Structure of 873-76-7
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CAS No. : | 873-76-7 |
Formula : | C7H7ClO |
M.W : | 142.58 |
SMILES Code : | OCC1=CC=C(Cl)C=C1 |
MDL No. : | MFCD00004652 |
InChI Key : | PTHGDVCPCZKZKR-UHFFFAOYSA-N |
Pubchem ID : | 13397 |
GHS Pictogram: |
![]() |
Signal Word: | Warning |
Hazard Statements: | H315-H319-H335 |
Precautionary Statements: | P261-P305+P351+P338 |
Num. heavy atoms | 9 |
Num. arom. heavy atoms | 6 |
Fraction Csp3 | 0.14 |
Num. rotatable bonds | 1 |
Num. H-bond acceptors | 1.0 |
Num. H-bond donors | 1.0 |
Molar Refractivity | 37.58 |
TPSA ? Topological Polar Surface Area: Calculated from |
20.23 ?2 |
Log Po/w (iLOGP)? iLOGP: in-house physics-based method implemented from |
1.92 |
Log Po/w (XLOGP3)? XLOGP3: Atomistic and knowledge-based method calculated by |
1.96 |
Log Po/w (WLOGP)? WLOGP: Atomistic method implemented from |
1.68 |
Log Po/w (MLOGP)? MLOGP: Topological method implemented from |
2.14 |
Log Po/w (SILICOS-IT)? SILICOS-IT: Hybrid fragmental/topological method calculated by |
2.33 |
Consensus Log Po/w? Consensus Log Po/w: Average of all five predictions |
2.01 |
Log S (ESOL):? ESOL: Topological method implemented from |
-2.39 |
Solubility | 0.586 mg/ml ; 0.00411 mol/l |
Class? Solubility class: Log S scale |
Soluble |
Log S (Ali)? Ali: Topological method implemented from |
-2.01 |
Solubility | 1.39 mg/ml ; 0.00977 mol/l |
Class? Solubility class: Log S scale |
Soluble |
Log S (SILICOS-IT)? SILICOS-IT: Fragmental method calculated by |
-2.82 |
Solubility | 0.217 mg/ml ; 0.00152 mol/l |
Class? Solubility class: Log S scale |
Soluble |
GI absorption? Gatrointestinal absorption: according to the white of the BOILED-Egg |
High |
BBB permeant? BBB permeation: according to the yolk of the BOILED-Egg |
Yes |
P-gp substrate? P-glycoprotein substrate: SVM model built on 1033 molecules (training set) |
No |
CYP1A2 inhibitor? Cytochrome P450 1A2 inhibitor: SVM model built on 9145 molecules (training set) |
Yes |
CYP2C19 inhibitor? Cytochrome P450 2C19 inhibitor: SVM model built on 9272 molecules (training set) |
No |
CYP2C9 inhibitor? Cytochrome P450 2C9 inhibitor: SVM model built on 5940 molecules (training set) |
No |
CYP2D6 inhibitor? Cytochrome P450 2D6 inhibitor: SVM model built on 3664 molecules (training set) |
No |
CYP3A4 inhibitor? Cytochrome P450 3A4 inhibitor: SVM model built on 7518 molecules (training set) |
No |
Log Kp (skin permeation)? Skin permeation: QSPR model implemented from |
-5.78 cm/s |
Lipinski? Lipinski (Pfizer) filter: implemented from |
0.0 |
Ghose? Ghose filter: implemented from |
None |
Veber? Veber (GSK) filter: implemented from |
0.0 |
Egan? Egan (Pharmacia) filter: implemented from |
0.0 |
Muegge? Muegge (Bayer) filter: implemented from |
2.0 |
Bioavailability Score? Abbott Bioavailability Score: Probability of F > 10% in rat |
0.55 |
PAINS? Pan Assay Interference Structures: implemented from |
0.0 alert |
Brenk? Structural Alert: implemented from |
0.0 alert: heavy_metal |
Leadlikeness? Leadlikeness: implemented from |
No; 1 violation:MW<1.0 |
Synthetic accessibility? Synthetic accessibility score: from 1 (very easy) to 10 (very difficult) |
1.0 |
* All experimental methods are cited from the reference, please refer to the original source for details. We do not guarantee the accuracy of the content in the reference.
