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1,4-Phenylenebis(morpholinomethanone), also known as N,N'-(1,4-phenylene)bis(morpholine-4-carboxamide), is an organic compound with the chemical formula C12H16N2O4. It is a white crystalline solid that is soluble in water and various organic solvents. 1,4-phenylenebis(morpholinomethanone) is primarily used as a corrosion inhibitor in industrial applications, particularly in the oil and gas industry, to prevent the formation of rust and other types of corrosion in metal pipelines and storage tanks. It is also known for its effectiveness in controlling the growth of sulfate-reducing bacteria, which can contribute to corrosion under anaerobic conditions. The compound's chemical structure, featuring a phenylene group connected to two morpholine rings, endows it with the ability to chelate metal ions, thereby inhibiting corrosion processes.

15088-31-0

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15088-31-0 Usage

Check Digit Verification of cas no

The CAS Registry Mumber 15088-31-0 includes 8 digits separated into 3 groups by hyphens. The first part of the number,starting from the left, has 5 digits, 1,5,0,8 and 8 respectively; the second part has 2 digits, 3 and 1 respectively.
Calculate Digit Verification of CAS Registry Number 15088-31:
(7*1)+(6*5)+(5*0)+(4*8)+(3*8)+(2*3)+(1*1)=100
100 % 10 = 0
So 15088-31-0 is a valid CAS Registry Number.

15088-31-0Downstream Products

15088-31-0Relevant academic research and scientific papers

Mono- and double carbonylation of aryl iodides with amine nucleophiles in the presence of recyclable palladium catalysts immobilised on a supported dicationic ionic liquid phase

Papp,Szabó,Srankó,Sáfrán,Kollár,Skoda-F?ldes

, p. 44587 - 44597 (2017)

Silica modified with organic dicationic moieties proved to be an excellent support for palladium catalysts used in the aminocarbonylation of aryl iodides. By an appropriate choice of the reaction conditions, the same catalyst could be used for selective mono- or double carbonylations leading to amide and α-ketoamide products, respectively. The best catalyst could be recycled for at least 10 consecutive runs with a loss of palladium below the detection limit. By the application of the new support, efficient catalyst recycling could be achieved under mild reaction conditions (under low pressure and in a short reaction time). Palladium-leaching data support a mechanism with dissolution - re-precipitation of the active palladium species.

Double carbonylation of iodoarenes in the presence of a pyridinium SILP-Pd catalyst

Nagy, Enik?,Nagy, Petra,Papp, Máté,Skoda-F?ldes, Rita,Urbán, Béla

, (2020/04/28)

The efficiency of a palladium catalyst, immobilised on a supported ionic liquid phase (SILP) with adsorbed 1-butyl-4-methylpyridinium chloride, was investigated in aminocarbonylation reactions. Double carbonylation was found to be the main reaction using different iodoarenes and aliphatic amines as substrates. Application of aniline derivatives as nucleophiles led to the exclusive formation of substituted benzamides. The stabilisation effect of the adsorbed pyridinium ionic liquid was compared to that of imidazolium and phosphonium derivatives. It was proved that the pyridinium SILP-palladium catalyst could be reused in at least 10 cycles. Recyclability was tested in five successive runs for all of the substrates.

Double carbonylation of iodoarenes in the presence of reusable palladium catalysts immobilised on supported phosphonium ionic liquid phases

Urbán, Béla,Szabó, Péter,Srankó, Dávid,Sáfrán, Gy?rgy,Kollár, László,Skoda-F?ldes, Rita

, p. 195 - 205 (2018/01/05)

The first heterogeneous carbonylation reaction carried out with palladium catalysts immobilised on phosphonium ion modified silica supports is reported. The supported ionic liquid phases were characterised by solid state NMR and FT-IR measurements. The presence of the phosphonium ions on the surface made it possible to carry out double carbonylation in apolar toluene efficiently that resulted in reduced metal leaching. The introduction of dicationic moieties on the solid support has been proved to lead to a further increase in catalyst stability. The catalysts were proved to produce α-ketoamide products with excellent selectivity in the carbonylation of iodoarenes with aliphatic amines while monocarbonylation was the only reaction observed with aniline derivatives. The catalysts could be recycled and used in at least 10 subsequent runs under optimised conditions.

Photoinduced Aminocarbonylation of Aryl Iodides

Kawamoto, Takuji,Sato, Aoi,Ryu, Ilhyong

supporting information, p. 14764 - 14767 (2015/10/19)

Transition metal-catalyzed aminocarbonylation of aryl halides with CO and amines, pioneered by Heck and co-workers in the 1970s, is among the most commonly employed reactions to make aromatic amides. A catalyst-free aminocarbonylation of aryl iodides with CO and amines, which simply uses photoirradiation conditions by Xe-lamp, has now been developed. This methodology shows broad functional-group tolerance, including that of heteroaromatic amides. A hybrid radical/ionic chain mechanism, involving electron transfer from zwitterionic radical intermediates generated by nucleophilic attack of amines to aroyl radicals, is proposed.

Highly efficient aminocarbonylation of iodoarenes at atmospheric pressure catalyzed by a robust acenaphthoimidazolyidene allylic palladium complex

Fang, Weiwei,Deng, Qinyue,Xu, Mizhi,Tu, Tao

supporting information, p. 3678 - 3681 (2013/08/23)

A robust allylic palladium-NHC complex was developed and exhibited extremely high catalytic activity toward aminocarbonylation of various (hetero)aryl iodides under atmospheric carbon monoxide pressure, in which a broad range of secondary and primary amines were well tolerated. In addition, the concise synthesis of an anticancer drug tamibarotene was accomplished even in a gram scale, further highlighting the practical applicability of the protocol.

Crystal structures of seven terephthaldiamide derivatives

Jones,Ossowski,Kus

, p. 914 - 921 (2007/10/03)

N,N′-Dibutyl-terephthaldiamide (1), N,N′-dihexyl-terephthaldiamide (2), N,N′-di(tert-butyl)-terephthaldiamide (3), N,N,N′,N′-tetrabutyl-terephthaldiamide (4), 1,1′-terephthaloyl-bis-pyrrolidine (5), 1,1′-terephthaloyl-bis-piperidine (6), and 4,4′-terephthaloyl-bis-morpholine (7) have been synthesised and physicochemically characterised. The X-ray structure determinations reveal imposed inversion symmetry for compounds 1-6; compound 3 has two independent molecules with inversion symmetry in the asymmetric unit. Compounds 1-3 form classical hydrogen bonds of the type N-H?O=C, leading to a ribbon-like arrangement of molecules (1 and 2) or a layer structure (3). Compound 3 also displays a very short C-H?O interaction, a type of hydrogen bond that is also observed in compounds 4-7, which lack classical donors; thereby compounds 4-6 form layer structures and 7 a complex three-dimensional network.

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