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Home > Encyclopedia > 9,10-Dimethylanthracene

9,10-Dimethylanthracene

9,10-Dimethylanthracene structure

9,10-Dimethylanthracene 

structure
  • CAS No:

    781-43-1

  • Formula:

    C16H14

  • Chemical Name:

    9,10-Dimethylanthracene

  • Synonyms:

    Anthracene,9,10-dimethyl-;9,10-Dimethylanthracene;NSC 4220

  • Categories:

    Chemical Reagents  >  Organic Reagents

Description

yellow crystals or crystalline powder

9,10-Dimethylanthracene Basic Attributes

206.28

206.28

1909028

212-308-4

DI986077VR

4220

DTXSID8073928

Crystals from ethanol

2902909090

Characteristics

0

5.69

Yellow Crystals or Crystalline Powder

1.084g/cm3

4-182 °C

360-362 °C @ Press: 760 Torr

169.1ºC

1.676

soluble in toluene. Insoluble in water.

Keep container tightly closed in a dry and well-ventilated place.

3.02X10-6 mm Hg at 25 deg C (est)

Henry's Law constant = 2.94X10-5 atm-cu m/mol at 25 °C (est)

Questionable carcinogen with experimental carcinogenic and tumorigenic data|UV: 6579 (Sadtler Research Laboratories Spectral Collection) /1,3-Dimethylanthracene/|UV: 6574 (Sadtler Research Laboratories Spectral Collection) /2,3-Dimethylanthracene/

Safety Information

NONH for all modes of transport

3

20/21-42/43

36/39

CA9685000

Xn

Stable under recommended storage conditions.

P261-P280-P342 + P311

H312-H317-H332-H334

SRP: Recycle any unused portion of the material for its approved use or return it to the manufacturer or supplier. Ultimate disposal of the chemical must consider: the material's impact on air quality; potential migration in air, soil or water; effects on animal, aquatic and plant life; and conformance with environmental and public health regulations. If it is possible or reasonable use an alternative chemical product with less inherent propensity for occupational harm/injury/toxicity or environmental contamination.|SRP: Wastewater from contaminant suppression, cleaning of protective clothing/equipment, or contaminated sites should be contained and evaluated for subject chemical or decomposition product concentrations. Concentrations shall be lower than applicable environmental discharge or disposal criteria. Alternatively, pretreatment and/or discharge to a permitted wastewater treatment facility is acceptable only after review by the governing authority and assurance that "pass through" violations will not occur. Due consideration shall be given to remediation worker exposure (inhalation, dermal and ingestion) as well as fate during treatment, transfer and disposal. If it is not practicable to manage the chemical in this fashion, it must be evaluated in accordance with EPA 40 CFR Part 261, specifically Subpart B, in order to determine the appropriate local, state and federal requirements for disposal.|Product: Offer surplus and non-recyclable solutions to a licensed disposal company. Contaminated packaging: Dispose of as unused product.

Strong oxidizers.

USEPA; Ambient Water Quality Criteria Doc: Polynuclear Aromatic Hydrocarbons (Draft) (1980)|Health and Welfare Canada; Polycyclic Aromatic Hydrocarbons Rept No 80-EHD-50 (1979)

|Danger|H312 (82.61%): Harmful in contact with skin [Warning Acute toxicity, dermal]|P201, P202, P261, P271, P272, P280, P281, P285, P302+P352, P304+P312, P304+P340, P304+P341, P308+P313, P312, P321, P322, P333+P313, P342+P311, P363, P405, and P501|Aggregated GHS information provided by 46 companies from 4 notifications to the ECHA C&L Inventory. Each notification may be associated with multiple companies.|H312: Harmful in contact with skin [Warning Acute toxicity, dermal]|P261, P271, P272, P280, P285, P302+P352, P304+P312, P304+P340, P304+P341, P312, P321, P322, P333+P313, P342+P311, P363, and P501

