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The article 《An iron(II) complex of trans, trans, trans-bis(azido)bis(4-amino-3,5-bis(2-pyridyl)-1,2,4-triazole): Insight into molecular and supramolecular structures using Hirshfeld surface analysis and DFT studies》 also mentions many details about this compound(1671-88-1)Safety of 3,5-Di(pyridin-2-yl)-4H-1,2,4-triazol-4-amine, you can pay attention to it, because details determine success or failure

Setifi, Zouaoui; Setifi, Fatima; Glidewell, Christopher; Gil, Diego M.; Kletskov, Alexey V.; Echeverria, Jorge; Mirzaei, Masoud published an article about the compound: 3,5-Di(pyridin-2-yl)-4H-1,2,4-triazol-4-amine( cas:1671-88-1,SMILESS:NN1C(C2=NC=CC=C2)=NN=C1C3=NC=CC=C3 ).Safety of 3,5-Di(pyridin-2-yl)-4H-1,2,4-triazol-4-amine. Aromatic heterocyclic compounds can be classified according to the number of heteroatoms or the size of the ring. The authors also want to convey more information about this compound (cas:1671-88-1) through the article.

The solvothermal synthesis and structural characterization of the new high-spin iron(II) complex trans,trans,trans-[bis(azido)bis(4-amino-3,5-bis(2-pyridyl)-1,2,4-triazole)iron(II)] is reported. The complex crystallizes in the triclinic space group Pi with Z = 1, a 6.6648(3), b 8.4012(3), c 11.7970(5) Å, α 85.063(2), β 95.063(2), γ 98.5080(10)°. It is centrosym. with mutually trans pairs of azido, pyridyl and triazole N atoms, the Fe-N distances indicate a high-spin configuration. A combination of N-H···N hydrogen bonds and π···π stacking interactions generates a sheet structure in which the shortest Fe···Fe distance is 6.6648(3) Å. Hirshfeld surface anal. was performed for visualizing, exploring and quantifying intermol. interactions that stabilize the crystal packing of the complex. Noncovalent interactions present in the crystal structure also were analyzed by computational tools. The interaction energies associated with the different interaction topologies were calculated and QTAIM and NBO analyses were applied to study the origin and nature of the attractive forces.

The article 《An iron(II) complex of trans, trans, trans-bis(azido)bis(4-amino-3,5-bis(2-pyridyl)-1,2,4-triazole): Insight into molecular and supramolecular structures using Hirshfeld surface analysis and DFT studies》 also mentions many details about this compound(1671-88-1)Safety of 3,5-Di(pyridin-2-yl)-4H-1,2,4-triazol-4-amine, you can pay attention to it, because details determine success or failure

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The article 《Two new micro-isostructural metal-organic polymers based on mixed-ligand copper(I): Structures and selective sensing of nitro explosives in water》 also mentions many details about this compound(37943-90-1)Recommanded Product: 37943-90-1, you can pay attention to it, because details determine success or failure

The three-dimensional configuration of the ester heterocycle is basically the same as that of the carbocycle. Compound: Diphenyl-2-pyridylphosphine(SMILESS: P(C1=CC=CC=C1)(C2=CC=CC=C2)C3=NC=CC=C3,cas:37943-90-1) is researched.Formula: C9H6BrNS. The article 《Two new micro-isostructural metal-organic polymers based on mixed-ligand copper(I): Structures and selective sensing of nitro explosives in water》 in relation to this compound, is published in Applied Organometallic Chemistry. Let’s take a look at the latest research on this compound (cas:37943-90-1).

Two new one-dimensional metal-organic polymers (MOPs) {[Cu2(L)(PPh2Py)2·I2]·CH3Cl}n (1) and {[Cu2(L)(PPh2Py)2·Br2]·CH3Cl}n (2) (L = (1E,2E)-1,2-bis(pyridine-4-ylmethylene)hydrazine) (4-bpmh) have been synthesized and elucidated by single crystal x-ray diffraction. The results of x-ray diffraction anal. unambiguously revealed that the two polymers are isostructural with the major intermol. CH···π and π···π interactions. Microstructures of these polymers were also synthesized using a sonochem. method in different concentrations and reaction times. Field emission SEM, powder x-ray diffraction, thermogravimetric anal. and IR spectroscopy were applied to fully characterize these compounds The photoluminescent properties of microrod MOPs were also evaluated to add to authors understanding of their potential ability for nitro compound sensing. These experiments showed that MOPs 1 and 2 are good luminescence sensors for detection of nitro explosives in aqueous media. The probes maintained their high sensitivity and selectivity for 4-nitrophenol (4-NP). The energy transfer process accompanied by electrostatic interactions of 4-NP with these MOPs can be considered as an influential reason for the selectivity of 4-NP. The competitive study of the quenching process has also shown superior operation with microparticles compared with bulky polymers. These results indicate that this method may be useful to synthesize luminescent materials possessing good sensing properties.

