The important role of 1121-22-8

With the complex challenges of chemical substances, we look forward to future research findings about trans-Cyclohexane-1,2-diamine

Name is trans-Cyclohexane-1,2-diamine, as a common heterocyclic compound, it belongs to chiral-catalyst compound, and cas is 1121-22-8, its synthesis route is as follows.,1121-22-8

General procedure: To a mortar were added 3,5-di-tert-butyl-2-hydroxybenzaldehyde (0.468 g, 2 mmol) and trans-cyclohexane-1,2-diamine (0.114 g,0.123 mL, 1 mmol), and these were mixed over 10 min. The product was recrystallized (CH2Cl2/EtOH 1:9) to give 1a as a bright yellow solid; yield: 0.487 g (89%).

With the complex challenges of chemical substances, we look forward to future research findings about trans-Cyclohexane-1,2-diamine

Reference£º
Article; Civicos, Jose F.; Coimbra, Juliana S. M.; Costa, Paulo R. R.; Synthesis; vol. 49; 17; (2017); p. 3998 – 4006;,
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The important role of 602-09-5

With the complex challenges of chemical substances, we look forward to future research findings about [1,1′-Binaphthalene]-2,2′-diol

Name is [1,1′-Binaphthalene]-2,2′-diol, as a common heterocyclic compound, it belongs to chiral-catalyst compound, and cas is 602-09-5, its synthesis route is as follows.,602-09-5

[ 1 , 1 ,-Binaphthalene]-2,2′-diol (30.0 g, 0. 1 05 mo I, 1 .0 eq. ) was placed in a flask and flushed with argon. Anhydrous toluene (300 m L ) was added, followed by trifluoromethanesulfonic acid (1 1.7 ml., 0.2 1 0 mo I, 2.0 eq. ). After further degassing, the mixture was re fluxed for 48 hours. After cool ing, the organic layer was extracted with water (500 m l. ), dried over gSO i, and reduced under vacuum until precipitation. Hexane (300 ml.) was then added, and the resulting suspension was stirred for 2h before being filtered off. This solid was dissolved in DC I, and filtered over silica (elution with hexane / DCM 2 : 1 ). The volume of the fraction obtained was reduced to ca. 50 m l., and the resulting crystals were filtered off, yielding the title compound.

With the complex challenges of chemical substances, we look forward to future research findings about [1,1′-Binaphthalene]-2,2′-diol

Reference£º
Patent; NOVALED GMBH; DENKER, Urlich; ZOeLLNER, Mike; GRAeF, Katja; SENKOVSKYY, Volodymyr; WALLIKEWITZ, Bodo; SCHOLZ, Johannes; FREY, Julien; (143 pag.)WO2016/180891; (2016); A1;,
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Some tips on 1,3-Dimesityl-1H-imidazol-3-ium chloride

With the complex challenges of chemical substances, we look forward to future research findings about 141556-45-8,belong chiral-catalyst compound

As a common heterocyclic compound, it belongs to chiral-catalyst compound, name is 1,3-Dimesityl-1H-imidazol-3-ium chloride, and cas is 141556-45-8, its synthesis route is as follows.,141556-45-8

SIMes-HCI (100 mg, 0.292 mmol), [Pd(cin)(M-CI)]2 (62.9 mg, 0.122 mmol), a magnetic stir bar and acetone (1.2 mL) were charged into a vial or round bottom flask , followed by K2C03 (33.5 mg, 0.243 mmol). The mixture was stirred at 60 C for 5 h. The general work up procedure was then followed, affording the product as microcrystalline material in 80% (135 mg) yield. XH NMR (400 MHz, CDCh): delta (ppm) =67.12 (m, 3H), 7.06 (m, 2H), 6.96 (d, J = 11.19 Hz, 4H), 5.30 (s, 1 H), 5.12-5.04 (m, 1H), 4.27 (d, J = 12.96 Hz, 1H), 3.99 (m, 4H), 3.27 (d, J = 6.86 Hz, 1H), 2.44 (d, J = 15.24 Hz, 10H), 2.31 (s, 6H), 1.93 (m, 1H). 13C {XH} IMMR (100 MHz, CDCb): delta (ppm) = delta 210.9 (C, carbene), 138.0 (C), 137.8 (C), 136.3 (C), 135.7 (C), 129.1 (CH), 128.0 (CH), 127.5 (CH), 127.1 (CH), 126.4 (CH), 109.4 (CH), 92.1 (CH), 51.0 (CH2), 46.5 (CH2), 20.9 (CHs).Elemental analysis: Expected : C 66.76, H 7.72, N 4.21. Found : C 66.63, H 7.64, N 4.27.