Respirator Recommendations: At concentrations above the NIOSH REL, or where there is no REL, at any detectable concentration: /Coal tar pitch volatiles/[Table#4919]|Respirator Recommendations: Escape conditions: /Coal tar pitch volatiles/[Table#4920]|Eye/face protection: Safety glasses with side-shields conforming to EN166. Use equipment for eye protection tested and approved under appropriate government standards such as NIOSH (US) or EN 166(EU).|Skin protection: Handle with gloves.|For more Personal Protective Equipment (PPE) (Complete) data for 9,10-Dimethylanthracene (6 total), please visit the HSDB record page.

Suitable extinguishing media: Use water spray, alcohol-resistant foam, dry chemical or carbon dioxide.|Advice for firefighters: Wear self-contained breathing apparatus for firefighting if necessary.

ACCIDENTAL RELEASE MEASURES: Personal precautions, protective equipment and emergency procedures: Use personal protective equipment. Avoid dust formation. Avoid breathing vapors, mist or gas. Ensure adequate ventilation. Evacuate personnel to safe areas. Avoid breathing dust. Environmental precautions: Do not let product enter drains. Methods and materials for containment and cleaning up: Pick up and arrange disposal without creating dust. Sweep up and shovel. Keep in suitable, closed containers for disposal.

The worker should wash daily at the end of each work shift, and prior to eating, drinking, smoking, etc. /Coal tar pitch volatiles/|Workers whose clothing may have become contaminated should change into uncontaminated clothing before leaving the work premises. /Coal tar pitch volatiles/|ACCIDENTAL RELEASE MEASURES: Personal precautions, protective equipment and emergency procedures: Use personal protective equipment. Avoid dust formation. Avoid breathing vapours, mist or gas. Ensure adequate ventilation. Evacuate personnel to safe areas. Avoid breathing dust. Environmental precautions: Do not let product enter drains.|Precautions for safe handling: Avoid contact with skin and eyes. Avoid formation of dust and aerosols. Provide appropriate exhaust ventilation at places where dust is formed. Normal measures for preventive fire protection.|For more Preventive Measures (Complete) data for 9,10-Dimethylanthracene (8 total), please visit the HSDB record page.

Permissible Exposure Limit: Table Z-1 8-hr Time Weighted Avg: 0.2 mg/cu m. /Coal tar pitch volatiles (benzene soluble fraction), anthracene, BaP, phenanthrene, acridine, chrysene, pyrene/

Recommended Exposure Limit: 10 Hr Time-Weighted Avg: 0.1 mg/cu m (cyclohexane-extractable fraction). /Coal tar pitch volatiles/|NIOSH considers coal tar pitch volatiles to be potential occupational carcinogens. NIOSH usually recommends that occupational exposures to carcinogens be limited to the lowest feasible concentration. /Coal tar pitch volatiles/

9,10-Dimethylanthracene was tested for but not detected in air samples influenced by aircraft exhaust from C-130H aircraft at the Savannah Air National Guard base, Savannah GA(1). 9,10-Dimethylanthracene emissions of 0.119 and 0.289 mg/g polystyrene were reported in particulate and gaseous emissions, respectively, from polystyrene combustion(2).|Using a bench scale reactor, 9,10-dimethylanthracene was identified as a pyrolysis product of shredded and ground Dunlop scrap tires burned in a furnace at 850 °C. The yield of 9,10-dimethylanthracene decreased as the bulk air ratio increased(1).[Table#4918]

SEDIMENT: 9,10-Dimethylanthracene was tested for but not detected in sediments from the lower Back River estuary in the Baltimore Harbor area on the Chesapeake Bay, sampled in June 1996(1). 9,10-Dimethylanthracene concentrations of <0.01 (0-5 cm depth) to <0.09 (65-70 cm depth) ng/g dry wt were reported in marine sediments near Kitimat Arm, Douglas Channel, British Columbia, Canada, an area containing an aluminum smelter, a pulp mill and a methanol-producing plant(2).|SEDIMENT: Composition and distribution of 9,10-dimethylanthracene in the surface sediments from the Susquehanna River Basin at the mouth of the Chesapeake Bay, sampled in September 2000(1).[Table#4921]

