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1.
By deliberately using a metastable polyanion [(NbO2)6P2W12O56]12? ( 1 ), which was formed in situ, we have discovered the unprecedented hexameric cluster {Mn15(Nb6P2W12O62)6} ( 2 ), in which the six polyanions [Nb6P2W12O61]10? are alternately connected by four intriguing trinuclear {MnIII3} moieties and four {MnII} linkers. This discovery is the first in which the phosphoniobotungstate has been made accessible by using transition‐metal ions; furthermore, polyanion 2 represents the largest niobotungstate cluster reported to date. Analysis by means of electrospray ionization mass spectrometry (ESI‐MS ) provides insight into the self‐assembly process, and the peaks observed relate to the different charge states of the parent cluster, thus confirming the stability of 2 . In addition, magnetic‐susceptibility measurements reveal that each {MnIII3} subunit is a separate single‐molecule magnet (SMM). This discovery results from the exploration of the reverse effect of metastable polyanion 1 possessing high reactivity, thereby turning a disadvantage into an advantage. This finding could define a new synthetic strategy for the design and synthesis of magnetic polyoxometalate (POM) clusters.  相似文献   

2.
The disassembly and reassembly of giant molecules are essential processes in controlling the structure and function of biological and artificial systems. In this work, the disassembly and reassembly of a giant ring‐shaped polyoxometalate (POM) without isomerization of the monomeric units is reported. The reaction of a hexavacant lacunary POM that is soluble in organic solvents, [P2W12O48]14?, with manganese cations gave the giant ring‐shaped POM [{γ‐P2W12O48Mn4(C5H7O2)2(CH3CO2)}6]42?. This POM is a hexamer of manganese‐substituted {P2W12O48Mn4} units, and its inner cavity was larger than any of those previously reported for ring‐shaped polyoxotungstates. It was disassembled into monomeric units in acetonitrile, and the removal of the capping organic ligands on the manganese cations led to reassembly into a tetrameric ring‐shaped POM, [{γ‐P2W12O48Mn4(H2O)6}4(H2O)4]24?.  相似文献   

3.
Complexes made by hosts that completely surround their guests provide a means to stabilize reactive chemical intermediates, transfer biologically active cargo to a diseased cell, and construct molecular‐scale devices. By the virtue of inorganic host–guest self‐assembly, nucleation processes in the cavity of a {P8W48}‐archetype phosphotungstate has afforded a nanoscale 16‐AlIII‐32‐oxo cluster and its GaIII analogue that contain the largest number of AlIII/GaIII ions yet found in polyoxometalate (POM) chemistry. Interestingly, the rich Lewis acid AlIII centers within the Lewis base POM support shows an exceptional proton conductivity of 4.5×10?2 S cm?1 (85 °C, 70 % RH; RH: relative humidity), which is by far the highest conductivity reported among POM‐based single‐crystal proton conductors.  相似文献   

4.
Three cobalt(II)‐containing tungstophosphate compounds, Na8Li8Co5[Co5.5(H2O)19P8W48.5O184] ? 60 H2O ( 1 ), K2Na4Li11Co5[Co7(H2O)28P8W48O184]Cl ? 59 H2O ( 2 ), and K2Na4LiCo11[Co8(H2O)32P8W48O184](CH3COO)4Cl ? 47 H2O ( 3 ), have been synthesized and characterized by IR spectroscopy, thermogravimetric analysis, elemental analyses, and magnetic measurements. The pH value impacts the formation of distinct cobalt‐linked frameworks. The cyclic cavity of the polyanion accommodates 5.5, 7, and 8 cobalt ions in 1 , 2 , and 3 , respectively. In compounds 1 and 2 , each {Co5.5P8W48} and {Co7P8W48} fragment links to four others through multiple {Co‐O‐W} coordination bonds to generate a two‐dimensional network. Compound 3 can be considered as a 3D network based on the {Co‐O‐W} coordination bonds and the {Co3(CH3COO)2(H2O)10} linkers between the {P8W48} fragments. Interestingly, acetate ligands have been employed to form the {Co3(CH3COO)2(H2O)10} unit, thereby inducing the construction of a 12‐connected framework. To the best of our knowledge, compound 3 contains the largest‐ever number of cobalt ions in a {P8W48}‐based polyoxometalate when counterions are taken into account and the {P8W48} unit shows the highest number of connections thanks to the carboxyl bridges. The UV/Vis diffuse reflectance spectra of these powder samples indicate that the corresponding well‐defined optical absorption associated with Eg can be assessed at 2.58, 2.48, and 2.73 eV and reveal the presence of an optical band gap. The photocatalytic H2 evolution activities of these {P8W48}‐based compounds are evaluated.  相似文献   

