Li, Gui-xian’s team published research in Fenzi Cuihua in 18 | CAS: 1193-11-9

Fenzi Cuihua published new progress about 1193-11-9. 1193-11-9 belongs to dioxole, auxiliary class Dioxolanes, name is 2,2,4-Trimethyl-1,3-dioxolane, and the molecular formula is C6H12O2, Synthetic Route of 1193-11-9.

Li, Gui-xian published the artcileStudy on the catalytic synthesis of 1,3-dioxolane over Wells-Dawson-type molybdovanadophosphoric heteropolyacid, Synthetic Route of 1193-11-9, the publication is Fenzi Cuihua (2004), 18(5), 321-325, database is CAplus.

The effects of heteropolyacid catalysts and various structural substrates on the catalytic activity to synthesis 1,3-dioxolane derivatives were investigated. The results indicated that Wells-Dawson Heteropolyacid H7P2Mo17VO62 is the best catalyst for this reaction with nearly complete conversion of epoxide and excess 90% of selectivity to 1,3-dioxolane.

Fenzi Cuihua published new progress about 1193-11-9. 1193-11-9 belongs to dioxole, auxiliary class Dioxolanes, name is 2,2,4-Trimethyl-1,3-dioxolane, and the molecular formula is C6H12O2, Synthetic Route of 1193-11-9.

Referemce:
https://en.wikipedia.org/wiki/1,3-Benzodioxole,
Dioxole | C3H4O2 – PubChem

Giogios, Ioannis’s team published research in Journal of the Science of Food and Agriculture in 89 | CAS: 1193-11-9

Journal of the Science of Food and Agriculture published new progress about 1193-11-9. 1193-11-9 belongs to dioxole, auxiliary class Dioxolanes, name is 2,2,4-Trimethyl-1,3-dioxolane, and the molecular formula is C6H12O2, Application of 2,2,4-Trimethyl-1,3-dioxolane.

Giogios, Ioannis published the artcileFatty acid composition and volatile compounds of selected marine oils and meals, Application of 2,2,4-Trimethyl-1,3-dioxolane, the publication is Journal of the Science of Food and Agriculture (2009), 89(1), 88-100, database is CAplus.

Background: Although volatile compounds characterizing seafood have been studied extensively, no similar data are available regarding the volatiles of raw materials used in fish feed. Therefore the aim of this study was to make an initial screening of the volatiles of various common marine raw materials used in the aquaculture feed industry. Nine com. marine oils (German (GFO1, GFO2 GFO3) and Norwegian (NFO) fish oils and salmon (SO1 and SO2), tuna (TO), sardine (SRDO) and shrimp (SHO) oils) and eight com. marine meals (Peruvian (PFM1 and PFM2), Danish (DFM1 and DFM2) and prime quality (PQFM1 and PQFM2) fish meals and Antarctic krill meals (KM1 and KM2)) were analyzed for their fatty acid profiles and volatile flavor compounds The relation between fatty acids and volatiles was examined Results: The highest polyunsaturated fatty acid and eicosapentaenoic acid (20: 5ω3) contents and ω3/ω6 ratio were found in NFO. The fatty acid composition of all marine meals except krill meals was found to be more variable among batches than that of marine oils. Regarding volatiles, all marine raw materials were characterized by the complete absence or negligible levels of 8- and 9-carbon alcs. and carbonyls. All marine oils were found to have high 2-Et furan, 2-methylenebutyl cyclopropane, hexanal, 2,4-octadiene and 3,5-octadiene contents. Marine meals, unlike marine oils, were characterized by the almost complete absence of unsaturated and cyclic hydrocarbons and terpenes and very low levels of furans. Conclusion: Volatiles of marine meals differ from those of marine oils. Unlike fatty acids which give useful traceability information, volatiles seem to fail in this role owing to their strong variability.

Journal of the Science of Food and Agriculture published new progress about 1193-11-9. 1193-11-9 belongs to dioxole, auxiliary class Dioxolanes, name is 2,2,4-Trimethyl-1,3-dioxolane, and the molecular formula is C6H12O2, Application of 2,2,4-Trimethyl-1,3-dioxolane.