URBAN/SUBURBAN: 9,10-Dimethylanthracene was present at 0.7, 0.16 and 0.03 ng/cu m in air samples taken at Baltimore (urban), Hart Miller Island (rural; 18km NE) and from the USCG Station at Stillpond (over water; 23km further NE), respectively, on the northern Chesapeake Bay, sampled in June, 1996(1). 9,10-Dimethylanthracene mean concentrations were 0.01 and <0.012 ng/cu m in summer 2000 and winter 2001, respectively, outside of homes tested in Shimizu, Japan(2).|INDOOR: 9,10-Dimethylanthracene mean concentrations were 0.01 and 0.0082 ng/cu m in summer 2000 and winter 2001, respectively, inside of homes tested in Shimizu, Japan(1).|SOURCE DOMINATED: Air samples collected from Kokkola, Finland, a small industrial town, were analyzed for 9,10-dimethylanthracene. The air samples contained a number of different polycyclic aromatic hydrocarbons, but not 9,10-dimethylanthracene, detection limit 0.1 ng/cu m(1). 9,10-Dimethylanthracene was tested for but not detected in air particulate matter from over the lower Back River estuary in the Baltimore Harbor area on the Chesapeake Bay, sampled in June 1996(2).

9,10-Dimethlanthracene is present in tobacco smoke(1).

Toxicity

IDENTIFICATION AND USE: 9-10-Dimethylanthracene (9,10-DMA) is a solid polycyclic hydrocarbon. HUMAN EXPOSURE AND TOXICITY: There are no data available. ANIMAL STUDIES: 9,10-DMA was not mutagenic in the recessive lethal assay. 9,10-Dimethylanthracene showed a rather weak genotoxicity in Drosophila melanogaster studies. The fraction of all genotoxic events which are due to mitotic recombination was 83%. ECOTOXICITY STUDIES: 9,10-DMA suppressed cell proliferation of the freshwater species of fish, Lepomis macrochirus (bluegill).

/AQUATIC SPECIES/ Polycyclic aromatic hydrocarbons (PAH) have been demonstrated to affect immune system modulation. The freshwater species of fish, Lepomis macrochirus (bluegill), was employed to investigate the effects of a 14-day dietary exposure to PAH including 2-aminoanthracene (2-AA), 2-methylnaphthalene (2-MN), and 9,10-dimethylanthracene (9,10-DMA) and a mixture of these 3 compounds at a total dose of 3.1 +/- 0.01 mg on lymphocyte proliferation stimulated with 3 mitogens (concanavalin A [Con A], phorbol ester, and calcium ionophore). 2-Aminoanthracene was mitogenic itself and with added mitogens. 2-Methylnaphthalene induced some stimulatory and some inhibitory effects upon cell proliferation by Con A. 9,10-DMA and the mixture each suppressed cell proliferation. The mixture was highly suppressive to lymphocytes. Intracellular baseline calcium levels were reduced, possibly as a step prior to cell death. All PAH compounds tested were immunomodulatory to bluegill lymphocytes. Bluegill were demonstrated to have utility as a biomarker species for investigation of immunotoxicity.

9,10-Dimethylanthracene is one of many polycyclic aromatic hydrocarbons (PAH), a group of chemicals that are formed during the incomplete burning of coal, oil, gas, wood, garbage, or other organic substances(1,2). PAHs generally occur as complex mixtures, for example as part of combustion products such as soot, not as single compounds. PAHs occur naturally in volcanoes and forest fires. They can also be found in substances such as crude oil and coal. They are found throughout the environment in the air, water, and soil(1). Many PAHs found in the environment are formed during pyrolysis and incomplete combustion of organic matter at high temperatures(2). /Polycyclic aromatic hydrocarbons/

Polycyclic aromatic hydrocarbons (PAHs), such as 9,10-dimethylanthracene, are found in the environment and are formed during pyrolysis and incomplete combustion of organic matter at high temperatures(1). 9,10-Dimethylanthracene occurs primarily in cigarette smoke(2) which will result in its direct release to the environment(SRC).