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
96% | With ammonium hydroxide; hydrogen bromide; dimethyl sulfoxide In water at 75℃; for 2.53333 h; | General procedure: A mixture of HBr (48percent aq., 1 mmol) in DMSO (1 mL) was stirred for 2 min at 75 °C. Then, benzylic alcohol (1 mmol), alkyl acetoacetate (2 mmol), and ammonium hydroxide (1.5 mmol) were added to the reaction mixture and stirring was continued at 75 °C for 2.5 h. The completion of reaction was followed by TLC. After the reaction was complete, the reaction mixture was cooled to ambient temperature, quenched by addition of water (2 mL), and stirring was continued for 10 min at ambient temperature. The resulting precipitate was filtered, washed with water, dried, and recrystallized from ethanol to afford the pure product 4. |
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
97% | With tetrabutylammonium bromide; In N,N-dimethyl-formamide; at 80℃; for 1.5h; | General procedure: A mixture of alcohol (1 mmol), 1,2-phenylenediamine or 2-aminothiophenol(1 mmol), Pd(II)Cl2-BTPMNPs (0.019 g, containing 0.09mol% Pd) and (1 mmol) tetrabutylammonium bromide (TBAB, 0.01 g)in DMF (5 mL) in a round-bottomed flask equipped with a condenser wasstirred at 80 C. The progress of the reaction was monitored by TLC(eluent: n-Hexane/EtOAc, 4: 1 for benzimidazoles and n-Hexane/EtOAc, 6: 1 for benzothiazoles). The catalyst was separated by permanentmagnet and washed with EtOAc (10 mL). The crude product waspurified by recrystallization from EtOAc or EtOH to afford the purebenzimidazole. The benzothiazoles was obtained by recrystallizationfrom n-hexane/EtOAc (10: 1). |
96% | With copper(II) bis(2,4-pentanedionate); In dimethyl sulfoxide; at 20℃; for 6h; | Add o-phenylenediamine (1.0 mmol), 4-chlorobenzyl alcohol (1.2 mmol), Cu (acac) 2 (0.02 mmol) in sequence to the reaction tube, and then add 2 mL of DMSOThe reaction was carried out at room temperature for 6 hours. After the reaction was completed, the reaction solution was concentrated.The corresponding product was obtained by column chromatography and the separation yield was 96%. |
87% | With C41H36AsClN3OPRuS; potassium hydroxide; In toluene; at 100℃; for 12h; | General procedure: Diamine (1mmol), alcohol (2mmol), catalyst (1mol %), KOH (50mol %) and toluene (2mL) were placed in a 25mL round bottomed flask and stirred on a preheated oil bath (100C) for 12h. Upon completion (as monitored by TLC), the reaction mixture was cooled at ambient temperature, H2O (3mL) was added and the organic layer was extracted with ethyl acetate. The organic extract was separated, dried, and concentrated. The desired product was purified by column chromatography with CH2Cl2/EtOAc as eluent. |
86% | With C79H98Cl3IrN4P2Ru; potassium hydroxide; In 1,4-dioxane; at 110℃; for 18h;Inert atmosphere; Schlenk technique; | 2 - chlorophenyl -1HSynthesis of benzimidazole -: in an inert gas (such as high-pure nitrogen) under the protection, to 10 ml of the reaction tubes to join Schlek 0.02mmol ruthenium iridiumdifferent nuclear ring metal compound 15, 1.0mmol O-phenylendiamine, 1.9mmol to the chlorine animal pen is mellow, 0.2mmol potassium hydroxide and 3 ml of dioxane, replace the nitrogen reaction tube 3 times, then in the oil bath for magnetic stirring under heating to 110 C, reaction reflux 18 hours. To remove the oil bath, water bath to room temperature; to responds fluid Canada 3 ml water, for 5 ml of dichloromethane extraction three times, and the combined organic phase with anhydrous MgSO4Drying 30 minutes, filtered; the filtrate using a rotary evaporator concentrated, petroleum ether/ethyl acetate to residual liquid as developing agent, silica gel thin layer chromatography separation, to obtain the pure product 2 - chlorophenyl -1H- Benzimidazole, yield 86% |