With the complex challenges of chemical substances, we look forward to future research findings about 141556-45-8,belong chiral-catalyst compound

Reference£º
Patent; UMICORE AG & CO. KG; NOLAN, Steven P.; (47 pag.)WO2018/115029; (2018); A1;,
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The important role of 250285-32-6

With the complex challenges of chemical substances, we look forward to future research findings about 1,3-Bis(2,6-diisopropylphenyl)imidazolium chloride

Name is 1,3-Bis(2,6-diisopropylphenyl)imidazolium chloride, as a common heterocyclic compound, it belongs to chiral-catalyst compound, and cas is 250285-32-6, its synthesis route is as follows.,250285-32-6

General procedure: In air, to a Schlenk tube that closed with a screw cap fitted with a septum and was equipped with a magnetic stir bar were added in turn NHC¡¤HCl (1.1 mmol, 468 mg), PdCl2 (1.0 mmol, 177 mg), Cs2CO3 (5 mmol, 1.63 g), and 2-nicotinic acid (1.1 mmol, 136 mg). The tube was then caped with a rubber septum and evacuated and backfilled with argon. This sequence was repeated three times. 1,4-Dioxane (10 mL) was injected through the septum. The mixture was then stirred at a pre-heated oil bath (80 C) for 20 h. The reaction mixture was cooled to room temperature and CH2Cl2 (25 mL) added. After filtration via a short pad of celite, the filtrate was condensed under vacuum and the residue was purified by flash chromatography on silica gel to provide the desired 1 and 2.

With the complex challenges of chemical substances, we look forward to future research findings about 1,3-Bis(2,6-diisopropylphenyl)imidazolium chloride

Reference£º
Article; Li, Yan-Jing; Zhang, Jin-Ling; Li, Xiao-Jian; Geng, Yu; Xu, Xiao-Hua; Jin, Zhong; Journal of Organometallic Chemistry; vol. 737; (2013); p. 12 – 20;,
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Some tips on trans-Cyclohexane-1,2-diamine

With the complex challenges of chemical substances, we look forward to future research findings about 1121-22-8,belong chiral-catalyst compound

As a common heterocyclic compound, it belongs to chiral-catalyst compound, name is trans-Cyclohexane-1,2-diamine, and cas is 1121-22-8, its synthesis route is as follows.,1121-22-8

General procedure: According to the same procedure described for 2a, white solid of2b was obtained in 71% yield. M.p. 178.5-179.5C. Anal. Calcd forC24H24N2O4 C, 71.27; H, 5.98; N, 6.93. Found: C, 71.20; H, 5.94;N, 6.92. IR (KBr, cm-1): 3434, 3190, 3051, 3025, 2940, 1650, 1612,1443, 1409, 1352, 1319, 1263, 981, 873, 799, 728, 661.

With the complex challenges of chemical substances, we look forward to future research findings about 1121-22-8,belong chiral-catalyst compound

Reference£º
Article; Yu, Yinghua; Chen, Jianxin; Meng, Suqin; Li, Chao; Lan, Meiying; Zhang, Zhichun; Journal of Molecular Catalysis A: Chemical; vol. 380; (2013); p. 104 – 111;,
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Simple exploration of 673-06-3

As the paragraph descriping shows that 673-06-3 is playing an increasingly important role.