Referemce:
https://en.wikipedia.org/wiki/1,3-Benzodioxole,
Dioxole | C3H4O2 – PubChem

Bogatskii, A. V.’s team published research in Ukrainskii Khimicheskii Zhurnal (Russian Edition) in 45 | CAS: 1193-11-9

Ukrainskii Khimicheskii Zhurnal (Russian Edition) published new progress about 1193-11-9. 1193-11-9 belongs to dioxole, auxiliary class Dioxolanes, name is 2,2,4-Trimethyl-1,3-dioxolane, and the molecular formula is C6H12O2, Product Details of C6H12O2.

Bogatskii, A. V. published the artcileCharges on heteroatoms and relative basicity of 1,3-dioxolane molecules, Product Details of C6H12O2, the publication is Ukrainskii Khimicheskii Zhurnal (Russian Edition) (1979), 45(1), 38-41, database is CAplus.

A linear relation was found between the at. charge on the O atoms of I (R = H, Me, Me2CH; R1, R2 = H, Me) and the basicity of I, as determined by IR frequency shifts of the OH group of PhOH. A linear relation between basicity and Taft σ* constants was also obtained.

Ukrainskii Khimicheskii Zhurnal (Russian Edition) published new progress about 1193-11-9. 1193-11-9 belongs to dioxole, auxiliary class Dioxolanes, name is 2,2,4-Trimethyl-1,3-dioxolane, and the molecular formula is C6H12O2, Product Details of C6H12O2.

Referemce:
https://en.wikipedia.org/wiki/1,3-Benzodioxole,
Dioxole | C3H4O2 – PubChem

Fasi, Andras’s team published research in Journal of Catalysis in 200 | CAS: 1193-11-9

Journal of Catalysis published new progress about 1193-11-9. 1193-11-9 belongs to dioxole, auxiliary class Dioxolanes, name is 2,2,4-Trimethyl-1,3-dioxolane, and the molecular formula is C6H12O2, Application In Synthesis of 1193-11-9.

Fasi, Andras published the artcileIsomerization and Dimerization Reactions of Methyloxirane over Various Types of Zeolite and Zeotype, Application In Synthesis of 1193-11-9, the publication is Journal of Catalysis (2001), 200(2), 340-344, database is CAplus.

The ring-opening reactions of methyloxirane on various zeolites and zeotypes (HZSM-5, CuZSM-5, HY, AlMCM-41, SiMCM-41, and BMCM-41) were investigated at 363 K either in a pulse reactor or in a circulation system, in the presence of hydrogen or nitrogen. The acidic mol. sieves were found to be active in isomerization (the products are propionaldehyde and acetone) and dimerization (the products are dioxolane and dioxane derivatives) reactions. Deoxygenation was of minor importance in hydrogen or nitrogen atm. The major product formation pathway was dimerization on every catalytically active material. This transformation route was favored by the confined environment. (c) 2001 Academic Press.

Journal of Catalysis published new progress about 1193-11-9. 1193-11-9 belongs to dioxole, auxiliary class Dioxolanes, name is 2,2,4-Trimethyl-1,3-dioxolane, and the molecular formula is C6H12O2, Application In Synthesis of 1193-11-9.

Referemce:
https://en.wikipedia.org/wiki/1,3-Benzodioxole,
Dioxole | C3H4O2 – PubChem

Gendrineau, Thomas’s team published research in Organic Letters in 11 | CAS: 503538-69-0

Organic Letters published new progress about 503538-69-0. 503538-69-0 belongs to dioxole, auxiliary class (Atropisomeric Bisphosphine Ligands, name is (R)-5,5′-Bis(diphenylphosphino)-2,2,2′,2′-tetrafluoro-4,4′-bi-1,3-benzodioxole, and the molecular formula is C38H24F4O4P2, COA of Formula: C38H24F4O4P2.

