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Reference of Trimethylphosphineoxide. The reaction of aromatic heterocyclic molecules with protons is called protonation. Aromatic heterocycles are more basic than benzene due to the participation of heteroatoms. Compound: Trimethylphosphineoxide, is researched, Molecular C3H9OP, CAS is 676-96-0, about Mono- and di-phosphine oxide complexes of aluminium, gallium and indium with weakly coordinating triflate anions – Synthesis, structures and properties. Author is Cairns, Kelsey R.; Levason, William; Reid, Gillian; Zhang, Wenjian.

Reaction of the Group 13 triflates, M(OTf)3 (M = Al, Ga, In; OTf = CF3SO-3), with 3 mol. eq. of R3PO (R = Ph or Me) gives the six-coordinate complexes, [M(OTf)3(R3PO)3], with coordinated triflate, as white powd. solids. Similarly, using 3 mol. eq. of PyNO (pyridine-N-oxide) readily forms [In(OTf)3(PyNO)3], whose crystal structure confirms a mer octahedral arrangement. In contrast, reaction of the harder Lewis acids Al(III) and Ga(III) with PyNO produce mixtures, mostly likely of the 3:1 and 4:1 species, [M(OTf)3(PyNO)3] and [M(OTf)2(PyNO)4][OTf] (M = Al, Ga). Both of the tetrakis species have been confirmed via single crystal X-ray studies and shown to exist as trans isomers. Higher ratios (4:1, 5:1 and 6:1) of Me3PO coordinated to In(OTf)3 can also be achieved by varying the reaction stoichiometry appropriately, with the coordinated OTf groups readily displaced by the Me3PO. Crystal structures of two polymorphs of the salt, [In(OTf)2(Me3PO)4][In{(OH2)2(OTf)4}(Me3PO)4], in which the [In{(OH2)2(OTf)4}(Me3PO)4]- anion is (unusually) comprised of a ‘InIII(OH2)2(Me3PO)4’ unit with four OTf anions H-bonded to the aquo ligands, giving the overall monoanionic charge. A similar arrangement is present in [In(OTf)2(Ph3PO)4][In{(OH2)4(OTf)4}(Ph3PO)2], the structure of which shows that all of the H atoms associated with the four aquo ligands in the [In{(OH2)4(OTf)4}(Ph3PO)2]- form significant H-bonds to the OTf groups; specifically, the four OTf- anions each show two O···H interactions, forming bridges that link the equatorial aquo ligands into a 24-membered ‘pseudo-macrocyclic’ ring. The crystal structure of the mononuclear 5:1 complex, [Ga(Me3PO)5(MeCN)][OTf]3, is also described. Using the diphosphine dioxide, dppmO2 (Ph2P(O)CH2P(O)Ph2), with M(OTf)3 in a 3:1 ratio readily affords the tris-chelate species, [M(dppmO2)3][OTf]3 for all three metals, while a 2:1 ratio also gives [Ga(OTf)2(dppmO2)2][OTf]. Crystal structures of both [Al(dppmO2)3][OTf]3·MeCN and [Ga(dppmO2)3][OTf]3·2CHCl3 are reported. Multinuclear (1H, 13C{1H}, 19F{1H}, 31P{1H}, 27Al, 71Ga and 115In, where appropriate) NMR data show that in CD3CN the complexes are labile and the different R3PO coordination environments are not distinguished (although exchange between coordinated and ‘free’ Me3PO is slow on the 31P NMR timescale), while the MeCN solvent also replaces OTf in the metal coordination sphere.

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The chemical properties of alicyclic heterocycles are similar to those of the corresponding chain compounds. Compound: Trimethylphosphineoxide, is researched, Molecular C3H9OP, CAS is 676-96-0, about Acidic ionic liquid-functionalized mesoporous melamine-formaldehyde polymer as heterogeneous catalyst for biodiesel production, the main research direction is ionic liquid mesoporous melamine formaldehyde polymer catalyst biodiesel production.Quality Control of Trimethylphosphineoxide.

Combination of multiple excellent characteristics, such as large surface area, strong acidity, high acid d. and good dispersion of active sites, in a mesoporous solid acid catalyst is desirable for achieving superior catalytic activity in production of biodiesel but challenging. Herein, an acidic ionic liquid (IL)-functionalized mesoporous melamine-formaldehyde polymer (MMFP-IL) was prepared for the first time by quaternary ammonization of mesoporous nitrogen-rich melamine-formaldehyde polymer (MMFP) with 1,3-propanesultone, followed by treatment with H3PW12O40 (HPW). The MMFP, containing abundant aminal groups and triazine rings, could be facilely synthesized from lost-cost and readily available monomers (i.e., melamine and paraformaldehyde), which provides massive sites for immobilizing more IL and HPW via chem. post-modification method. The MMFP-IL catalyst was systematically characterized, which was revealed to possess unique and outstanding properties, including abundant mesoporous structures with high sp. surface area (283.0 m2/g), high acid concentration (2.2 mmol/g), strong acidity and fine distribution of acid sites. These properties endowed MMFP-IL to have excellent activity in esterification of oleic acid with methanol to produce biodiesel under mild conditions, outperforming those of various solid acids (e.g., com. strong acidic resins and HPW). In addition, the kinetics and thermodn. of the reaction were investigated over the MMFP-IL catalyst. More importantly, the MMFP-IL catalyst was robust, heterogeneous, and recyclable without significant deactivation after four cycles, which is attributed to the immobilization of acidic ionic liquid onto the robust MMFP via strong covalent bond.