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The article 《4,5-Disubstituted cis-pyrrolidinones as inhibitors of type II 17β-hydroxysteroid dehydrogenase. Part 3. Identification of lead candidate》 also mentions many details about this compound(123784-07-6)Formula: C9H6BrNS, you can pay attention to it, because details determine success or failure

Wood, Jill; Bagi, Cedo M.; Akuche, Christiana; Bacchiocchi, Antonietta; Baryza, Jeremy; Blue, Marie-Luise; Brennan, Catherine; Campbell, Ann-Marie; Choi, Soongyu; Cook, James H.; Conrad, Patricia; Dixon, Brian R.; Ehrlich, Paul P.; Gane, Todd; Gunn, David; Joe, Ted; Johnson, Jeffrey S.; Jordan, Jerold; Kramss, Richard; Liu, Peiying; Levy, Joan; Lowe, Derek B.; McAlexander, Ian; Natero, Reina; Redman, Aniko M.; Scott, William J.; Town, Christopher; Wang, Ming; Wang, Yamin; Zhang, Zhonghua published the article 《4,5-Disubstituted cis-pyrrolidinones as inhibitors of type II 17β-hydroxysteroid dehydrogenase. Part 3. Identification of lead candidate》. Keywords: pyrrolidinone preparation hydroxysteroid dehydrogenase inhibitor SAR.They researched the compound: 2-(5-Bromothiophen-2-yl)pyridine( cas:123784-07-6 ).Formula: C9H6BrNS. 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:123784-07-6) here.

A series of 4,5-disubstituted cis-pyrrolidinones was investigated as inhibitors of 17β-HSD II for the treatment of osteoporosis. Biochem. data for several compounds are given. Compound I was selected as the lead candidate.

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The article 《Influence of selected pesticides on leaf elemental content and yield of garden beans (Phaseolus vulgaris)》 also mentions many details about this compound(1970-40-7)Recommanded Product: 1970-40-7, you can pay attention to it, because details determine success or failure

The chemical properties of alicyclic heterocycles are similar to those of the corresponding chain compounds. Compound: 2,3,5-Trichloropyridin-4-ol, is researched, Molecular C5H2Cl3NO, CAS is 1970-40-7, about Influence of selected pesticides on leaf elemental content and yield of garden beans (Phaseolus vulgaris), the main research direction is insecticide bean mineral; nematocide bean mineral; fungicide bean mineral; herbicide bean mineral; bean mineral pesticide; mineral bean pesticide.Recommanded Product: 1970-40-7.

The effects of some systemic insecticides-nematocides, herbicides and a fungicide on bean leaf minerals were determined Disulfoton [298-04-4] and DMPP (O,O-diethyl O-(p-methylsulfinyl)phenyl phosphorothioate) [114-28-3] had no effect on phosphorus, potassium, calcium, or magnesium levels in leaves, plant weight, or pod yields. Leaf calcium [7440-70-2] levels were significantly reduced by several herbicides, especially DNBP (dinoseb) [88-85-7] plus DCPA [1861-32-1] and DNBP plus pyrichlor [1970-40-7]. Herbicides also caused plant injury and decreased stands and yields. Benomyl [17804-35-2] fungicide, at 200 ppm in the soil, significantly increased foliar Ca.