Gendrineau, Thomas published the artcileRoom-Temperature Rhodium-Catalyzed Asymmetric 1,4-Addition of Potassium Trifluoro(organo)borates, COA of Formula: C38H24F4O4P2, the publication is Organic Letters (2009), 11(15), 3486-3489, database is CAplus and MEDLINE.

For the first time, the room-temperature rhodium-catalyzed asym. 1,4-addition of potassium aryltrifluoroborates to α,β-unsaturated substrates is described. Thanks to the use of a chiral diene as ligand for rhodium and triethylamine as base, to facilitate transmetalation of the boron species, high yields and enantioselectivities were generally achieved. Moreover, the use of such tetravalent boron species offers some improvements compared to the use of boronic acids in term of stability and ease of purification

Organic Letters published new progress about 503538-69-0. 503538-69-0 belongs to dioxole, auxiliary class (Atropisomeric Bisphosphine Ligands, name is (R)-5,5′-Bis(diphenylphosphino)-2,2,2′,2′-tetrafluoro-4,4′-bi-1,3-benzodioxole, and the molecular formula is C38H24F4O4P2, COA of Formula: C38H24F4O4P2.

Referemce:
https://en.wikipedia.org/wiki/1,3-Benzodioxole,
Dioxole | C3H4O2 – PubChem

Kamaraj, Chinnaperumal’s team published research in International Journal of Biological Macromolecules in 107 | CAS: 177-10-6

International Journal of Biological Macromolecules published new progress about 177-10-6. 177-10-6 belongs to dioxole, auxiliary class Dioxolane,Spiro, name is 1,4-Dioxaspiro[4.5]decane, and the molecular formula is C8H14O2, Category: dioxole.

Kamaraj, Chinnaperumal published the artcileNovel and environmental friendly approach; Impact of Neem (Azadirachta indica) gum nano formulation (NGNF) on Helicoverpa armigera (Hub.) and Spodoptera litura (Fab.), Category: dioxole, the publication is International Journal of Biological Macromolecules (2018), 107(Part_A), 59-69, database is CAplus and MEDLINE.

The future of this study was to prepare a natural pesticide which will not harm the environment and yet control pests. Neem gum nano formulation (NGNF), a novel biopesticide prepared from the Neem gum extract (Azadirachta indica) (NGE) was evaluated for its antifeedant, larvicidal and pupicidal activities against Helicoverpa armigera (Hub.) and Spodoptera litura (Fab.) at 100 ppm. The NGNF showed significant (100%) antifeedant, larvicidal and pupicidal activities against H. armigera and S. litura. The LC50 values of 10.20, 12.49 and LC90 values of 32.68, 36.68 ppm on H. armigera and S. litura, resp. at 100 ppm. The NGNF treatments showed differences in the activities of detoxifying enzymes, carboxylesterases, glucosidases and glutathione S-transferases in the larval gut. Earthworm toxicity illustrated that 6.25 ppm of chem. insecticides (cypermethrin) varied widely in their contact toxicities compared to 100 ppm of NGNF and control in both contact filter paper and artificial soil test. The NGNF were characterized and confirmed by FTIR, XRD, SEM and EDX anal. Ten compounds were identified from the Neem gum extract (NGE) by Gas Chromatog.-Mass Spectrometry (GC-MS) anal. The major compounds were fatty acids like Hexadecanoic acid, oleic acid, and ricinoleic acid. NGNF could be used as an agent to prepare novel bio-pesticides formulations.

International Journal of Biological Macromolecules published new progress about 177-10-6. 177-10-6 belongs to dioxole, auxiliary class Dioxolane,Spiro, name is 1,4-Dioxaspiro[4.5]decane, and the molecular formula is C8H14O2, Category: dioxole.

Referemce:
https://en.wikipedia.org/wiki/1,3-Benzodioxole,
Dioxole | C3H4O2 – PubChem

Espinosa, A.’s team published research in Anales de Quimica in 87 | CAS: 1193-11-9

Anales de Quimica published new progress about 1193-11-9. 1193-11-9 belongs to dioxole, auxiliary class Dioxolanes, name is 2,2,4-Trimethyl-1,3-dioxolane, and the molecular formula is C6H12O2, Recommanded Product: 2,2,4-Trimethyl-1,3-dioxolane.