5.
A planar network consisting of {Mo17(NO)2}3{MoV 2}3{Fe6III} cluster entities that are interlinked to layers via {FeII(H2O)4}2+ groups is formed stepwise from building units. The corresponding mixed-valence compound exhibits a variety of different formal oxidation states: {MoNO}3+, MoV, MoVI, FeII, and FeIII. This compound also represents an extension of building-block hierarchy from the molecular level to extended networks.  相似文献   

6.
Engineering self‐templating inorganic architectures is critical for the development of bottom‐up approaches to nanoscience, but systems with a hierarchy of templates are elusive. Herein we describe that the cluster‐anion‐templated (CAT) assembly of a {CAT}?{Mo24Fe12} macrocycle forms a giant ca. 220 nm3 unit cell containing 16 macrocycles clustered into eight face‐shared tetrahedral cluster‐of‐clusters assemblies. We show that {CAT}?{Mo24Fe12} with different CATs gives the compounds 1 – 4 for CAT=Anderson {FeMo6} ( 1 ), Keggin {PMo12} ( 2 ), Dawson {P2W18} ( 3 ), and {Mo12O36(HPO3)2} ( 4 ) polyoxometalates. “Template‐free” assembly can be achieved, whereby the macrocycle components can also form a template in situ allowing template to macrocycle to superstructure formation and the ability to exchange the templates. Furthermore, the transformation of template clusters within the inorganic macrocycle {Mo24Fe12} allows the self‐generation of an uncapped {Mo12O36(HPO3)2} in compound 4 .  相似文献   

7.
《中国化学快报》2020,31(9):2503-2506
An iron (III) cluster, namely [Fe10(μ3–O)8L8(NO3)6] (1), has been synthesized by treatment of Fe(NO3)3·9H2O with 3,5–dimethyl–1–(hydroxymethyl)–pyrazole (HL) under ambient temperature. The core skeleton of {FeIII10} can be regarded as a pear-like cage with eight triangular {FeIII3(μ3–O)} units, in which each three FeIII centers is held together by one μ3–O2− group with FeIII centers as corner-sharing triangle units. Importantly, {FeIII10} cluster is not only stable in solid state but also in solution, which is confirmed by powder X-ray diffraction (PXRD) pattern and electrospray ionization mass spectrometry (ESI-MS), respectively. Furthermore, 1 shows antiferromagnetic exchange behavior arising from the interactions between the iron(III) centers.  相似文献   

8.
The cyanide building block [FeIII(pzphen)(CN)4] and its four lanthanide complexes [{FeIII(pzphen)(CN)4}2LnIII(H2O)5(DMF)3] · (NO3) · 2(H2O) · (CH3CN) [Ln = Nd ( 1 ), Sm ( 2 ), DMF = dimethyl formamide] and [{FeIII(pzphen)(CN)4}2LnIII(NO3)(H2O)2(DMF)2](CH3CN) [Ln = Gd ( 3 ), Dy ( 4 )] were synthesized and structurally characterized by single‐crystal X‐ray diffraction. Compounds 1 and 2 are ionic salts with two [FeIII(pzphen)(CN)4] cations and one LnIII ion, but compounds 3 and 4 are cyano‐bridged FeIIILnIII heterometallic 3d‐4f complexes exhibiting a trinuclear structure in the same conditions. Magnetic studies show that compound 3 is antiferromagnetic between the central FeIII and GdIII atoms. Furthermore, the trinuclear cyano‐bridged FeIII2DyIII compound 4 displays no single‐molecular magnets (SMMs) behavior by the alternating current magnetic susceptibility measurements.  相似文献   

9.
A mixed-valence {MnII3MnIIIFeII2FeIII2} cyanide-bridged molecular cube hosting a caesium cation, Cs⊂{Mn4Fe4}, was synthesized and structurally characterized by X-ray diffraction. Cyclic-voltammetry measurements show that its electronic state can be switched between five different redox states, which results in a remarkable electrochromic effect. Magnetic measurements on fresh samples point to the occurrence of a spin-state change near room temperature, which could be ascribed to a metal-to-metal electron transfer converting the {FeII−CN−MnIII} pair into a {FeIII−CN−MnII} pair. This feature was only previously observed in the polymeric MnFe Prussian-blue analogues (PBAs). Moreover, this novel switchable molecule proved to be soluble and stable in organic solvents, paving the way for its integration into advanced materials.  相似文献   