86% | In acetonitrile;Irradiation; Inert atmosphere; | The photocatalytic synthesis of benzimidazole was investigaded by using Co-TiO2 catalyst under solar light irradiation. In a typical experiment, orthophenylene diamine (0.226g, 1.66mmol) was dissolved (5ml solution of benzyl alcohol (0.213g, 1.75mmol) in acetonitrile (5ml), and 50mg of photocatalyst was added to 100ml quartz photo reactor. Prior to photoirradiation, the suspensions were magnetically stirred while the reactor was purged with nitrogen gas for 20min to generate inert atmosphere in the photo reactor. The photocatalytic reaction was carried out under solar light irradiation and the reaction mixture was magnetically stirred during the entire period (8h) of experiment. The progress of the reaction was monitored with TLC. After completion of the reaction, the photocatalyst was separated by centrifugation. The mixture was treated with ethyl acetate and then concentrated in vacuo. The residue was purified by silica-gel column chromatography with ethyl acetate/hexane (1:4) to afford the product. |
85% | With Fe2(SO4)3; 2,2,6,6-Tetramethyl-1-piperidinyloxy free radical; In neat (no solvent); at 110℃; for 24h;Green chemistry; | General procedure: A mixture of 6 mmol of the alcohol or the amine and5 mmol o-phenylenediamine, o-aminophenol or o-aminothiophenol,10 mol % Fe2(SO4)3, 10 mol % TEMPO wasprepared in a 10 ml three-necked flask, and then stirred inopen air at 110 C for several hours, The reaction progresswas monitored by TLC. When the final reaction mixturecooled to room temperature, the crude products was directlypurified by column chromatography on silica gel using hexane/ethyl acetate (7:3) as eluent to afford the pure product. |
85% | With anhydrous sodium carbonate; In neat (no solvent); at 120℃;Green chemistry; | General procedure: Typically, o-phenylenediamine (1.3 mmol) or 2-aminothiophenol (1 mmol), benzyl alcohols (1 mmol), Na2CO3 (20 mol%), and Pd-NPs/Cu2(BDC)2(DABCO) (20 mg, 0.01 mol%) were added to a round-bottom flask. The reaction mixture was heated to 120 Cand stirred at for the appropriate time in air (TLC monitoring). Ethyl acetate was added to the reaction mixture and catalyst was filtered. For the purification of impure products, chromatography on silica gel was performed (EtOAc:Hep. (1:6)). The entire products characterized by melting point, CHN, 1H-NMR and13C-NMR spectroscopy. |
82% | In neat (no solvent); at 135℃; for 24h;Green chemistry; | General procedure: Reactions were performed in a magnetically stirred round bottomed flask fitted with acondenser and placed in a temperature controlled oil bath. 1,2-Diamine (2 mmol)was added to alcohol (3 mmol) and the reaction mixture was allowed to stir at 135C in an open (air) atmosphere. After disappearance of the diamine (reaction was monitored by TLC)or after the appropriate time, the reaction mixture was cooled to roomtemperature. The crude residue was further purified by column chromatography using silica gel (100-200 mesh) to afford pure products. All the products wereidentified on the basis of NMR and mass spectral data |