Espinosa, A. published the artcileOxocarbonium ions: deketalization of 1,3-dioxolanes and other processes in nonaqueous media, Recommanded Product: 2,2,4-Trimethyl-1,3-dioxolane, the publication is Anales de Quimica (1991), 87(3), 391-5, database is CAplus.

Alcoholysis of [(hydroxypropoxy)ethyl]dioxolane I (R = Me) resulted in deketalization to give alkoxybutanones R1OCH2CH2COMe (R1 = C1-C3 alkyl). The deketalization indicates that the oxocarbonium ion intermediates undergo an oxirane elimination. The effect of alc. solvating power on exchange product yields was studied using I (R = H, Me). A linear relation was found for transetherification, transacetalization, and transacetalization-cyclization.

Anales de Quimica published new progress about 1193-11-9. 1193-11-9 belongs to dioxole, auxiliary class Dioxolanes, name is 2,2,4-Trimethyl-1,3-dioxolane, and the molecular formula is C6H12O2, Recommanded Product: 2,2,4-Trimethyl-1,3-dioxolane.

Referemce:
https://en.wikipedia.org/wiki/1,3-Benzodioxole,
Dioxole | C3H4O2 – PubChem

Liu, Taotao’s team published research in RSC Advances in 4 | CAS: 177-10-6

RSC Advances published new progress about 177-10-6. 177-10-6 belongs to dioxole, auxiliary class Dioxolane,Spiro, name is 1,4-Dioxaspiro[4.5]decane, and the molecular formula is C8H14O2, Category: dioxole.

Liu, Taotao published the artcileZeolite nanofiber assemblies as acid catalysts with high activity for the acetalization of carbonyl compounds with alcohols, Category: dioxole, the publication is RSC Advances (2014), 4(35), 18217-18221, database is CAplus.

Zeolite nanofiber assemblies (HNB-MOR) as efficient heterogeneous catalysts for the formation of a range of acetals in good yields. The mesoporosity of HNB-MOR benefits mass transfer, and the strong acidic sites on HNB-MOR facilitate acetalization activity. The catalyst can be reused 10 times without loss of activity.

RSC Advances published new progress about 177-10-6. 177-10-6 belongs to dioxole, auxiliary class Dioxolane,Spiro, name is 1,4-Dioxaspiro[4.5]decane, and the molecular formula is C8H14O2, Category: dioxole.

Referemce:
https://en.wikipedia.org/wiki/1,3-Benzodioxole,
Dioxole | C3H4O2 – PubChem

Shan, Gang’s team published research in Angewandte Chemie, International Edition in 57 | CAS: 503538-69-0

Angewandte Chemie, International Edition published new progress about 503538-69-0. 503538-69-0 belongs to dioxole, auxiliary class (Atropisomeric Bisphosphine Ligands, name is (R)-5,5′-Bis(diphenylphosphino)-2,2,2′,2′-tetrafluoro-4,4′-bi-1,3-benzodioxole, and the molecular formula is C18H34N4O5S, Recommanded Product: (R)-5,5′-Bis(diphenylphosphino)-2,2,2′,2′-tetrafluoro-4,4′-bi-1,3-benzodioxole.

Shan, Gang published the artcileC-H Bond Activation for the Synthesis of Heterocyclic Atropisomers Yields Hedgehog Pathway Inhibitors, Recommanded Product: (R)-5,5′-Bis(diphenylphosphino)-2,2,2′,2′-tetrafluoro-4,4′-bi-1,3-benzodioxole, the publication is Angewandte Chemie, International Edition (2018), 57(43), 14250-14254, database is CAplus and MEDLINE.