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The article 《Synthesis, x-ray structure, spectroscopic and magnetic properties of [bis(4-amino-3,5-bis(pyridin-2-yl)-1,2,4-triazole-N’,N1)(aqua)copper(II)] bis(hydrogensulfate)》 also mentions many details about this compound(1671-88-1)Name: 3,5-Di(pyridin-2-yl)-4H-1,2,4-triazol-4-amine, you can pay attention to it, because details determine success or failure

Most of the natural products isolated at present are heterocyclic compounds, so heterocyclic compounds occupy an important position in the research of organic chemistry. A compound: 1671-88-1, is researched, SMILESS is NN1C(C2=NC=CC=C2)=NN=C1C3=NC=CC=C3, Molecular C12H10N6Journal, Inorganica Chimica Acta called Synthesis, x-ray structure, spectroscopic and magnetic properties of [bis(4-amino-3,5-bis(pyridin-2-yl)-1,2,4-triazole-N’,N1)(aqua)copper(II)] bis(hydrogensulfate), Author is van Koningsbruggen, Petra J.; Goubitz, Kees; Haasnoot, Jaap G.; Reedijk, Jan, the main research direction is copper aminobispyridyltriazole complex preparation structure; crystal structure copper aminobispyridyltriazole complex; hydrogen bond copper aminobispyridyltriazole complex.Name: 3,5-Di(pyridin-2-yl)-4H-1,2,4-triazol-4-amine.

The synthesis, crystal structure, spectroscopic and magnetic properties of a five-coordinated mononuclear Cu(II) compound with the ligand 4-amino-3,5-bis(pyridin-2-yl)-1,2,4-triazole (abpt) (abbreviated as abpt) is reported. [Cu(abpt)2(H2O)](HSO4)2 crystallizes in the triclinic space group C2/c, with a 15.0685(9), b 9.6108(5), c 19.691(1) Å, β 93.611(5)°, V = 2846.0(3) Å3 and Z = 4. The least-squares refinement based on 2028 significant reflections, with I > 2.5σI, converged to R = 0.037 and Rw = 0.043. The mol. structure consists of a mononuclear five-coordinated Cu(II) cation. Two abpt ligands act as bidentate chelating ligands with Cu-N(1) = 1.958(3), Cu-N(51) = 2.066(3) Å and an N(1)-Cu-N(51) angle of 80.1(1)°. A H2O mol. is coordinated (Cu-O(1) = 2.124(4) Å). The Cu and O(1) are in special positions. The anions are the unusual hydrogensulfate (HSO4-) which have remarkably short acceptor H bonds to the same coordinating H2O mol. (O(1)-O(13) (1-x, y, 0.50-z) = 2.701(4), H(1)-O(13) (1-x, y, 0.50-z) = 1.74(4) Å, O(1)-H(1)···O(13) (1-x, y, 0.50-z) = 167(4)°). Absorptions of the (low symmetry) H bonded hydrogensulfate anion can easily be found in the IR spectrum. The X-band powder ESR spectra show the usual rhombic spectrum for a Cu(II) ion in a five-coordination. Despite the strong H-bonding network no evidence for Cu···Cu exchange splittings are observed, in agreement with the magnetic susceptibility measurements over the temperature range 4.2-290 K, where the product of the magnetic susceptibility and the temperature remains constant at 0.325 cm3 mol-1 K.

The article 《Synthesis, x-ray structure, spectroscopic and magnetic properties of [bis(4-amino-3,5-bis(pyridin-2-yl)-1,2,4-triazole-N’,N1)(aqua)copper(II)] bis(hydrogensulfate)》 also mentions many details about this compound(1671-88-1)Name: 3,5-Di(pyridin-2-yl)-4H-1,2,4-triazol-4-amine, you can pay attention to it, because details determine success or failure

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The article 《Herbicidal compounds in a series of chlorinated pyridine derivatives》 also mentions many details about this compound(1970-40-7)Related Products of 1970-40-7, you can pay attention to it, because details determine success or failure

Related Products of 1970-40-7. The mechanism of aromatic electrophilic substitution of aromatic heterocycles is consistent with that of benzene. Compound: 2,3,5-Trichloropyridin-4-ol, is researched, Molecular C5H2Cl3NO, CAS is 1970-40-7, about Herbicidal compounds in a series of chlorinated pyridine derivatives. Author is Moshchitskii, S. D.; Ivashchenko, Ya. N.; Orda, V. V.; Yagupol’skii, L. M..

