Analyzing the synthesis route of 119-91-5

The synthetic route of 119-91-5 has been constantly updated, and we look forward to future research findings.

119-91-5, 2,2′-Biquinoline is a catalyst-ligand compound, ?involved in a variety of chemical synthesis. Rlated chemical reaction is continuously updated

A Zn(NO3)2*6H2O dissolution (10.3 mg, 0.0346 mmol/2 ml ethanol:water 1:1) was added to another dissolution of thiosaccharine (12.3 mg, 0.062 mmol/2 ml ethanol:water 1:1). Finally, solid 2,2′-biquinoline was added (9.4 mg, 0.0367 mmol/2 ml ethanol:water1:1). A pale yellow powder was then obtained. Yield: 90%. Molar conductivity (mS M1) = 26.3. Analytical percent composition calculated for C32H20N4O4S4Zn: C = 53.520%; H = 2.807%; N = 7.801%. Found: C = 53.884%; H = 2.761%; N = 7.698%. Soluble in DMSO and DMF. Almost insoluble in water, ethanol, methanol, acetone, dichloromethane and chloroform. [DMSO, kmaxnm]: 339 1H NMR (300 MHz, DMSO) d 8.80 (dd, 1H), 8.58 (dd, 1H), 8.19(dd, 1H), 8.08 (dd, 1H), 7.89-7.95 (m, 1H), 7.85 (td, 1H), 7.53-7.73 (m, 4H). 13C NMR (75 MHz, DMSO) d 191.54 (C1), 155.21(C16), 147.16 (C8), 137.80 (C7), 137.36 (C14), 136.32 (C2), 132.16 (C4), 130.99 (C5), 130.18 (C10), 129.31 (C12), 128.16 (C13), 128.03(C11), 127.42 (C9), 125.10 (C3), 119.05 (C6), 118.87 (C15)., 119-91-5

The synthetic route of 119-91-5 has been constantly updated, and we look forward to future research findings.

Reference£º
Article; Delgado, Fermin; Freire, Eleonora; Baggio, Ricardo; Gonzalez Pardo, Veronica; Dorn, Viviana; Dennehy, Mariana; Inorganica Chimica Acta; vol. 479; (2018); p. 266 – 274;,
Metal catalyst and ligand design
Ligand Template Strategies for Catalyst Encapsulation – NCBI

Some tips on 3779-42-8

3779-42-8, The synthetic route of 3779-42-8 has been constantly updated, and we look forward to future research findings.

3779-42-8, 3-Bromo-N,N,N-trimethylpropan-1-aminium bromide is a catalyst-ligand compound, ?involved in a variety of chemical synthesis. Rlated chemical reaction is continuously updated

[K2CO3] (0.8 g, 0.33 [MMOL)] was partly dissolved in dry DMF (4 mi) and compound 3c (0.1 [G,] 0.33 [MMOL)] and [(3-BROMPROPYL)] [TRIMETHYLAMMONIUMBROMIDE] (0.09 g, 0.33 [MMOL)] were added respectively. The mixture was heated to [80C] and the reaction was completed after 3.5 h according to TLC in ethyl acetate. The product was precipitated in ethyl acetate (20 ml) filtrated and washed with [ACETONE. 1H-NMR] : 2.35 (m, 2H), 3.05 (s, 6H), 3.25 (s, 9H), 3.55 (t, 2H), 4.30 (t, 2H), 6.25 (s, [1H),] 6.75 (s, [1H),] 6.85 (d, 1H), 7.30 (d, 1H), 7.65 (d, [1H),] 8.00 (s, [1H),] 8.10 (d, 1H).

3779-42-8, The synthetic route of 3779-42-8 has been constantly updated, and we look forward to future research findings.

Reference£º
Patent; CHALMERS TECHNOLOGY LICENSING AB; WO2003/104210; (2003); A1;,
Metal catalyst and ligand design
Ligand Template Strategies for Catalyst Encapsulation – NCBI

New learning discoveries about 10534-59-5

10534-59-5, 10534-59-5 Tetrabutylammonium acetate 82707, acatalyst-ligand compound, is more and more widely used in various.