673-06-3, D-Phenylalanine is a chiral-catalyst compound, ?involved in a variety of chemical synthesis. Rlated chemical reaction is continuously updated

673-06-3, Embodiment 1 N-(Benzyloxycarbonyl)-D-phenylalanine A 15.0 g sample of D-phenylalanine was dissolved in 45 ml of aqueous solution containing 7.26 g of 50% sodium hydroxide. This solution was stirred at 0-10 C. as 16.3 g of benzyl chloroformate was added rapidly in portions. The resulting reaction was mildly exothermic, and shortly after addition, solids precipitated. An additional 45 ml of water and 3.63 g of 50% sodium hydroxide were added, causing most of the solids to redissolve. The reaction mixture was stirred for 20 minutes and then acidified with 6N hydrochloric acid. The resulting solids were filtered, washed with water and then with hexane, and dried by suction and then under vacuum to give 47 g of white solids. These solids dissolved in ether were washed twice with 1N hydrochloric acid and then with water, dried over MgSO4 and stripped to 35 C. at 2.5 mm Hg to give 27.7 g of the desired product as a colorless oil.

As the paragraph descriping shows that 673-06-3 is playing an increasingly important role.

Reference£º
Patent; Shell Oil Company; US4560515; (1985); A;,
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The important role of 173035-10-4

With the complex challenges of chemical substances, we look forward to future research findings about 1,3-Dimesityl-4,5-dihydro-1H-imidazol-3-ium chloride

Name is 1,3-Dimesityl-4,5-dihydro-1H-imidazol-3-ium chloride, as a common heterocyclic compound, it belongs to chiral-catalyst compound, and cas is 173035-10-4, its synthesis route is as follows.,173035-10-4

Synthesis of [(SIMes)CuBr]. In an oven-dried vial, copper(I) bromide (0.522 g, 3.63 mmol), SIMes.HCl (0.86 g, 2.52 mmol) and sodium tert-butoxide (0.243 g, 2.52 mmol) were loaded inside a glovebox and stirred in dry THF (18 mL) overnight at room temperature outside of the glovebox. After filtration of the reaction mixture through a plug of Celite, the filtrate was mixed with hexane to form a precipitate. A second filtration afforded 0.808 g (71% yield) of the title complex as an off-white solid.Spectroscopic and analytical data for [(SIMes)CuBr]: 1H NMR (300 MHz, [D6]acetone): delta=7.01 (s, 4H, HAr), 4.16 (s, 4H, NCH2), 2.37 (s, 12H, ArCH3), 2.29 (s, 6H, ArCH3); 13C NMR (75 MHz, CDCl3): delta=202.6 (C, NCN), 138.5 (C, CAr), 135.3 (CH, CAr), 135.0 (C, CAr), 129.7 (CH, CAr), 51.0 (CH2, NCH2), 21.0 (CH3, ArCH3), 18.0 (CH3, ArCH3); Elemental analysis calcd for C21H26BrCuN2 (449.89): C, 56.06; H, 5.83; N, 6.23. Found: C, 55.98; H, 5.64; N, 6.21%.

With the complex challenges of chemical substances, we look forward to future research findings about 1,3-Dimesityl-4,5-dihydro-1H-imidazol-3-ium chloride

Reference£º
Patent; Institut Catala d’Investigacio Quimica; Institucio Catalana de Recerca i Estudis Avancats; US2009/69569; (2009); A1;,
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Downstream synthetic route of 1,3-Dimesityl-1H-imidazol-3-ium chloride

With the synthetic route has been constantly updated, we look forward to future research findings about 1,3-Dimesityl-1H-imidazol-3-ium chloride,belong chiral-catalyst compound

As a common heterocyclic compound, it belongs to quinuclidine compound,Quinuclidine-4-carboxylic acid hydrochloride,40117-63-3,Molecular formula: C8H14ClNO349,mainly used in chemical industry, its synthesis route is as follows.,141556-45-8