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Application In Synthesis of Trimethylphosphineoxide. The mechanism of aromatic electrophilic substitution of aromatic heterocycles is consistent with that of benzene. Compound: Trimethylphosphineoxide, is researched, Molecular C3H9OP, CAS is 676-96-0, about Solid-state 31P NMR mapping of active centers and relevant spatial correlations in solid acid catalysts. Author is Yi, Xianfeng; Ko, Hui-Hsin; Deng, Feng; Liu, Shang-Bin; Zheng, Anmin.

Solid acid catalysts are used extensively in various advanced chem. and petrochem. processes. Their catalytic performance (namely, activity, selectivity, and reaction pathway) mostly depends on their acid properties, such as type (Bronsted vs. Lewis), location, concentration, and strength, as well as the spatial correlations of their acid sites. Among the diverse methods available for acidity characterization, solid-state NMR (SSNMR) techniques have been recognized as the most valuable and reliable tool, especially in conjunction with suitable probe mols. that possess observable nuclei with desirable properties. Taking 31P probe mols. as an example, both trimethylphosphine (TMP) and trimethylphosphine oxide (TMPO) adsorb preferentially to the acid sites on solid catalysts and thus are capable of providing qual. and quant. information for both Bronsted and Lewis acid sites. This protocol describes procedures for (i) the pretreatment of typical solid acid catalysts, (ii) adoption and adsorption of various 31P probe mols., (iii) considerations for one- and two-dimensional (1D and 2D, resp.) NMR acquisition, (iv) relevant data anal. and spectral assignment, and (v) methodol. for NMR mapping with the assistance of theor. calculations Users familiar with SSNMR experiments can complete 31P-1H heteronuclear correlation (HETCOR), 31P-31P proton-driven spin diffusion (PDSD), and double-quantum (DQ) homonuclear correlation with this protocol within 2-3 d, depending on the complexity and the accessible acid sites of the solid acid samples.

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Category: isoxazole. Aromatic compounds can be divided into two categories: single heterocycles and fused heterocycles. Compound: Trimethylphosphineoxide, is researched, Molecular C3H9OP, CAS is 676-96-0, about (η5-C5Me5)2U(:P-2,4,6-tBu3C6H2)(OPMe3) Revisited-Its Intrinsic Reactivity toward Small Organic Molecules. Author is Wang, Deqiang; Hou, Guohua; Zi, Guofu; Walter, Marc D..