10534-59-5, Tetrabutylammonium acetate is a catalyst-ligand compound, ?involved in a variety of chemical synthesis. Rlated chemical reaction is continuously updated

To a solution of (2S,5 ?)-7-oxo-6-(sulfooxy)- l,6- diazabicyclo[3.2.1]octane-2-carbohydrazide (3.6 g, 12.8 mmol, prepared as per the reference WO2013030733) in dimethylformamide (18 ml) was added N,N-diisopropylethylamine (6.7 ml) under stirring at 25-30C. The lithium salt of [4-(tertiary-butyl-dimethyl-silanyloxy methyl)-2H- l,2,3-triazol-2-yl]acetic acid (3.5 g, 12.8 mmol , product from preparation 37) was added as solid under stirring followed by EDC.HCl (3.7 g, 19.3 mmol) and HOBT (1.95 g, 12.7 mmol) at 25-30 C. The progress of reaction was monitored by TLC (chloroform: methanol, 9: 1). After complete consumption of starting material a solution of tetrabutyl ammonium acetate (5.8 g, 19.2 mmol) in water (20 ml) was added and stirred for 1 hour. Dimethylformamide was distilled out completely and co-evaporated with xylene (2×25 ml). The concentrated mass thus obtained was poured on to water (36 ml) containing N-methyl morpholine (1 ml) under stirring and extracted with DCM (2×40 ml). The organic extracts were combined and washed with water (1×25 ml), dried over anhydrous sodium sulfate. The volatiles were removed under reduced pressure to get 4.5 g of crude compound which was further purified by column chromatography (100-200 mesh size silica gel) using dichloromethane: methanol as an eluent. Pure fractions were collected and concentrated to yield 1.8 g of tetrabutylammonium salt of (2S,5R)-N’-{ [4-(tertiary-butyl-dimethyl- silanyloxymethyl)-2H- l,2,3-triazol-2-yl]acetyl}-7-oxo-6-(sulfooxy)- l,6-diazabicyclo[3.2.1]octane- 2-carbohydrazide in 14% yield. Analysis: Mass: 534.4 (M- l) as free acid; for Molecular weight: 774 and Molecular formula: C34H66N808SSi.

10534-59-5, 10534-59-5 Tetrabutylammonium acetate 82707, acatalyst-ligand compound, is more and more widely used in various.

Reference£º
Patent; WOCKHARDT LIMITED; TADIPARTHI, Ravikumar; PATIL, Vijaykumar Jagdishwar; DEKHANE, Deepak; SHAIKH, Mohammad Usman; BIRAJDAR, Satish; DOND, Bharat; PATEL, Mahesh Vithalbhai; (100 pag.)WO2017/81615; (2017); A1;,
Metal catalyst and ligand design
Ligand Template Strategies for Catalyst Encapsulation – NCBI

Downstream synthetic route of 168646-54-6

168646-54-6, The synthetic route of 168646-54-6 has been constantly updated, and we look forward to future research findings.

168646-54-6, 5,6-Diamino-1,10-phenanthroline is a catalyst-ligand compound, ?involved in a variety of chemical synthesis. Rlated chemical reaction is continuously updated

5,6-Diamino-1,10-phenanthroline was synthesized according to the literature [40]. 5,6-diamino-1,10-phenanthroline (1.20 mmol, 0.25 g) and furoin (1.20 mmol, 0.23 g) were dissolved in 20.0 mL of dimethyl formamide. The mixture was refluxed for 2 days under the atmosphere of nitrogen. dpq-df was collected via filtration and recrystallization by DMF. Yield: 0.25 g, 57percent. 1H NMR [(CD3)2SO]: delta 9.43 (2H, d, J = 8.3 Hz), 9.25 (2H, d, J = 4.8 Hz), 7.98 (4H, m, J = 18.3 Hz), 7.11 (2H, d, J = 3.2 Hz), 6.82 (2H, d, J = 4.7 Hz). Anal. data for C22N4H12O2: calc. (percent): C, 72.52; H, 3.32; N, 15.38. found (percent): C, 72.56; H, 3.31; N, 15.43.