3,4,5,6-Heptachloro-2-(trichloro-methyl)pyridine (I) heated at 130-40° with 80% H2SO4 formed 92% 3,4,5,6-tetrachloropicolinic acid, m. 172-3° (aqueous EtOH). F3CCO2OH-CHCl3 oxidized 4-amino-3,5,6-hexachloro-2-(tri-chloromethyl)pyridine (II) to the 4-nitro derivative (III), m. 73-4° (ligroine). I was hydrolyzed by NaOH in aqueous EtOH to 4-hydroxy-3,5,6-trichloropicolinic acid (IV), m. 194-5° (H2O) (Me ester m. 149-50°) also obtained from III and 80% H2SO4 at 195-200° in 2 hr. Decarboxylation of IV at 200-10° formed 4-hydroxy-2,3,5-trichloropyridine, m. 215° (aqueous EtOH). When Me 3,5,6-trichloro-4-aminopicolinate, m. 120-2° (n-C7H16), was oxidized with F3CCO2OH, the corresponding 4-nitro ester, m. 142-3° (C6H6), was formed.

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Heterocyclic compounds can be divided into two categories: alicyclic heterocycles and aromatic heterocycles. Compounds whose heterocycles in the molecular skeleton cannot reflect aromaticity are called alicyclic heterocyclic compounds. Compound: 67929-86-6, is researched, Molecular C11H11NO3, about Arylthioindoles, Potent Inhibitors of Tubulin Polymerization, the main research direction is arylthioindole preparation tubulin polymerization inhibitor.Related Products of 67929-86-6.

Several arylthioindoles had excellent activity as inhibitors both of tubulin polymerization and of the growth of MCF-7 human breast carcinoma cells. Me 3-[(3,4,5-trimethoxyphenyl)thio]-5-methoxy-1H-indole-2-carboxylate (I), the most potent derivative, showed IC50 = 2.0 μM, 1.6 times more active than colchicine and about as active as combretastatin A-4 (CSA4). Compound I inhibited the growth of the MCF-7 cells at IC50 = 13 nM. Colchicine and CSA4 had 13 nM and 17 nM IC50 values, resp., with these cells.

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Praveen, Chandrasekaran; Ayyanar, Asairajan; Perumal, Paramasivan Thirumalai published the article 《Gold(III) chloride catalyzed regioselective synthesis of pyrano[3,4-b]indol-1(9H)-ones and evaluation of anticancer potential towards human cervix adenocarcinoma》. Keywords: pyranoindolone preparation anticancer; iodoindolecarboxylate preparation alkyne cross coupling hydrolysis cycloisomerization gold catalyst.They researched the compound: Methyl 5-methoxyindole-2-carboxylate( cas:67929-86-6 ).Category: isoquinoline. 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:67929-86-6) here.

A highly regioselective synthesis of pyrano[3,4-b]indol-1(9H)-ones via gold(III) chloride catalyzed cycloisomerization of 3-ethynyl-indole-2-carboxylic acid was achieved in good to excellent yields. These compounds were screened for their in vitro cytotoxicity against human cervical (HeLa) cell lines. Out of ten compounds, three compounds I (R = Me, Et, H) showed comparable proliferation inhibitory activity against the standard drug cisplatin. Compound I (r = Me) was found to be the most efficacious with IC50 value of 0.22 μM.

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In general, if the atoms that make up the ring contain heteroatoms, such rings become heterocycles, and organic compounds containing heterocycles are called heterocyclic compounds. An article called Methoxyindoles and their derivatives, published in 1924, which mentions a compound: 67929-86-6, Name is Methyl 5-methoxyindole-2-carboxylate, Molecular C11H11NO3, Electric Literature of C11H11NO3.