IMesHCl (0.503 g, 1.47 mmol) was loaded into an oven-dried 100 mL Schlenk flask and placed under a nitrogen atmosphere. Dry degassed THF (50mL) was added to the flask via cannula and a white slurry formed. The slurry was chilled to -78C in a dry ice/acetone bath and 1.OOmL of 1.6M nBuLi in hexane (1.6mmol) was added drop-wise. This reaction mixture was stirred for 30 minutes in the cold bath followed by 2 hours out of the bath to generate free carbene. The flask was then cooled a second time to -78C followed by addition of freshly distilled TMEDA (0.97 mL; 6.47 mmol) and 1.00 mL of 1.6 M nBuLi. The reaction mixture was stirred for 2 hours at -78C followed by addition of Mes2BF (0.473 g, 1.76 mmol). The reaction mixture was stirred for 3 hours while at -78C before warming to room temperature and stirring overnight. The resulting mixture was quenched with water and extracted with diethyl ether. An organic extract was dried over MgS04 followed by removal of volatiles in vaccuo. A resulting solid was dissolved in a minimum of diethyl ether and was precipitated by addition of hexane. The solid was collected by vacuum filtration and 0.723 g (89%) of the chelate product SMI was collected. X-ray quality crystals were grown using a saturated solution of THF layered with hexanes. 1H NMR (C6D6): delta = 1.67 (s, 3H, ArCH3), 1.68 (s, 3H, ArCH3), 1.85 (s, 3Eta, ArCH3), 2.04 (s, 3Eta, ArCH3), 2.07 (s, 3Eta, ArCH3), 2.08 (s, 3Eta, ArCH , 2.08 (s, 3Eta, ArCH3), 2.13 (s, 3Eta, ArCH3), 2.17 (s, 3Eta, ArCH3), 2.46 (s, 3Eta, ArCH3), 2.84 (d, 1Eta, 3JHH = 12.0 Hz, B-CH2), 2.88 (s, 3Eta, ArCH3), 3.06 (d, 1Eta, 3JHH = 12.0 Hz, B-CH2), 5.78 (d, 1H, 3JHH = 4.0 Hz, Imidazole-CH), 5.97 (s, 1H, ArH), 6.18 (s, 1Eta, ArH), 6.48 (s, 1Eta, ArH), 6.52 (s, 1Eta, ArH), 6.52 (s, 1Eta, ArH), 6.62 (d, 1 Eta, 3JHH = 4.0 Hz, Imidazole-CH), 6.72 (s, 1Eta, ArH), 6.73 (s, 1Eta, ArH), 6.73 (s, 1Eta, ArH). nB NMR (C6D6): delta = -1 1.2. 13C {} NMR (C6D6): delta = 19.1 (ArCH3), 19.1 (ArCH3), 20.0 (Ar H3), 20.8 (Ar H3), 20.8 (Ar H3), 21.0 (ArCH3), 21.0 (ArCH3), 24.0 (ArCH3), 24.9 (ArCH3), 27.7 (ArCH3), 27.9 (Ar H3), 33.5 (located by HSQC, B- H2), 120.0 (Imidazole-CH), 121.3 (Imidazole-CH), 125.3 (ArQ, 125.7 (ArQ, 6 ArCH located under the solvent signal via HSQC , 129.0 (ArCH), 130.3 (ArQ, 130.8 (ArCH), 131.5 (ArQ, 131.9 (ArQ, 133.0 (ArQ, 133.1 (ArQ, 134.4 (ArQ, 135.9 (ArQ, 137.0 (ArQ, 138.3 (ArQ, 138.7 (ArQ, 141.3 (ArQ, 141.9 (ArQ, 143.1 (ArQ, 145.4 (ArQ, 207.4 (N-C-N). Anal. Calcd. for C39H45N2B: C, 84.77; H, 8.21 ; N, 5.07.