168646-54-6, The synthetic route of 168646-54-6 has been constantly updated, and we look forward to future research findings.

Reference£º
Article; Lu, Xiao-Hui; Shi, Shuo; Yao, Jun-Liang; Gao, Xing; Huang, Hai-Liang; Yao, Tian-Ming; Journal of Inorganic Biochemistry; vol. 140; (2014); p. 64 – 71;,
Metal catalyst and ligand design
Ligand Template Strategies for Catalyst Encapsulation – NCBI

Some tips on 7173-51-5

The synthetic route of 7173-51-5 has been constantly updated, and we look forward to future research findings.

7173-51-5, N-Decyl-N,N-dimethyldecan-1-aminium chloride is a catalyst-ligand compound, ?involved in a variety of chemical synthesis. Rlated chemical reaction is continuously updated,7173-51-5

Equimolar amounts of mandelic acid, or (R)-(-)-mandelic acid or (S)-(+)-mandelic acid or L-proline and potassium hydroxide (scale 0.1 mol) were dissolved in distilled water (100 mL). After clarity of solution equimolar amount of quaternary ammonium chloride in distilled water (80 mL) was added. The mixture was heated at 60 C for 5 h. The water was removed under reduced pressure (70 C, 30¡Á102 Pa). Anhydrous methanol was added and the mixture was allowed to stand overnight at room temperature. The crystalline potassium chloride was removed by filtration and methanol by distillation. The obtained residue was dried overnight in vacuum at 80 C.

The synthetic route of 7173-51-5 has been constantly updated, and we look forward to future research findings.

Reference£º
Article; Cybulski, Jacek; Wi?niewska, Anna; Kulig-Adamiak, Anna; Da?browski, Zbigniew; Praczyk, Tadeusz; Michalczyk, Alicja; Walkiewicz, Filip; Materna, Katarzyna; Pernak, Juliusz; Tetrahedron Letters; vol. 52; 12; (2011); p. 1325 – 1328;,
Metal catalyst and ligand design
Ligand Template Strategies for Catalyst Encapsulation – NCBI

Brief introduction of 148332-36-9

The synthetic route of 148332-36-9 has been constantly updated, and we look forward to future research findings.

148332-36-9, [2,2′:6′,2”-Terpyridine]-4′-carboxylic acid is a catalyst-ligand compound, ?involved in a variety of chemical synthesis. Rlated chemical reaction is continuously updated

1.0 mmol of CuSO4 and 0.5 mmol of 2,2 ‘:6′,2″-terpyridine-4’-carboxylic acid were mixed, and placed in a stainless steel-lined stainless steel reactor. 20 mL of deionized water and 10 mL of absolute ethanol were added, mixed evenly, sealed, and hydrothermal reaction was carried out at 120-180 ¡ã C for 3 ~ 5 days under high temperature and high pressure environment to increase the reaction. The oxidation-reduction potential of the material changes significantly to improve the reaction rate. After completion of the hydrothermal reaction, the stainless steel reactor was cooled to room temperature by 5 ¡ã C per hour to obtain a blue block of 2,2 ‘: 6’, 2 ‘tripyridine-4’-carboxylic acid copper sulfate crystals. The resulting crystals were ground to 100 mesh sieve, to obtain terpyridine-4 ‘-carboxylic acid copper hydrogensulfate monoclinic blue powder having purity of not less than 99percent., 148332-36-9

The synthetic route of 148332-36-9 has been constantly updated, and we look forward to future research findings.

Reference£º
Patent; Ningbo University; Lin, Danfeng; Xu, Wei; Zhang, Beibei; Qi, Jinli; Lin, Jianli; Zhu, Honglin; Zheng, Yueqing; (7 pag.)CN103450228; (2016); B;,
Metal catalyst and ligand design
Ligand Template Strategies for Catalyst Encapsulation – NCBI

Analyzing the synthesis route of 100125-12-0

100125-12-0, 100125-12-0 3,8-Dibromo-1,10-phenanthroline 10991348, acatalyst-ligand compound, is more and more widely used in various.