2,5-O2N(HO)C6H3Me, m. 128°, was obtained in 58 g. yield (together with 42 g. of 4,5-O2N(HO)C6H3Me) by slowly adding 140 g. m-HOC6H4Me in 140 g. AcOH to a stirred mixture of 200 g. HNO3 (d. 1.5) and 400 g. AcOH at -8° to -5°, and removing the 4-NO2 derivative by steam distillation Me2SO4 (252 g.) added to 153 g. 2,5-O2N(HO)C6H3Me and 46 g. Na in 750 cc. MeOH gave a 90% yield of 2,5-O2N(MeO)C6H3Me (I), m. 55°. 2-Nitro-5-methoxyphenylpyruvic acid (II), yellow, m. 128° (phenylhydrazone, yellow, m. 151-2° (decomposition)), results in 51 g. yield from 50 g. of I and 63 g. (CO2Et)2 added to a suspn. of 35 g. EtONa in 300 cc. dry Et2O. Oxidation of II by H2O2 in 2% NaOH gave 2-nitro-5- methoxyphenylacetic acid, m. 176°. Reduction of II in NH4OH by FeSO4 gave a 73% yield of 5-methoxyindole-2-carboxylic acid (III), m. 196-7° (evolution of gas). Warmed with Ehrlich’s reagent, a deep pink color is produced, which fades on cooling. Me ester, m. 177°. Et ester, m. 156°. 2,3-O2N(MeO)C6H3Me, (CO2Et)2 and KOEt in Et2O give a 75% yield of 2-nitro-3-methoxy-phenylpyruvic acid (IV), pale yellow, m. 161-2°, or yellow with 0.5 AcOH of crystallization, m. 118-45°. The EtOH solution gives a deep green color with FeCl3, destroyed by mineral acids. Phenylhydrazone, yellow, m. 159° (decomposition). Oxidation of IV gives 2-nitro-3-methoxyphenylacetic acid, m. 137-8°, while reduction with FeSO4 and NH4OH gives 7-methoxyindole-2-carboxylic acid (V), m. 182° and decomposes on continued heating. Et ester, m. 114°. Me ester, m. 120°. 2-Nitro-6-methoxyphenylpyruvic acid (VI), yellow, m. 47-55°; phenylhydrazone, yellow, m. 173-4° (decomposition). Oxidation with H2O2 gives 2-nitro-6-methoxyphenylacetic acid, yellow, m. 172°, while reduction of VI gave 4-methoxyindole-2-carboxylic acid (VII), m. 234-5°, in 63% yield. Ehrlich’s reagent gives a purple color, which disappears on cooling. Me ester, m. 143.5°. Et ester, m. 161.5°. p-MeOC6H4NHNH2 (VIII), best prepared by diazotizing p-MeOC6H4NH2 and reducing with SnCl2 in concentrated HCl, m. 65°; yield, 44%. α-Ketobutyric acid p-methoxy-phenylhydrazone (IX), yellow, m. 105°. o-Methoxyphenylhydrazone (X), pale yellow, m. 112°. The action of concentrated H2SO4 on IX (or the components in EtOH) gives 5-methoxyskatole-2-carboxylic acid (XI), m. 200-1° (decomposition), isolated as the Et ester, m. 151-2°; Me ester, m. 156°. In the same way X gave 7-methoxyskatole-2-carboxylic acid (XII), m. 222-3°, isolated as the Me ester, m. 144-15°, the yield of the acid being only 23%. A by-product of this reaction is Et ketobutyrate phenylhydrazone, yellow, m. 59-60°. III, changed to the acid chloride by PCl5 in AcCl, this dissolved in CHCl3 and treated with MeNHCH2CH(OMe)2, gave 5-methoxyindole-2-carboxydimethylacetalyl-methylamide, m. 159°. This is converted by warming with saturated alc. HCl at 40-50° for 15 min. into a mixt, of about equal amounts of 10-methoxy-3-keto-4-methyl-3,4-dihydro-4-carboline (XIII), m. 280°, has a distinct blue fluorescence in the solid state, gives a yellow HCl salt, which is dissociated by H2O and gives no color with Ehrlich’s reagent or with vanillin and HCl in the cold; the alc. solution has a striking lilac fluorescence; and 10- methoxy-5-keto-4- methyl-4,5-dihydroindole-1,4-diazine (XIV), m. 243°, gives a greenish blue color with Ehrlich’s reagent, fading to a pale yellow on cooling and becoming green on boiling, and gives an intense purple color with vanillin and HCl; the EtOH solution has a very faint blue fluorescence which is not increased by adding HCl. 5-Methoxyindole-2-carboxyacetalylamide m. 151-2°, results from the chloride of III and H2NCH2CH(OEt)2; Ehrlich’s reagent gives a purple solution, becoming intense blue on warming, while NaNO2 produces a green color in the cold. Vanillin and HCl produce a deep pink which becomes intense bluish violet on the addition of NaNO2 and warming. The action of alc. HCl gives 10-methoxy-5-keto-4,5-dihydroindole-1,4-diazine (XV), sinters 265°, m. 280°. 5-Methoxyindole-2-carboxydimethylacetalylamide, m. 154°, and with alc. HCl gives XV. 5-Methoxyindole-2-carboxyacetalylmethylamide, m. 127°, is formed from the chloride of III and MeNHCH2CH(OEt)2; with alc. HCl it yields about equal quantities of XIII and XIV. 7- Methoxyindole-2-carboxydimethylacetalylmethylamide, obtained only as a sirup, gives with alc. HCl a mixture of approx. 