80% | With N-hydroxyphthalimide; at 70℃; for 3h; | General procedure: To a mixture of benzyl alcohol (1.2mmol), 1,2-phenylenediamine(1mmol) and NHPI (5mol%) in a glass test tube(10cm tall × 1cm diameter) was added TiO2/AA/Co nanocatalyst(0.06mol%) and the reaction mixture was heatedat 70C under air, visible light and solvent free conditions.The reaction progress was monitored by TLC. After 3h,ethanol (5mL) was added to the mixture and then TiO2/AA/Co nanocatalyst (solid phase) was separated by centrifugingfollowed by decantation (3 × 5mL ethanol). Desired product(liquid phase) was extracted by plate chromatography elutedwith n-hexane/EtOAc (10/2). Assignments of products weremade by 1H NMR spectral data in comparison with authenticsamples. |
80% | With copper(II)-manganese(II) bimetallic complex immobilized on magnetite nanoparticles; air; In neat (no solvent); at 70℃; for 2h;Green chemistry; | General procedure: The one-pot synthesis of benzimidazole carried out in around-bottom flask with benzyl alcohol (1.2mmol) and ortho phenylenediamine (1.0mmol) using Fe3O4Cu-Mn catalyst (0.008g, 0.280mol% Cu, 0.078mol% Mn), under solvent-free and aerobic conditions at 70C. The reaction mixture was monitored with TLC. Upon reaction completion, the catalyst was magnetically separated, then the product was extracted to dichloromethane (3 × 5mL).The organic layers were combined, dried over Na2SO4 and purified by silica-gel column chromatography (n-hexane:EtOAc = 10: 5). |
73% | With 3-nitropyridine; sodium tertiary butoxide; In dimethyl sulfoxide; at 110℃; for 16h; | General procedure: A 25 mL RB was charged with a mixture of 2-aminophenols 1a-h (1.0 mmol) or 1-amino-2-naphthol 4a (1.0 mmol) or 2-aminothiophenol 6a (1.0 mmol) or o-phenylenediamine 7a (1.0 mmol) and benzyl alcohols 2a-e, g-j or cinnamyl alcohol 2f (1.0 mmol) along with 3-nitropyridine (0.1 mmol, 12.4 mg), NaOtBu (1.0 mmol, 96 mg) and DMSO (2 mL). The RB was loosely fitted with septum and then heated at 110 C for 16 h. After completion of the reaction, the mixture was diluted with hot ethyl acetate (20 mL) and water (40 mL) and extracted with ethyl acetate (3 10 mL). The combined organic layer was washed with brine (2 10 mL) and dried over anhydrous Na2SO4. Solvent was removed under reduced pressure and the remaining residue was purified by flash chromatography over silica gel using hexane / ethyl acetate = 9:1 (v/v) as an eluent to obtain the desired products benzoxazoles 3a-v, naphthoxazoles 5a-f, benzothiazoles 8a-f and benzimidazoles 9a-c in high yields. |
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
96% | With (1,1'-bis(diphenylphosphino)ferrocene)palladium(II) dichloride; In toluene; at 160℃; for 24h;Schlenk technique; Inert atmosphere; Sealed tube; | General procedure: GeneralProcedure for the preparation of 2-Phenyl-1H-benzoimidazole (3aa): A 25mL over-dried Schlenk tube was charged with 2-nitroaniline (41.4 mg, 0.3 mmol),benzyl alcohol (97.2 mg, 0.90 mmol) and Pd(dppf)Cl2 (12.2 mg, 0.015mmol). The tube was purged with nitrogen three times. Toluene (1 mL) was addedto the sealed reaction vessel by syringe. The reaction mixture was stirred in apreheated oil bath at 160 oC for 24 h. After cooling to roomtemperature, the reaction mixture was then concentrated in vacuo, and theresidue was purified by column chromatography (silica gel, petroleumether/ ethyl acetate = 4:1) to give 3aa as a pale yellow solid (56.5 mg, 97%). |