With the synthetic route has been constantly updated, we look forward to future research findings about 1,3-Dimesityl-1H-imidazol-3-ium chloride,belong chiral-catalyst compound

Reference£º
Patent; LU, Jiasheng; WANG, Suning; KO, Soo-Bying; MCDONALD, Sean, Michael; YANG, Dengtao; WO2014/153648; (2014); A1;,
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The important role of trans-Cyclohexane-1,2-diamine

With the complex challenges of chemical substances, we look forward to future research findings about trans-Cyclohexane-1,2-diamine

Name is trans-Cyclohexane-1,2-diamine, as a common heterocyclic compound, it belongs to chiral-catalyst compound, and cas is 1121-22-8, its synthesis route is as follows.,1121-22-8

A methanolic solution of ligand trans-cyclohexane-1,2-diamine(0.1142 g, 1 mmol) was added dropwise to a clear solution ofCopper(II) trifluoromethanesulfonate (0.1808 g, 0.5 mmol) inmethanol (10 mL). The resultant solution was stirred at roomtemperature for 6 h to produce a dark blue coloured solution. Thediffraction quality crystals of the titled complex were obtaineddirectly by slow evaporation of the deep bluish methanolic solutionat room temperature. Yield: 0.272 g, 75%, m.p: 258 C, Anal. Calc. forC14H32CuF6N4O8S2: C, 26.86; H, 5.15; N, 8.95. Found: C, 26.54; H,5.32, N, 8.78. Selected FT-IR (KBr), cm1: n(NH2) 3332e3279, n(CH2)2967e2861, n(OH) 3463, n(CueN) 628, n(CueO) 514. UVeVis [lmax(nm), epsilon (L mol1 cm1)]: 243 (8940), 548 (89).

With the complex challenges of chemical substances, we look forward to future research findings about trans-Cyclohexane-1,2-diamine

Reference£º
Article; Agrahari, Bhumika; Layek, Samaresh; Kumari, Shweta; Anuradha; Ganguly, Rakesh; Pathak, Devendra D.; Journal of Molecular Structure; vol. 1134; (2017); p. 85 – 90;,
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The important role of 4488-22-6

With the complex challenges of chemical substances, we look forward to future research findings about [1,1′-Binaphthalene]-2,2′-diamine

Name is [1,1′-Binaphthalene]-2,2′-diamine, as a common heterocyclic compound, it belongs to chiral-catalyst compound, and cas is 4488-22-6, its synthesis route is as follows.,4488-22-6