In the presence of a nonracemic cyclopentenopyridine rhodium complex, O-(arylpentynyl) arylhydroxamates such as I underwent enantioselective C-H activation and cyclization reactions mediated by dibenzoyl peroxide and CsOAc in 2-chloroethanol/1,2-dichloroethane to yield atropisomeric arylisoquinolinones such as II in 45-95% yields and in 78:22-96:4 er. Five of the arylisoquinolinone products (including II) inhibited the Hedgehog pathway in human cells; one of the compounds tested inhibited the Hedgehog pathway but did not displace labeled cyclopamine from Smoothened, implying that at least one of the arylisoquinolinones does not inhibit the Hedgehog pathway through binding to Smoothened.

Angewandte Chemie, International Edition published new progress about 503538-69-0. 503538-69-0 belongs to dioxole, auxiliary class (Atropisomeric Bisphosphine Ligands, name is (R)-5,5′-Bis(diphenylphosphino)-2,2,2′,2′-tetrafluoro-4,4′-bi-1,3-benzodioxole, and the molecular formula is C18H34N4O5S, Recommanded Product: (R)-5,5′-Bis(diphenylphosphino)-2,2,2′,2′-tetrafluoro-4,4′-bi-1,3-benzodioxole.

Referemce:
https://en.wikipedia.org/wiki/1,3-Benzodioxole,
Dioxole | C3H4O2 – PubChem

Rigo, Davide’s team published research in ACS Sustainable Chemistry & Engineering in 7 | CAS: 1193-11-9

ACS Sustainable Chemistry & Engineering published new progress about 1193-11-9. 1193-11-9 belongs to dioxole, auxiliary class Dioxolanes, name is 2,2,4-Trimethyl-1,3-dioxolane, and the molecular formula is C6H12O2, Recommanded Product: 2,2,4-Trimethyl-1,3-dioxolane.

Rigo, Davide published the artcileAcid-Catalyzed Reactions of Isopropenyl Esters and Renewable Diols: A 100% Carbon Efficient Transesterification/Acetalization Tandem Sequence, from Batch to Continuous Flow, Recommanded Product: 2,2,4-Trimethyl-1,3-dioxolane, the publication is ACS Sustainable Chemistry & Engineering (2019), 7(23), 18810-18818, database is CAplus.

A new acid-catalyzed tandem sequence was investigated for the upgrading of renewable 1,2-diols such as propylene glycol (PG) and ethylene glycol (EG), with isopropenyl esters. For example, at 50 °C and in the presence of Amberlyst-15, the reaction of PG with nontoxic isopropenyl acetate allowed an initial irreversible monotransesterification of the diol, releasing acetone which then promoted acetalization on a second mol. of the glycol. The overall protocol was 100% carbon efficient, affording water as the sole byproduct. The reaction scope was extended to higher homologs of enol esters as isopropenyl-octanoate and phenylbutyrate. Addnl., the tandem sequence was successfully transferred in the continuous-flow (CF) mode where the catalyst (Amberlyst-15) could be used virtually indefinitely without loss of performance, and the solvent (THF or CPME) was quant. recovered and reused. Under CF conditions, the reaction of PG with isopropenyl acetate could be run at 30 °C and atm. pressure with a (nonoptimized) productivity up to 9.7 mmol gcat-1 h-1, 3 times higher than that achieved in the batch mode. When ethylene glycol was used, a lower tandem selectivity was observed due to predominance of transesterification products, mono- and diesters, over the acetal compound A 100% carbon efficient upgrading of renewable 1,2-diols through tandem monotransesterification and acetalization reactions mediated by isopropenyl esters is presented.

ACS Sustainable Chemistry & Engineering published new progress about 1193-11-9. 1193-11-9 belongs to dioxole, auxiliary class Dioxolanes, name is 2,2,4-Trimethyl-1,3-dioxolane, and the molecular formula is C6H12O2, Recommanded Product: 2,2,4-Trimethyl-1,3-dioxolane.

Referemce:
https://en.wikipedia.org/wiki/1,3-Benzodioxole,
Dioxole | C3H4O2 – PubChem