100125-12-0, 3,8-Dibromo-1,10-phenanthroline is a catalyst-ligand compound, ?involved in a variety of chemical synthesis. Rlated chemical reaction is continuously updated

General procedure: The compound TP was prepared by a palladium-catalyzed cross-coupling reaction from 3-bromo-1,10- phenanthroline. First, 3-bromo-1,10-phenanthroline (2.6 g, 10 m ml) in methylbenzene (80 m ml) was stirred in N2 atmosphere. Second, Na2CO3 solution (10 ml, 20 m mol), the mixtures of thiophen-3-yl-3-boronic acid (1.54 g, 12 m mol), methylbenzene (50 m ml) and ethanol (5 ml) were carefully added in turn. Then, the new suspension was left to react for 12 h at 80 C by constant refluxing. The reaction mixture was rotating-evaporated, and was then purified by dissolving with CH2Cl2, water washing, drying with Na2SO4, filtration, concentration and column chromatography (silica gel, CHCl3). Finally, the white solid product (yield, 85%) was obtained after drying in vacuo.

100125-12-0, 100125-12-0 3,8-Dibromo-1,10-phenanthroline 10991348, acatalyst-ligand compound, is more and more widely used in various.

Reference£º
Article; Zhang, Peng; Liu, Pei; Zhao, Yong; Cao, Dongliang; Journal of Molecular Structure; vol. 1037; (2013); p. 122 – 129;,
Metal catalyst and ligand design
Ligand Template Strategies for Catalyst Encapsulation – NCBI

Simple exploration of 112881-51-3

112881-51-3, 112881-51-3 4′-(4-Pyridyl)-2,2′:6′,2”-terpyridine 11438308, acatalyst-ligand compound, is more and more widely used in various.

With the rapid development and complex challenges of chemical substances, new drug synthesis pathways are usually the most effective.112881-51-3,4′-(4-Pyridyl)-2,2′:6′,2”-terpyridine,as a common compound, the synthetic route is as follows.

General procedure: Ru(1)Cl3 (0.10 g, 0.17 mmol) and ligand 3 (0.05 g, 0.17 mmol) was suspended in ethane-1,2-diol (8 cm3). The suspension heated at 150 C for 2 h. The deep red solution was poured into excess aqueous KPF6 (20 mL). A red precipitate formed and was collected on Celite, washed with H2O (5 mL), EtOH (2 mL), Et2O (5 mL), and dissolved in CH3CN. The product was purified by chromatography (SiO2, CH3CN:H2O:saturated aqueous KNO3 14:1.2:0.5). Addition of excess aqueous saturated KPF6 solution and removal of CH3CN under reduced pressure gave a red precipitate which was collected on Celite, washed with H2O (5 mL), EtOH (2 mL), Et2O (5 mL) and dissolved in CH3CN. Removal of solvent gave [Ru(1)(3)](PF6)2 as a red solid (74 mg, 68 mumol, 40%).

112881-51-3, 112881-51-3 4′-(4-Pyridyl)-2,2′:6′,2”-terpyridine 11438308, acatalyst-ligand compound, is more and more widely used in various.

Reference£º
Article; Shen, Chao; Wang, Pi; Beves, Jonathon E.; Polyhedron; vol. 103; (2016); p. 241 – 247;,
Metal catalyst and ligand design
Ligand Template Strategies for Catalyst Encapsulation – NCBI

Simple exploration of 7173-51-5

The synthetic route of 7173-51-5 has been constantly updated, and we look forward to future research findings.