10.
Three tetranuclear transition metal clusters based on lacunary silicotungstates [M4(H2O)2(SiW9O34)2]12? (M = Ni2+ (1), Co2+ (2)), and [Fe4(μ-O)2(μ-OH)2(SiW10O37)2]14? (3) have been synthesized under ambient conditions and characterized by elemental analyses, IR, TG, cyclic voltammetry, and single-crystal X-ray diffraction. The polyoxoanions of 1 and 2 are isostructural, including a central rhomb-like {M4O16} (M = Ni, Co) cluster sandwiched by two trivacant {B-α-SiW9} Keggin moieties. In the polyoxoanion of 3, two μ-OH and two μ-O bridges link with four FeIII ions, forming an eight-membered ring. This [Fe4(μ-OH)2(μ-O)2] aggregation is sandwiched by two bi-vacant {α-SiW10} Keggin fragments. The electrochemical properties of the three compounds were investigated.  相似文献   

11.
A new all inorganic polyoxometalate (POM), which is composed of the [Na(H2O)P5W30O110]14– ({P5W30}) clusters and Tb3+ cations, Na2[Tb4(H2O)28{Na(H2O)P5W30O110}] · 16H2O ( 1 ), was obtained by using hydrothermal method. Its structure was further characterized by single-crystal X-ray diffraction, elemental analysis, IR spectroscopy, TG, and PXRD. Compound 1 displays a 2D layered structure formed by {P5W30} clusters and [Tb(H2O)7]3+ linkers. It noteworthy that, eight coordinated sites provided by {P5W30} was very rare. Furthermore, the luminescent property of compound 1 was reported.  相似文献   

12.
A mixed‐valence {MnII3MnIIIFeII2FeIII2} cyanide‐bridged molecular cube hosting a caesium cation, Cs?{Mn4Fe4}, was synthesized and structurally characterized by X‐ray diffraction. Cyclic‐voltammetry measurements show that its electronic state can be switched between five different redox states, which results in a remarkable electrochromic effect. Magnetic measurements on fresh samples point to the occurrence of a spin‐state change near room temperature, which could be ascribed to a metal‐to‐metal electron transfer converting the {FeII?CN?MnIII} pair into a {FeIII?CN?MnII} pair. This feature was only previously observed in the polymeric MnFe Prussian‐blue analogues (PBAs). Moreover, this novel switchable molecule proved to be soluble and stable in organic solvents, paving the way for its integration into advanced materials.  相似文献   

13.
By incorporating phosphorus(III)‐based anions into a polyoxometalate cage, a new type of tungsten‐based unconventional Dawson‐like cluster, [W18O56(HPIIIO3)2(H2O)2]8?, was isolated, in which the reaction of the two phosphite anions [HPO3]2? within the {W18O56} cage could be followed spectroscopically. As well as full X‐ray crystallographic analysis, we studied the reactivity of the cluster using both solution‐state NMR spectroscopy and mass spectrometry. These techniques show that the cluster undergoes a structural rearrangement in solution whereby the {HPO3} moieties dimerize to form a weakly interacting (O3PH???HPO3) moiety. In the crystalline state the cluster exhibits a thermally triggered oxidation of the two PIII template moieties to form PV centers (phosphite to phosphate), commensurate with the transformation of the cage into a Wells–Dawson {W18O54} cluster.  相似文献   