4 parts 12-methoxy-3-keto-4-methyl-3,4-dihydro-4-carboline, pale yellow, m. 250°, yielding a golden-yellow HCl salt, and 1 part 12-methoxy-5-keto-4-methyl-4,5-dihydroindole-l,4-diazine, m. 135°, which gives a blue color with vanillin and HCl and a green color with Ehrlich’s solution 4-Methoxyindole-2-carboxydimethylacetalylmethylamide, m. 112°, which, with alc. HCl, gave 9-methoxy-3-keto-4-methyl-3,4-dihydro-4-carboline, m. 250°, and yields a sparingly soluble yellow HCl salt. The mother liquors gave a green color with vanillin and HCl but the diazine was not isolated. When XII was subjected to the above reactions, a compound C14H13O2N2Cl, m. 190°, was obtained, which was unchanged by treatment with 10% MeOH-KOH for 10 min. and is probably 9-chloro-12-methoxy-5-keto-4,7-dimethyl-4,5-dihydroindol-l,4-diazine. III decomposes vigorously when heated to 205-210°, yielding 5-methoxyindole (XVI), b17 176-8° m. 55°, acquires a pink tint which slowly darkens on standing, is only slightly volatile with steam (1 g. per l. of H2O), colors a pine shaving moistened with HCl reddish violet, gives a purple precipitate with concentrated HNO3 and NaNO2. Picrate, bright red, m. 145°. 1-Ac derivative (XVII), b25 210-1°, m. 80-1°. Nitration of the Ac derivative gave a mixture of an a-NO2 derivative, light brown, m. 149°, soluble in EtOH, and the b-NO2 derivative, brown, m. 213-4°, the a-derivative predominating. Hydrolysis gave a- and b-nitro-5-methoxyindoles, yellow, m. 144° (mixture m. about 112°); the a-form gives an orange-purple color with a pine stick, the b-form a deep purple. The a-form gives a pale red color with Ehrlich’s reagent, not affected by addition of NaNO2, while the b-form develops a red color only after addition of NaNO2. XVI, treated with CHCl3 and EtOH-KOH, yields a mixture of 5-methoxyindole-3-aldehyde, m. 178°, and 3-chloro-6-methoxyquinoline, m. 73-4°, separated by steam distillation XVI was also synthesized as follows: 4-Methoxy-2-aldehydophenylglycineamide oxime, yellow, m. 196° (decomposition) was obtained in 70% yield from 5,2-MeO(H2N)C6H3CH:NOH and ClCH2CONH2 (formyl derivative, bright yellow, m. 223°); on hydrolysis yields 4-methoxy-2-aldehydophenylglycine oxime, pale yellow, m. 178°; with saturated H2SO3 this is changed to 4-methoxy-2-aldehydophenylglycine, bright orange, m. 183° (decomposition) (phenylhydrazone, yellow, m. 175-6°) which yields XVII on boiling with AC2O and AcONa. V, decomposed at 230-3°, gives 73% of 7-methoxyindole, b17 157°, b21 159-61°, slowly turns brown on keeping, fairly volatile with steam (2 g. per 500 cc. H2O), gives a deep mauve pine-shaving reaction, gives a yellow color with Ehrlich’s reagent, deepening to orange-red on warming and to a deep reddish purple on addition of dilute NaNO2. Picrate, red, m. 156°. With alc. KOH and CHCl3 this yields 7-methoxyindole-3-aldehyde, m. 159-60°, and 3-chloro-8-methoxyquinoline, m. 84.5°; the yield of both products was small. VII, at 245-50°, gives 4-methoxyindole, m. 69.5°, (picrate, red, m. 159-60°) gives a deep purple pine-shaving reaction and a reddish purple color with Ehrlich’s reagent. XI decomposes at 210° and gives 75% of 5-methoxyskatole, m. 66°, apparently non-volatile with steam, gives a red pine-shaving reaction and a reddish purple color with Ehrlich’s reagent. Picrate, dark red, m. 151-2°. XII similarly yields 7-methoxyskatole, b20 170° (picrate, brownish red, m. 156°). The pine-shaving reaction is a deep purplish red; Ehrlich’s reagent gives no color in the cold; on warming a reddish purple color develops. The K derivative of II gives with Me2SO4 2-nitro-α-methoxycinnamic acid (XVIII), pale yellow, m. 164-5°. Na salt, yellow. Me ester, pale yellow, m. 67°; the Et ester appears to be an oil. Oxidation of XVIII gives o-O2NC6H4CHO. Reduction of XVIII with FeSO4 and NH4OH gives the 2-amino derivative, pale yellow, crystallines with 2AcOH and m. 167°. Me ester, yellow, m. 60-1°. The acid readily loses MeOH, forming indole-2-carboxylic acid, m. 203-4° (heating above its m. p., solution in cold concentrated H2SO4 at room temperature for 16 hrs., boiling with 10% HCl or reduction of XVIII with FeSO4 and NH4OH and boiling the reaction product for 24 hrs.). 2-Nitro-α,3-dimethoxycinnamic acid, from IV, as above, m. 202° (decomposition), and reduced to the 2-amino derivative, m. 139°, and decomposing above its m. p. to give V.