General procedure: In a typical experiment Pd(OAc)2 (5.6 mg, 0.025 mmol), triphenylphosphine (13.2 mg, 0.05 mmol), 17-iodo-5alpha-androsta-16-ene 1 (0.5 mmol), 2,2′-diamino-1,1′-binaphthalene 2 (varied from 1.0 mmol to 0.125 mmol) and triethylamine (0.5 mL) were dissolved in DMF (10 mL) under argon in a 100 mL three-necked flask equipped with a gas inlet, reflux condenser with a balloon (filled with argon) at the top. The atmosphere was changed to carbon monoxide. The reaction was conducted for the given reaction time upon stirring at 50 C and analysed by TLC. The mixture was then concentrated and evaporated to dryness. The residue was dissolved in chloroform (20 mL) and washed with water (3 20 mL), 5% hydrochloric acid (20 mL), saturated NaHCO3 (20 mL) and brine (20 mL). The organic phase was dried over Na2SO4, filtered and evaporated to give a solid material. All compounds were subjected to column chromatography (Silicagel 60 (Merck), 0.063-0.200 mm), EtOAc/CHCl3 or hexane/CHCl3 (the exact ratios are specified in Section 4.4 for each compound). 4.3. Characterisation of the products (Fig. 3) (Sax)-3: Yield: 410 mg (72%). Off-white yellow solid, mp 137-142 C; [Found: C, 84.55; H, 7.65; N, 4.70; C40H44N2O requires C,84.46; H, 7.80; N, 4.93]; Rf (5% EtOAc/CHCl3) 0.68. 1H NMR (CDCl3) delta: 8.94 (1H, d, 9.0 Hz, H-30), 8.03 (1H, d, 9.0 Hz, H-40), 7.94 (1H, d,8.2 Hz, H-50), 7.87 (1H, d, 8.5 Hz, H-300), 7.82 (1H, d, 7.5 Hz, H-400), 7.43 (1H, dt, 6.3 Hz, 1.6 Hz, H-60), 7.35 (1H, s, NH), 7.31 (1H, dt,8.5 Hz, 0.8 Hz, H-70), 7.29-7.26 (2H, m, H-600 , H-600), 7.23 (1H, dt,6.8 Hz, 1.1 Hz, H-700), 7.16 (1H, d, 8.7 Hz, H-80), 6.96 (1H, d, 8.2 Hz,H-800), 6.21 (1H, dd, 2.9 Hz, 1.5 Hz, H-16), 3.69 (2H, s, NH2), 2.05 (1H, ddd, 16.7 Hz, 6.5 Hz, 3.4 Hz, 15-CHaHb), 1.78 (1H, ddd,16.7 Hz, 11.9 Hz, 1.4 Hz, 15-CHaHb), 1.07-0.54 (23H, m, skeleton protons), 0.78 (3H, s, 19-CH3), 0.62 (3H, s, 18-CH3). 13C NMR (CDCl3) delta: 163.6, 150.4, 143.0, 140.0, 135.7, 133.8, 132.5. 131.1, 130.3, 129.3, 128.3, 128.2, 128.1, 127.5, 126.8, 125.3, 124.9, 123.6, 122.8, 120.4, 119.7, 118.1, 110.5, 56.8, 54.7, 47.2, 45.3, 38.4, 36.3, 34.2, 33.7, 31.8, 31.4, 29.0, 28.8, 26.8, 22.2, 20.5, 16.0, 12.1. IR (KBr, m(cm1)): 3440 (amide-NH), 3398 (NH2), 1665 (CON), 1620 (CC). MS m/z (rel int.): 569.4 (100, (M+H)+), 381 (9), MS/MS m/z (relint.): 551.4 (29), 285.2 (100). [alpha]D20 = 37.1 (c 1.34, CHCl3). (Rax)-3: Yield: 114 mg (20%). Off-white solid substance; [Found:C, 84.30; H, 7.66; N, 4.77; C40H44N2O requires C, 84.46; H, 7.80; N,4.93]; Rf (5% EtOAc/CHCl3) 0.72. 