The Lewis base stabilized U phosphinidene (η5-C5Me5)2U(:P-2,4,6-tBu3C6H2)(OPMe3) (2), which was derived from (η5-C5Me5)2U(Cl)Me (1) and 2,4,6-(Me3C)3C6H2PHK in toluene in the presence of Me3PO, was originally reported in 1996, but since then its reactivity toward small organic mols. was not extensively explored. This contribution closes this gap, and divergent reactivity patterns are established in the reaction of complex 2 toward (small) organic substrates. For example, complex 2 may release the phosphinidene moiety (2,4,6-tBu3C6H2P:) and therefore may act as a source of a (η5-C5Me5)2U(II) fragment in the presence of Ph2S2, Ph2Se2, bipy, ketazine (Ph2C:N)2, and conjugated alkynes RCCCCR, forming the disulfido compound (η5-C5Me5)2U(SPh)2 (5), diselenido compound (η5-C5Me5)2U(SePh)2 (6), bipy compound (η5-C5Me5)2U(bipy) (8), diiminato compound (η5-C5Me5)2U(N:CPh2)2 (9) and the metallacyclopentatrienes (η5-C5Me5)2U[η4-C4(R)2] (R = Ph (10), Me3Si (11)), resp. Also, compound 2 may also straightforwardly react with terminal alkynes and a variety of heterounsatd. (organic) mols. such as CS2, isothiocyanates, imines, diazenes, carbodiimides, nitriles, isonitriles, and organic azides. For instance, on treatment with phenylacetylene (PhCCH) the dialkynyl U complex (η5-C5Me5)2U(C2Ph)2(OPMe3) (12) is formed, whereas CS2 and PhNCS furnish the carbodithioates (η5-C5Me5)2U[SC(:P-2,4,6-tBu3C6H2)S](OPMe3) (13) and (η5-C5Me5)2U[SC(:NPh)S](OPMe3) (14), resp. In the reaction of the secondary aldimine PhCH:NPh or the diazene PhN:NPh and 2 the U(IV) imido complex (η5-C5Me5)2U(:NPh)(OPMe3) (15) is isolated, which is in contrast to its reactivity with the primary ketimine 9-(C12H8)C:NH and the carbodiimides (RN)2C, yielding the diiminato U(VI) complex (η5-C5Me5)2U[N:C(C12H8)]2 (16) and the four-membered uranaheterocycles (η5-C5Me5)2U[N(R)C(:P-2,4,6-tBu3C6H2)N(R)] (R = C6H11 (17), iPr (18)), resp. Also, treatment of 2 with nitriles RCN affords the imido U(IV) complexes (η5-C5Me5)2U[:NC(:P-2,4,6-tBu3C6H2)R](OPMe3) (R = C6H11 (19), Me3C (20)), whereas isonitriles RNC furnish the metallaaziridines (η5-C5Me5)2U[C(:P-2,4,6-tBu3C6H2)N(R)](OPMe3) (R = C6H11 (21), 2,6-Me2Ph (22)). However, in the reaction with organic azides RCN3, complex 2 yields the imido U(IV) complexes (η5-C5Me5)2U(:NR)(OPMe3) (R = Ph3C (23), p-tolyl (24)) as a result of 3,3-Me2-5,7-tBu2C8H5P (7) formation and N2 release. The new compounds 12-24 were characterized by various spectroscopic techniques, including single-crystal x-ray diffraction analyses. Also, with complex 2 in hand a comparison between the reactivity of U phosphinidenes differing in the steric bulk of its cyclopentadienyl ligands and the effects of a Lewis base (OPMe3) adduct was undertaken.

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The current energy transition presents many technol. challenges, such as the development of highly stable catalysts. Herein, we report a novel “”top-down”” synthesis approach for preparation of a single-site Mo-containing nanosized ZSM-5 zeolite which has atomically dispersed framework-molybdenum homogenously distributed through the zeolite crystals. The introduction of Mo heals most of the native point defects in the zeolite structure resulting in an extremely stable material. The important features of this single-site Mo-containing ZSM-5 zeolite are provided by an in-depth spectroscopic and microscopic anal. The material demonstrates superior thermal (up to 1000°C), hydrothermal (steaming), and catalytic (converting methane to hydrogen and higher hydrocarbons) stability, maintaining the atomically disperse Mo, structural integrity of the zeolite, and preventing the formation of silanols.

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Formula: C3H9OP. The mechanism of aromatic electrophilic substitution of aromatic heterocycles is consistent with that of benzene. Compound: Trimethylphosphineoxide, is researched, Molecular C3H9OP, CAS is 676-96-0, about Hydrogen-Bonding-Assisted Exogenous Nucleophilic Reagent Effect for β-Selective Glycosylation of Rare 3-Amino Sugars. Author is Zeng, Jing; Wang, Ruobin; Zhang, Shuxin; Fang, Jing; Liu, Shanshan; Sun, Guangfei; Xu, Bingbing; Xiao, Ying; Fu, Dengxian; Zhang, Wenqi; Hu, Yixin; Wan, Qian.

Challenges for stereoselective glycosylation of deoxy sugars are notorious in carbohydrate chem. We herein report a novel strategy for the construction of the less investigated β-glycosidic bonds of 3,5-trans-3-amino-2,3,6-trideoxy sugars (3,5-trans-3-ADSs), which constitute the core structure of several biol. important antibiotics. Current protocol leverages a C-3 axial sulfonamide group in 3,5-trans-3-ADSs as a hydrogen-bond (H-bond) donor and substoichiometric phosphine oxide as an exogenous nucleophilic reagent (exNu) to establish an intramol. H-bond between the former and the derived α-oxyphosphonium ion. This pivotal interaction stabilizes the α-face-covered intermediate to inhibit the formation of the more reactive β-intermediate, thereby yielding reversed β-selectivity, which is unconventional for an ex-Nu-mediated glycosylation system. A wide range of substrates was accommodated, and good to excellent β-selectivities were ensured by this H-bonding-assisted exNu effect. The robustness of the current strategy was further attested by the architectural modification of natural products and drugs containing 3,5-trans-3-ADSs, as well as the synthesis of a trisaccharide unit in avidinorubicin.