After consulting a lot of data, we found that this compound(67929-86-6)Electric Literature of C11H11NO3 can be used in many types of reactions. And in most cases, this compound has more advantages.

Reference:
Isoquinoline – Wikipedia,
Isoquinoline | C9H7N – PubChem

 

You Should Know Something about 1970-40-7

After consulting a lot of data, we found that this compound(1970-40-7)Reference of 2,3,5-Trichloropyridin-4-ol can be used in many types of reactions. And in most cases, this compound has more advantages.

The reaction of an aromatic heterocycle with a proton is called a protonation. One of articles about this theory is 《Chemical and biological properties of 2,3,5-trichloro-4-pyri- dinol》. Authors are Huraux, M. J.; Lawson, H. M..The article about the compound:2,3,5-Trichloropyridin-4-olcas:1970-40-7,SMILESS:OC1=C(Cl)C(Cl)=NC=C1Cl).Reference of 2,3,5-Trichloropyridin-4-ol. Through the article, more information about this compound (cas:1970-40-7) is conveyed.

2,3,5-Trichloro-4-pyridinol is a white solid with m.p. 216°. Its solubility in water is 0.057, in acetone 4, benzene 0.071, EtOH (95%) 4.21, xylene 0.3, and NaOH (1%) 5.35 g./100 g, at 23°. Its vapor pressure at 26° is 5.5 × 10-6mm. Hg, and its oral L.D.50 to rats is 80 mg./kg. The material is practically a non-irritant. It is readily taken up by both roots and foliage and translocated. The moderately long residual effect and activity against both annual and perennial grasses and seedlings of most broad-leaved species makes 2,3,5-trichloro-4-pyridinol (2.5-30 lb.) very suitable for total control of vegetation. Rates of <2 lb. applied in agricultural situations show little or no carry-over after 1 year. In logarithmic trials in Michigan, a rate of 6 lb. in mid-May (or in early July after mowing and removing the clip-pings) completely killed established Dactylis glomerata and Bromus inermis which were growing vigorously. Four lb. killed Agropyron repens. In Pennsylvania, rates of 10 lb. + picloram at 1 lb. applied as foliar sprays in early June provided excellent control of grasses and broadleaved weeds for up to 1 year. Even lower rates were effective against Cirsium arvense and other broad-leaved perennials, grasses on a railway embankment in England in May, and at an industrial site in July. In addition to these non-crop situations, 2,3,5-trichloro-4-pyridinol at 0.75-1 lb. pre-emergence and as post-emergence directed sprays at 0.5-2 lb. shows promise in sugar cane. When used in conjunction with a defoliant, it is also an outstanding inhibitor of cotton regrowth. After consulting a lot of data, we found that this compound(1970-40-7)Reference of 2,3,5-Trichloropyridin-4-ol can be used in many types of reactions. And in most cases, this compound has more advantages.

Reference:
Isoquinoline – Wikipedia,
Isoquinoline | C9H7N – PubChem