and 2B, the latter being built up of two different conformers that were further denoted as 2Ba (the same as the single conformer in 2A) and 2Bb. The compound 2 was characterized by spectroscopic methods and its 2D potential energy surface (PES) was described by density functional theory computations depending on two dihedral angles. The calculated PES spans over 30 kJ/mol in energy including 8 local minima and all first and second order saddle points. The occurrence of the two experimentally observed conformers 2Ba and 2Bb seems to be governed by crystal packing effects.  相似文献   

18.
The reaction of the complex [{(η6-C6Me6)Ru(μ-Cl)Cl}2] 1 with sodium azide ligand gave two new dimers of the composition [{(η6-C6Me6)Ru(μ-N3)(N3)}2] 2 and [{(η6-C6Me6)Ru(μ-N3)Cl}2] 3, depending upon the reaction conditions. Complex 3 with excess of sodium azide in ethanol yielded complex 2. These complexes undergo substitution reactions with monodentate ligands to yield monomeric complexes of the type [(η6-C6Me6)Ru(X)(N3)(L)] {X = N3, Cl, L = PPh3 (4a, 9a); PMe2Ph (4b, 9b); AsPh3 (4c, 9c); X = N3, L = pyrazole (Hpz) (5a); 3-methylpyrazole (3-Hmpz) (5b) and 3,5-dimethyl-pyrazole (3,5-Hdmpz) (5c)}. Complexes 2 and 3 also react with bidentate ligands to give bridging complexes of the type [{(η6-C6Me6)Ru(N3)(X)]2(μ-L)} {X = N3, Cl, L = 1,2-bis(diphenylphosphino)methane (dppm) (6, 10); 1,2-bis(diphenylphosphino)ethane (dppe) (7, 11); 1,2-bis(diphenylphosphino)propane (dppp) (8, 12); X = Cl, L = 4,4-bipyridine (4,4′-bipy) (13)}. These complexes were characterized by FT-IR and FT-NMR spectroscopy as well as by analytical data.The molecular structures of the representative complexes [{(η6-C6Me6)Ru(μ-N3)(N3)}2] 2, [{(η6-C6Me6)Ru(μ-N3)Cl}2] 3,[(η6-C6Me6)Ru(N3)2(PPh3)] 4a and [{(η6-C6Me6)Ru(N3)2}2 (μ-dppm)] 6 were established by single crystal X-ray diffraction studies.  相似文献   

19.
Orange Eu2+-doped phosphors are essential for light-emitting diodes for cornering lights to prevent fatal road accidents at night, but such phosphors require features of high thermal, chemical stability and facile synthesis. This study reports a series of yellow-orange-red emitting SrAl2Si3ON6:Eu2+ oxynitride phosphors, derived from the SrAlSi4N7 nitride iso-structure by replacing Si4+−N3− with Al3+−O2−. The introduction of a certain amount of oxygen enabled the facile synthesis under atmospheric pressure using the air-stable raw materials SrCO3, Eu2O3, AlN and Si3N4. SrAl2Si3ON6 has a smaller band gap and lower structure rigidity than SrAlSi4N7 (5.19 eV vs 5.50 eV, Debye temperature 719 K vs 760 K), but exhibits higher thermal stability with 100 % of room temperature intensity remaining at 150 °C compared to 85 % for SrAlSi4N7. Electron paramagnetic resonance, thermoluminescence and density functional theory revealed that the oxygen vacancy electron traps compensated the thermal loss. Additionally, no decrease in emission intensity was found after either being heated at 500 °C for 2 hours or being immersed in water for 20 days, implying both of the thermal and chemical stability of SrAl2Si3ON6:Eu2+ phosphors. The strategy of oxynitride-introduction from nitride promotes the development of low-cost thermally and chemically stable luminescent materials.  相似文献   

20.
A series of seven novel f-element bearing hybrid materials have been prepared from either methyl substituted 3,4 and 4,5-pyrazoledicarboxylic acids, or heterocyclic 1,3- diketonate ligands using hydrothermal conditions. Compounds 1, [UO2(C6H4N2O4)2(H2O)], and 3, [Th(C6H4N2O4)4(H2O)5]·H2O feature 1-Methyl-1H-pyrazole-3,4-dicarboxylate ligands (SVI-COOH 3,4), whereas 2, [UO2(C6H4N2O4)2(H2O)], and 4, [Th(C6H5N2O4)(OH)(H2O)6]2·2(C6H5N2O4)·3H2O feature 1-Methyl-1H-pyrazole-4,5-dicarboxylate moieties (SVI-COOH 4,5). Compounds 5, [UO2(C13H15N4O2)2(H2O)]·2H2O and 6, [UO2(C11H11N4O2)2(H2O)]·4.5H2O feature 1,3-bis(4-N1-methyl-pyrazolyl)propane-1,3-dione and 1,3-bis(4-N1,3-dimethyl-pyrazolyl)propane-1,3-dione respectively, whereas the heterometallic 7, [UO2(C11H11N4O2)2(CuCl2)(H2O)]·2H2O is formed by using 6 as a metalloligand starting material. Single crystal X-ray diffraction indicates that all coordination to either [UO2]2+ or Th(IV) metal centers is through O-donation as anticipated. Room temperature, solid-state luminescence studies indicate characteristic uranyl emissive behavior for 1 and 2, whereas those for 5 and 6 are weak and poorly resolved.  相似文献   

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