90% | With sodium sulfide hydrate; iron(III) chloride hexahydrate; at 140℃; for 24h;Inert atmosphere; | General procedure: A 20-mL test-tube equipped with a magnetic stirring bar was charged with o-nitroaniline 1 (2.5 mmol, 1 equiv), alcohol 2 or 5 (3 mmol, 1.2equiv), Na2S·nH2O (≥60%, 130 mg, 1 mmol, 40 mol%) and FeCl3·6H2O(7 mg, 0.025 mmol, 1 mol%). The resulting mixture was stirred for 24h under an argon atmosphere at the indicated temperature (see Schemes 2 and 3 and Table 2). After cooling to r.t., the mixture was purified in different ways. (i) For NH benzimidazole products, the mixture was washed with CH2Cl2 (3 × 2 mL) then dissolved in MeOH.The MeOH solution was filtered through a short pad of silica gel. The filtrate was concentrated in vacuo to afford the NH benzimidazole product. Further purification by column or recrystallization was carried out if necessary. (ii) For N-methyl-2-phenylbenzimidazole 3ha and quinoxalines 5, the crude mixture was dissolved in a minimum volume of CH2Cl2 and purified by column chromatography (silica gel or alumina, heptane-EtOAc, EtOAc, EtOAc-MeOH, hexane-Et2O). We noted that some 13C NMR signals of NH-benzimidazoles are missing or difficult to observe. |
75% | With 1,1'-bis-(diphenylphosphino)ferrocene; In toluene; at 150℃; for 24h;Inert atmosphere; Sealed tube; | General procedure: The preparation of 2-phenyl-1H-benzoimidazole (3a): A 15 mL capped tube was charged with 2-nitroaniline (0.36 mmol), benzyl alcohol (0.094 mL, 0.90 mmol) and dppf (0.018 mmol). The tube was flushed with argon for 10 min. Then the degassed toluene (3 mL) was added. The tube was flushed with argon, capped, and heated at 150 C for 24 h. After cooling to room temperature, the reaction mixture was then concentrated in vacuo, and the residue was purified by column chromatography (silica gel, petroleum ether/ethyl acetate = 4:1) to afford the pure 3a as a white solid. The product was identified by NMR and MS and the data are identical to the reported values. |
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
90% | With lithium perchlorate; In acetonitrile; at 20℃;Electrochemical reaction; | General procedure: A 40 cm3 acetonitrile solution of alcohols 1a-1i(1 mmol) in LiClO4 (0.05 g) was electrolyzed at the2.0 V versus SCE. After completion of the electro-oxidationof alcohols to their corresponding aldehydes,indoles 2a, 2b (2 mmol) were added and electrolyzed at-0.9 V versus SCE. In the two mentioned stages, electrosynthesisreactions were done in an undivided cellequipped with graphite rods as the cathode and Pt-anodeat room temperature. The electrolysis was terminatedwhen the current decreased by more than 95 %. Amagnetic stirrer was employed during the electrolysis.The process was interrupted several times during theelectrolysis and the graphite rod was washed in acetonein order to reactivate it. After completion of the electrocondensation,the solvent was evaporated and theresulting crude product was purified by preparative thinlayerchromatography on silica gel (eluent: n-hexane-EtOAc, 4:1) to afford 3,30-di(indolyl)methanes 3a-3k.All the products were characterized by comparison oftheir melting points and also spectroscopic data (IR, 1HNMR and mass spectra) with those of the authenticsamples in literature |
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
95.4% | With ammonium cerium (IV) nitrate; bis(tricyclohexylphosphine)nickel(II) dichloride; 2,2-bis(hydroxymethyl)propionic acid; strontium nitrate; cadmium(II) acetate; In ethylene glycol; at 70℃; for 8h;Inert atmosphere; | Under room temperature, the nitrogen atmosphere, to the proper amount of organic solvent glycol, by adding 100mmol compounds represented by the following general formula (I) compound, 150mmol aboving (II) compound, 12mmol catalyst NiCl 2 (PCy 3) 2, 200mmol oxidant ammonium ceric nitrate, 175mmol alkali DMPA and 