14.
The use of the [FeIII(AA)(CN)4]? complex anion as metalloligand towards the preformed [CuII(valpn)LnIII]3+ or [NiII(valpn)LnIII]3+ heterometallic complex cations (AA=2,2′‐bipyridine (bipy) and 1,10‐phenathroline (phen); H2valpn=1,3‐propanediyl‐bis(2‐iminomethylene‐6‐methoxyphenol)) allowed the preparation of two families of heterotrimetallic complexes: three isostructural 1D coordination polymers of general formula {[CuII(valpn)LnIII(H2O)3(μ‐NC)2FeIII(phen)(CN)2 {(μ‐NC)FeIII(phen)(CN)3}]NO3 ? 7 H2O}n (Ln=Gd ( 1 ), Tb ( 2 ), and Dy ( 3 )) and the trinuclear complex [CuII(valpn)LaIII(OH2)3(O2NO)(μ‐NC)FeIII(phen)(CN)3] ? NO3 ? H2O ? CH3CN ( 4 ) were obtained with the [CuII(valpn)LnIII]3+ assembling unit, whereas three isostructural heterotrimetallic 2D networks, {[NiII(valpn)LnIII(ONO2)2(H2O)(μ‐NC)3FeIII(bipy)(CN)] ? 2 H2O ? 2 CH3CN}n (Ln=Gd ( 5 ), Tb ( 6 ), and Dy ( 7 )) resulted with the related [NiII(valpn)LnIII]3+ precursor. The crystal structure of compound 4 consists of discrete heterotrimetallic complex cations, [CuII(valpn)LaIII(OH2)3(O2NO)(μ‐NC)FeIII(phen)(CN)3]+, nitrate counterions, and non‐coordinate water and acetonitrile molecules. The heteroleptic {FeIII(bipy)(CN)4} moiety in 5 – 7 acts as a tris‐monodentate ligand towards three {NiII(valpn)LnIII} binuclear nodes leading to heterotrimetallic 2D networks. The ferromagnetic interaction through the diphenoxo bridge in the CuII?LnIII ( 1 – 3 ) and NiII?LnIII ( 5 – 7 ) units, as well as through the single cyanide bridge between the FeIII and either NiII ( 5 – 7 ) or CuII ( 4 ) account for the overall ferromagnetic behavior observed in 1 – 7 . DFT‐type calculations were performed to substantiate the magnetic interactions in 1 , 4 , and 5 . Interestingly, compound 6 exhibits slow relaxation of the magnetization with maxima of the out‐of‐phase ac signals below 4.0 K in the lack of a dc field, the values of the pre‐exponential factor (τo) and energy barrier (Ea) through the Arrhenius equation being 2.0×10?12 s and 29.1 cm?1, respectively. In the case of 7 , the ferromagnetic interactions through the double phenoxo (NiII–DyIII) and single cyanide (FeIII–NiII) pathways are masked by the depopulation of the Stark levels of the DyIII ion, this feature most likely accounting for the continuous decrease of χM T upon cooling observed for this last compound.  相似文献   

15.
The syntheses, crystal structures, and physical properties of [HFe19O14(OEt)30] and {Fe11(OEt)24} are reported. [HFe19O14(OEt)30] has an octahedral shape. Its core with a central Fe metal ion surrounded by six μ6‐oxo ligands is arranged in the rock salt structure. {Fe11(OEt)24} is a mixed‐valence coordination polymer in which FeIII metal ions form three 3D interpenetrating (10,3)‐b nets. The arrangement of the FeIII ions can also be compared to that of Si ions in α‐ThSi2. Thus, the described structures are at the interface between molecular and solid‐state chemistry.  相似文献   

16.
A robust one‐compartment H2O2 fuel cell, which operates without membranes at room temperature, has been constructed by using a series of polynuclear cyanide complexes that contain Fe, Co, Mn, and Cr as cathodes, in sharp contrast to conventional H2 and MeOH fuel cells, which require membranes and high temperatures. A high open‐circuit potential of 0.68 V was achieved by using Fe3[{CoIII(CN)6}2] on a carbon cloth as the cathode and a Ni mesh as the anode of a H2O2 fuel cell by using an aqueous solution of H2O2 (0.30 M , pH 3) with a maximum power density of 0.45 mW cm?2. The open‐circuit potential and maximum power density of the H2O2 fuel cell were further increased to 0.78 V and 1.2 mW cm?2, respectively, by operation under these conditions at pH 1. No catalytic activity of Co3[{CoIII(CN)6}2] and Co3[{FeIII(CN)6}2] towards H2O2 reduction suggests that the N‐bound Fe ions are active species for H2O2 reduction. H2O2 fuel cells that used Fe3[{MnIII(CN)6}2] and Fe3[{CrIII(CN)6}2] as the cathode exhibited lower performance compared with that using Fe3[{CoIII(CN)6}2] as a cathode, because ligand isomerization of Fe3[{MIII(CN)6}2] into (FeM2)[{FeII(CN)6}2] (M=Cr or Mn) occurred to form inactive Fe? C bonds under ambient conditions, whereas no ligand isomerization of Fe3[{CoIII(CN)6}2] occurred under the same reaction conditions. The importance of stable Fe2+? N bonds was further indicated by the high performance of the H2O2 fuel cells with Fe3[{IrIII(CN)6}2] and Fe3[{RhIII(CN)6}2], which also contained stable Fe2+? N bonds. The stable Fe2+? N bonds in Fe3[{CoIII(CN)6}2], which lead to high activity for the electrocatalytic reduction of H2O2, allow Fe3[{CoIII(CN)6}2] to act as a superior cathode in one‐compartment H2O2 fuel cells.  相似文献   