With the rapid development and complex challenges of chemical substances, new drug synthesis pathways are usually the most effective.7173-51-5,N-Decyl-N,N-dimethyldecan-1-aminium chloride,as a common compound, the synthetic route is as follows.,7173-51-5

In a round-bottom flask, equipped with a magnetic stirrer, heating bath, dropping funnel, and a reflux condenser, a suspension of 0.02 mol of 3,6-dichloro-2- methoxybenzoic acid in 30 mL of distilled water, was prepared. Then 0.02 mol of 10% aqueous solution of NaOH was added to the suspension. The reaction was conducted at 50C until the all acid reacted and a homogeneous reaction mixture was obtained. Then a stoichiometric amount of didecyldimethylammonium chloride was added in a 1 to 1 (50%: 50%) water and isopropanol mixture. The product precipitated from the reaction mixture in the form of a lower liquid layer. After 24 hours, the product was isolated by separating the phases. The organic phase was washed with distilled water from the unreacted substrate and the NaCl. In the final stage the product was dried for 24 hours at 50C under reduced pressure. The yield is 90%. 1H NMR (CDC13) delta ppm = 0.88 (t, J= 6.7 Hz, 6H), 1.25 (m, 28H), 1.61 (q, J = 6.8 Hz, 4H), 3.34 (s, 6H), 3.39 (t, J= 6.3 Hz, 4H), 3.95 (s, 3H), 6.99 (d, J= 8.5 Hz, 1H), 7.08 (d, J= 8.5 Hz, 1H); 13C NMR delta ppm = 14.0; 22.5; 26.1; 29.1; 29.25; 29.27; 31.7; 50.9; 61.5; 63.1; 125.3; 125.9; 127.0; 127.8; 140.2; 151.7; 167.9. Elemental analysis CHN CsoHssOsNCb: calculated C 65.90; H 9.79; N 2.56; observed: C 65.62; H 9.65; N 2.33. DSC: T glass -47C, mp 86C, T = 178C; 1 onset 232C

The synthetic route of 7173-51-5 has been constantly updated, and we look forward to future research findings.

Reference£º
Patent; THE BOARD OF TRUSTEES OF THE UNIVERSITY OF ALABAMA; PERNAK, Juliusz; SHAMSHINA, Julia; TADEUSZ, Praczyk; SYGUDA, Anna; JANISZEWSKA, Dominika; SMIGLAK, Marcin; GURAU, Gabriela; DALY, Daniel, T.; ROGERS, Robin, D.; WO2012/6313; (2012); A2;,
Metal catalyst and ligand design
Ligand Template Strategies for Catalyst Encapsulation – NCBI

Simple exploration of 7089-68-1

The synthetic route of 7089-68-1 has been constantly updated, and we look forward to future research findings.

With the rapid development and complex challenges of chemical substances, new drug synthesis pathways are usually the most effective.7089-68-1,2-Chloro-1,10-phenanthroline,as a common compound, the synthetic route is as follows.,7089-68-1

In the atmosphere of nitrogen, intermediate A2 (1.6g, 5.6 mmol), 2-chlorophenanthroline (0.8g, 3.7 mmol), tetrakis(triphenylphosphine)palladium (0) (0.1g, 0.11 mmol), cesium carbonate (3.0g, 9.3 mmol) and 1,2-dimethoxyethane (37 mL) were mixed, followed by stirring at 80¡ãC for 6 hours. Water (50 mL) was added to the reaction mixture, and the precipitates were filtered out to obtain a yellow solid (compound (2-A); 0.76g, 60percent).1H-NMR (400MHz, CDCl3, TMS)delta: 3.25 (s,3H), 7.70 (d,J8.0,1H), 8.03 (d,J8.0,1H), 8.18 (d,J8.0,1H), 8.30 (d,J8.0,1 H), 8.41 (d,J8.0,1H), 8.69 (s,1H), 8.83 (d,J8.0,1 H), 9.26 (d,J8.0,1H).

The synthetic route of 7089-68-1 has been constantly updated, and we look forward to future research findings.

Reference£º
Patent; Idemitsu Kosan Co., Ltd.; YASUKAWA, Keiichi; MAEDA, Ryoji; TOKAILIN, Hiroshi; EP2599780; (2013); A1;,
Metal catalyst and ligand design
Ligand Template Strategies for Catalyst Encapsulation – NCBI