15mmol promoter (for 3mmol cadmium acetate and 12mmol strontium nitrate of mixture), then heating to 70 °C, and at this temperature the stirring reaction 8 hours; After the reaction, the reaction solution is filtered, adjusted to neutral pH value of the filtrate, saturated salt water is then used to fully wash, then adding ethyl acetate extraction 2-3 time, combined with the phase, drying anhydrous sodium sulfate, concentrated under reduced pressure, the resulting residue over silica gel column chromatography, so as to the acetone and volume ratio of the mixed solution of petroleum ether eluviation, so as to obtain the compound of formula (III), the yield is 95.4percent. |
Yield | Reaction Conditions | Operation in experiment |
---|---|---|
87% | With dipotassium peroxodisulfate; In acetone; at 20℃; | (1) 4-Chlorobenzyl alcohol (0.114 g, 0.8 mmol) was added to the reaction flask,(4-methoxyphenyl) phosphine oxide (0.314 g, 1.2 mmol)Potassium persulfate (0.648 g, 2.4 mmol) and acetone (2 mL)Room temperature reaction; (2) TLC tracking reaction until complete; (3) The crude product obtained after the completion of the reaction was separated by column chromatography (dichloromethane: methanol = 40: 1) to give the desired product(Yield 87%). |
Tags: 873-76-7 synthesis path| 873-76-7 SDS| 873-76-7 COA| 873-76-7 purity| 873-76-7 application| 873-76-7 NMR| 873-76-7 COA| 873-76-7 structure
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P307 + P311 | IF exposed: call a POISON CENTER or doctor/physician. |
P308 + P313 | IF exposed or concerned: Get medical advice/attention. |
P309 + P311 | IF exposed or if you feel unwell: call a POISON CENTER or doctor/physician. |
P332 + P313 | IF SKIN irritation occurs: Get medical advice/attention. |
P333 + P313 | IF SKIN irritation or rash occurs: Get medical advice/attention. |
P335 + P334 | Brush off loose particles from skin. Immerse in cool water/wrap in wet bandages. |
P337 + P313 | IF eye irritation persists: Get medical advice/attention. |
P342 + P311 | IF experiencing respiratory symptoms: call a POISON CENTER or doctor/physician. |
P370 + P376 | In case of fire: Stop leak if safe to Do so. |
P370 + P378 | In case of fire: |
P370 + P380 | In case of fire: Evacuate area. |
P370 + P380 + P375 | In case of fire: Evacuate area. Fight fire remotely due to the risk of explosion. |
P371 + P380 + P375 | In case of major fire and large quantities: Evacuate area. Fight fire remotely due to the risk of explosion. |
Storage | |
Code | Phrase |
P401 | |
P402 | Store in a dry place. |
P403 | Store in a well-ventilated place. |
P404 | Store in a closed container. |
P405 | Store locked up. |
P406 | Store in corrosive resistant/ container with a resistant inner liner. |
P407 | Maintain air gap between stacks/pallets. |
P410 | Protect from sunlight. |
P411 | |
P412 | Do not expose to temperatures exceeding 50 oC/ 122 oF. |
P413 | |
P420 | Store away from other materials. |
P422 | |
P402 + P404 | Store in a dry place. Store in a closed container. |
P403 + P233 | Store in a well-ventilated place. Keep container tightly closed. |
P403 + P235 | Store in a well-ventilated place. Keep cool. |
P410 + P403 | Protect from sunlight. Store in a well-ventilated place. |
P410 + P412 | Protect from sunlight. Do not expose to temperatures exceeding 50 oC/122oF. |
P411 + P235 | Keep cool. |
Disposal | |
Code | Phrase |
P501 | Dispose of contents/container to ... |
P502 | Refer to manufacturer/supplier for information on recovery/recycling |
Physical hazards | |
Code | Phrase |
H200 | Unstable explosive |