1H NMR (CDCl3) delta: 8.95 (1H, d,9.0 Hz, H-30), 8.03 (1H, d, 9.0 Hz, H-40), 7.93 (1H, d, 7.9 Hz, H-50), 7.87 (1H, d, 8.9 Hz, H-300), 7.82 (1H, d, 7.8 Hz, H-400), 7.43 (1H, dt,6.4 Hz, 1.2 Hz, H-60), 7.36 (1H, s, NH), 7.31 (1H, dt, 8.6 Hz, 0.8 Hz,H-70), 7.29-7.26 (2H, m, H-6”, H”), 7.23 (1H, dt, 6.9 Hz, 1.5 Hz,H-7”), 7.16 (1H, d, 8.5 Hz, H-8′), 6.96 (1H, d, 8.4 Hz, H-8”), 6.21 (1H, dd, 3.1 Hz, 1.5 Hz, H-16), 3.69 (2H, s, NH2), 2.05 (1H, ddd, 16.3 Hz, 6.4 Hz, 3.4 Hz, 15-CHaHb), 1.78 (1H, ddd, 16.6 Hz,11.7 Hz, 2.0 Hz, 15-CHaHb), 1.07-0.53 (23H, m, skeleton protons), 0.77 (3H, s, 19-CH3), 0.31 (3H, s, 18-CH3). 13C NMR (CDCl3) delta: 163.5, 150.4, 143.1, 140.2, 135.7, 133.8, 132.4, 131.1, 130.3, 129.3, 128.4, 128.3, 128.2, 127.5, 126.8, 125.3, 124.9, 123.6,122.8, 120.4, 119.7, 118.0, 110.6, 56.8, 54.8, 47.2, 45.2, 38.4, 36.3, 34.2, 33.7, 31.7, 31.4, 29.0, 28.8, 26.8, 22.2, 20.5, 15.5, 12.1. IR(KBr, m (cm1)): 3441 (amide-NH), 3396 (NH2), 1665 (CON), 1620 (CC). MS m/z (rel int.): 569.4 (100, (M+H)+), 381 (9), MS/MS m/z (rel int.): 551.4 (29), 285.2 (100). [alpha]D20 = +191.5 (c 0.914, CHCl3). (Sax)-4: Yield: 102 mg (12%). Beige solid substance; [Found: C,84.31; H, 8.35; N, 3.12; C60H72N2O2 requires C, 84.45; H, 8.51; N,3.28]; Rf (10% hexane/CHCl3) 0.69. 1H NMR (CDCl3) alpha: 8.94 (2H, d,9.2 Hz, H-3′), 8.08 (2H, d, 9.2 Hz, H-4′), 7.95 (2H, d, 8.2 Hz, H-5′),7.46 (2H, dt, 7.2 Hz, 0.9 Hz, H-6′), 7.35 (2H, dt, 7.2 Hz, 0.9 Hz, H-7′), 7.1 (2H, d, 9.3 Hz, H-8′), 7.13 (2H, s, NH), 6.05 (2H, dd, 3.1 Hz, 1.5 Hz, H-16), 2.02 (2H, ddd, 16.8 Hz, 6.4 Hz, 3.1 Hz, 15-CHaHb), 1.88 (2H, dd, 9.9 Hz, 3.1 Hz, 14-CH), 1.75 (2H, ddd, 16.8 Hz,11.7 Hz, 1.5 Hz, 15-CHaHb), 1.69-0.54 (44H, m, skeleton protons), 0.77 (6H, s, 19-CH3), 0.57 (6H, s, 18-CH3). 13C NMR (CDCl3) alpha: 163.6, 150.2, 140.0, 136.0, 135.2, 132.4, 131.3, 130.0, 128.2,127.5, 125.3, 124.9, 120.5, 118.1, 56.6, 54.8, 47.2, 45.4, 38.4, 36.3, 34.2, 33.6, 31.7, 31.4, 29.0, 28.8, 26.8, 22.1, 20.5, 16.1, 12.1. IR (KBr, m (cm1)): 3408 (amide-NH), 1677 (CON), 1621 (CC). MS m/z (rel int.): 853.6 ((M+H)+); 875.6 ((M+Na)+), 891.5 ((M+K)+). [alpha]D20 = +12.0 (c 0.418, CHCl3). (Rax)-4: Yield: 85 mg (10%). Beige solid substance; [Found: C,84.28; H, 8.30; N, 3.06; C60H72N2O2 requires C, 84.45; H, 8.51; N,3.28]; Rf (10% hexane/CHCl3) 0.74. 1H NMR (CDCl3) alpha: 8.95 (2H, d,9.0 Hz, H-3′), 8.08 (2H, d, 9.0 Hz, H-4′), 7.96 (2H, d, 7.8 Hz, H-5′), 7.46 (2H, dt, 7.8 Hz, 0.9 Hz, H-6’…

With the complex challenges of chemical substances, we look forward to future research findings about [1,1′-Binaphthalene]-2,2′-diamine

Reference£º
Article; Mikle, Gbor; Boros, Borbla; Kollr, Lszl; Tetrahedron Asymmetry; vol. 25; 23; (2014); p. 1527 – 1531;,
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