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The chem. of silylated sulfuric acid, O2S(OSiMe3)2 (T2SO4, T=Me3Si; also known as bis(trimethylsilyl) sulfate), has been studied in detail with the aim of synthesizing the formal autosilylation products of silylated sulfuric acid, [T3SO4]+ and [TSO4]-, in analogy to the known protonated species, [H3SO4]+ and [HSO4]-. The synthesis of the [TSO4]- ion only succeeds when a base, such as OPMe3 that forms a weakly coordinating cation upon silylation, is reacted with T2SO4, resulting in the formation of [Me3POT]+[TSO4]-. [T3SO4]+ salts could be isolated starting from T2SO4 in the reaction with [T-H-T]+[B(C6F5)4]- or T+[CHB11Br6H5]- when a weakly coordinating anion is used as counterion. All silylated compounds could be crystallized and structurally characterized.

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Epoxy compounds usually have stronger nucleophilic ability, because the alkyl group on the oxygen atom makes the bond angle smaller, which makes the lone pair of electrons react more dissimilarly with the electron-deficient system. Compound: Trimethylphosphineoxide, is researched, Molecular C3H9OP, CAS is 676-96-0, about Phosphonium Phenolate Zwitterion vs. Phosphonium Ylide: Synthesis, Characterization and Reactivity Study of a Trimethylphosphonium Phenolate Zwitterion.COA of Formula: C3H9OP.

4-Methoxy-3-(trimethylphosphonio)phenolate was obtained from a regioselective addition of PMe3 to p-quinone monoacetal. This compound undergoes hydrogen isotope exchange with D2O or CD3CN, and is capable of catalyzing H/D exchange of CD3CN with substrates bearing weakly acidic hydrogens. It exhibits similar reactivity to phosphorus ylides for olefinations of aldehydes. A possible tautomerization between the phosphonium phenolate zwitterion and phosphonium ylide is proposed for the first time to rationalize the unique reactivity.

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Pincer-type nickel-aluminum complexes were synthesized using two equivalent of the phosphinoamide, [PhNCH2PiPr2]-. The Ni0-AlIII complexes, {(MesPAlP)Ni}2(μ-N2) and {(MesPAlP)Ni}2(μ-COD), where MesPAlP is (Mes)Al(NPhCH2PiPr2)2, were structurally characterized. The (PAlP)Ni system exhibited cooperative bond cleavage mediated by the two-site Ni-Al unit, including oxidative addition of aryl halides, H2 activation, and ortho-directed C-H bond activation of pyridine N-oxide. One intriguing reaction is the reversible intramol. transfer of the mesityl ring from the Al to the Ni site, which is evocative of the transmetalation step during cross-coupling catalysis. The aryl-transfer product,(THF)Al(NPhCH2PiPr2)2Ni(Mes), is the first example of a first-row transition metal-aluminyl pincer complex. The addition of a judicious donor enables the Al metalloligand to convert reversibly between the alane and aluminyl forms via aryl group transfer to and from Ni, resp. Theor. calculations support a zwitterionic Niδ–Alδ+ electronic structure in the nickel-aluminyl complex.

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Lionetti, Davide; Suseno, Sandy; Tsui, Emily Y.; Lu, Luo; Stich, Troy A.; Carsch, Kurtis M.; Nielsen, Robert J.; Goddard, William A. III; Britt, R. David; Agapie, Theodor published the article 《Effects of Lewis Acidic Metal Ions (M) on Oxygen-Atom Transfer Reactivity of Heterometallic Mn3MO4 Cubane and Fe3MO(OH) and Mn3MO(OH) Clusters》. Keywords: manganese metal oxy hydroxide oxygen atom transfer reduction potential.They researched the compound: Trimethylphosphineoxide( cas:676-96-0 ).HPLC of Formula: 676-96-0. Aromatic heterocyclic compounds can be divided into two categories: single heterocyclic and fused heterocyclic. In addition, there is a lot of other information about this compound (cas:676-96-0) here.

The modulation of the reactivity of metal oxo species by redox inactive metals has attracted much interest due to the observation of redox inactive metal effects on processes involving electron transfer both in nature (the oxygen-evolving complex of Photosystem II) and in heterogeneous catalysis (mixed-metal oxides). Studies of small-mol. models of these systems have revealed numerous instances of effects of redox inactive metals on electron- and group-transfer reactivity. However, the heterometallic species directly involved in these transformations have rarely been structurally characterized and are often generated in situ. We have previously reported the preparation and structural characterization of multiple series of heterometallic clusters based on Mn3 and Fe3 cores and described the effects of Lewis acidity of the heterometal incorporated in these complexes on cluster reduction potential. To determine the effects of Lewis acidity of redox inactive metals on group transfer reactivity in structurally well-defined complexes, we studied [Mn3MO4], [Mn3MO(OH)], and [Fe3MO(OH)] clusters in oxygen atom transfer (OAT) reactions with phosphine substrates. The qual. rate of OAT correlates with the Lewis acidity of the redox inactive metal, confirming that Lewis acidic metal centers can affect the chem. reactivity of metal oxo species by modulating cluster electronics.

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