H201 | Explosive; mass explosion hazard |
H202 | Explosive; severe projection hazard |
H203 | Explosive; fire, blast or projection hazard |
H204 | Fire or projection hazard |
H205 | May mass explode in fire |
H220 | Extremely flammable gas |
H221 | Flammable gas |
H222 | Extremely flammable aerosol |
H223 | Flammable aerosol |
H224 | Extremely flammable liquid and vapour |
H225 | Highly flammable liquid and vapour |
H226 | Flammable liquid and vapour |
H227 | Combustible liquid |
H228 | Flammable solid |
H229 | Pressurized container: may burst if heated |
H230 | May react explosively even in the absence of air |
H231 | May react explosively even in the absence of air at elevated pressure and/or temperature |
H240 | Heating may cause an explosion |
H241 | Heating may cause a fire or explosion |
H242 | Heating may cause a fire |
H250 | Catches fire spontaneously if exposed to air |
H251 | Self-heating; may catch fire |
H252 | Self-heating in large quantities; may catch fire |
H260 | In contact with water releases flammable gases which may ignite spontaneously |
H261 | In contact with water releases flammable gas |
H270 | May cause or intensify fire; oxidizer |
H271 | May cause fire or explosion; strong oxidizer |
H272 | May intensify fire; oxidizer |
H280 | Contains gas under pressure; may explode if heated |
H281 | Contains refrigerated gas; may cause cryogenic burns or injury |
H290 | May be corrosive to metals |
Health hazards | |
Code | Phrase |
H300 | Fatal if swallowed |
H301 | Toxic if swallowed |
H302 | Harmful if swallowed |
H303 | May be harmful if swallowed |
H304 | May be fatal if swallowed and enters airways |
H305 | May be harmful if swallowed and enters airways |
H310 | Fatal in contact with skin |
H311 | Toxic in contact with skin |
H312 | Harmful in contact with skin |
H313 | May be harmful in contact with skin |
H314 | Causes severe skin burns and eye damage |
H315 | Causes skin irritation |
H316 | Causes mild skin irritation |
H317 | May cause an allergic skin reaction |
H318 | Causes serious eye damage |
H319 | Causes serious eye irritation |
H320 | Causes eye irritation |
H330 | Fatal if inhaled |
H331 | Toxic if inhaled |
H332 | Harmful if inhaled |
H333 | May be harmful if inhaled |
H334 | May cause allergy or asthma symptoms or breathing difficulties if inhaled |
H335 | May cause respiratory irritation |
H336 | May cause drowsiness or dizziness |
H340 | May cause genetic defects |
H341 | Suspected of causing genetic defects |
H350 | May cause cancer |
H351 | Suspected of causing cancer |
H360 | May damage fertility or the unborn child |
H361 | Suspected of damaging fertility or the unborn child |
H361d | Suspected of damaging the unborn child |
H362 | May cause harm to breast-fed children |
H370 | Causes damage to organs |
H371 | May cause damage to organs |
H372 | Causes damage to organs through prolonged or repeated exposure |
H373 | May cause damage to organs through prolonged or repeated exposure |
Environmental hazards | |
Code | Phrase |
H400 | Very toxic to aquatic life |
H401 | Toxic to aquatic life |
H402 | Harmful to aquatic life |
H410 | Very toxic to aquatic life with long-lasting effects |
H411 | Toxic to aquatic life with long-lasting effects |
H412 | Harmful to aquatic life with long-lasting effects |
H413 | May cause long-lasting harmful effects to aquatic life |
H420 | Harms public health and the environment by destroying ozone in the upper atmosphere |
Sorry,this product has been discontinued.
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