17.
The oxalato-titanium(IV)-containing, dimeric 18-tungsto-2-phosphate [Ti8(C2O4)8P2W18O76(H2O)4]18? (1) and the 32-tungsto-4-phosphate [Ti6(C2O4)4P4W32O124]20? (2) are formed upon reaction of the oxalato-titanium complex [TiO(C2O4)2]2? with the trilacunary Keggin precursor [A-α-PW9O34]9? and the hexalacunary Wells–Dawson precursor [H2P2W12O48]12?, respectively. Polyanion 1 consists of two {PW9} units encapsulating eight titanium centers and connected to each other via two Ti–O–Ti bridges, and crystallizes as a mixed potassium-sodium-lithium salt in the triclinic space group $P{\bar{1}}$ . Polyanion 2 comprises two {P2W16} units containing each two titanium atoms, and the two half-units are connected via two titanium atoms decorated by two oxalate groups each, and crystallizes as a mixed potassium-lithium salt in the rhombohedral space group $R{\bar{3}}c$ . Polyanions 1 and 2 were characterized in the solid state by single-crystal XRD, FT-IR, and TGA, whereas polyanion 2 was also investigated by 31P and 183W NMR.  相似文献   

18.
The construction of pure‐inorganic framework materials with well‐defined design rules and building blocks is challenging. In this work, we show how a polyoxometalate cluster with an integrated pore, based on [P8W48O184]40? (abbreviated as {P8W48}), can be self‐assembled into inorganic frameworks using silver ions, which both enable reactions on the cluster as well as link them together. The {P8W48} was found to be highly reactive with silver ions resulting in the in situ generation of fragments, forming {P9W63O235} and {P10W66O251} in compound ( 1 ) where these two clusters co‐crystallize and are connected into a POMZite framework with 11 Ag+ ions as linkers located inside clusters and 10 Ag+ linking ions situated between clusters. Decreasing both the concentration of Ag+ ions, and the reaction temperature compared to the synthesis of compound ( 1 ), leads to {P8W51O196} in compound 2 where the {P8W48} clusters are linked to form a new POMZite framework with 9 Ag+ ions per formula unit. Further tuning of the reaction conditions yields a cubic porous network compound ( 3 ) where {P8W48} clusters as cubic sides are joined by 4 Ag+ ions to give a cubic array and no Ag+ ions were found inside the clusters.  相似文献   

19.
We report an approach to synthesize molecular tungsten‐oxide‐based pentagonal building blocks, in a new {W21O72} unit, and show how this leads to a family of gigantic molecular architectures including [H12W48O164]28? {W48}, [H20W56O190]24? {W56}, and [H12W92O311]58? {W92}. The {W48} and {W56} clusters are both dimeric species incorporating two {W21} units and the {W56} species is the first example of a molecular metal oxide cluster containing a chiral “double‐stranded” motif which is stable in solution as confirmed by mass spectrometry. The {W92} anion having four {W21} units is one of the largest transition metal substituted isopolyoxotungstates known.  相似文献   

20.
Reaction of two transition metal cations M (M = VV, FeIII) on the open Wells–Dawson anion α-[{K(H2O)2}Si2W18O66]15– leads to dinuclear and tetranuclear complexes, respectively. The molecular anions [{KV2O3(H2O)2}(Si2W18O66)]11– and [{Fe4(OH)6}(Si2W18O66)]10– have been structurally characterized by single crystal X-ray diffraction. The oxo/hydroxometallic clusters [KV2O3(H2O)2]5+ and [Fe4(OH)6]6+ are included in the pocket between the two subunits of [Si2W18O66]16–. The FeIII atoms of the iron complex can be reduced to FeII by a single four-electron step. To cite this article: N. Leclerc-Laronze et al., C. R. Chimie 9 (2006).  相似文献   

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