TERRESTRIAL FATE: Based on a classification scheme(1), an estimated Koc value of 4.6X10+4(SRC), determined from a structure estimation method(2), indicates that 9,10-dimethylanthracene is expected to be immobile in soil(SRC). Volatilization of 9,10-dimethylanthracene from moist soil surfaces is expected to be an important fate process(SRC) given an estimated Henry's Law constant of 2.9X10-5 atm-cu m/mole(SRC), using a fragment constant estimation method(3). However, adsorption to soil is expected to attenuate volatilization(SRC). 9,10-dimethylanthracene is not expected to volatilize from dry soil surfaces(SRC) based upon an estimated vapor pressure of 3.0X10-6 mm Hg at 25 °C(SRC), determined from a fragment constant method(2). 9,10-Dimethylanthracene reached 1.6 and 19.5% of its theoretical oxygen demand after 144 hours incubation in activated sludge from two different waste treatment facilities(4), suggesting that biodegradation may be a slow environmental fate process in soil(SRC).|AQUATIC FATE: Based on a classification scheme(1), an estimated Koc value of 4.6X10+4(SRC), determined from a structure estimation method(2), indicates that 9,10-dimethylanthracene is expected to adsorb to suspended solids and sediment(SRC). Volatilization from water surfaces is expected(3) based upon an estimated Henry's Law constant of 2.9X10-5 atm-cu m/mole(SRC), developed using a fragment constant estimation method(4). Using this Henry's Law constant and an estimation method(3), volatilization half-lives for a model river and model lake are 2 and 19 days, respectively(SRC). However, volatilization from water surfaces is expected to be attenuated by adsorption to suspended solids and sediment in the water column. The estimated volatilization half-life from a model pond is 80 years if adsorption is considered(5). According to a classification scheme(6), an estimated BCF of 2600(SRC), from its log Kow of 5.69(7) and a regression-derived equation(2), suggests the potential for bioconcentration in aquatic organisms is very high(SRC). 9,10-Dimethylanthracene reached 1.6 and 19.5% of its theoretical oxygen demand after 144 hours incubation in activated sludge from two different waste treatment facilities(8), suggesting that biodegradation may be a slow environmental fate process in water(SRC).|ATMOSPHERIC FATE: According to a model of gas/particle partitioning of semivolatile organic compounds in the atmosphere(1), 9,10-dimethylanthracene, which has an estimated vapor pressure of 3.0X10-6 mm Hg at 25 °C((SRC), determined from a fragment constant method(2), will exist in both the vapor and particulate phases in the ambient atmosphere. Vapor-phase 9,10-dimethylanthracene is degraded in the atmosphere by reaction with photochemically-produced hydroxyl radicals(SRC); the half-life for this reaction in air is estimated to be 0.1 days(SRC), calculated from its rate constant of 1.3X10-10 cu cm/molecule-sec at 25 °C(SRC) that was derived using a structure estimation method(3). Particulate-phase 9,10-dimethylanthracene may be removed from the air by wet and dry deposition(SRC). Analogous anthracene contains chromophores that absorb at wavelengths >290 nm(4), suggesting that 9,10-dimethylanthracene may be susceptible to direct photolysis by sunlight(SRC).

The rate constant for the vapor-phase reaction of 9,10-dimethylanthracene with photochemically-produced hydroxyl radicals has been estimated as 1.3X10-10 cu cm/molecule-sec at 25 °C(SRC) using a structure estimation method(1). This corresponds to an atmospheric half-life of about 0.1 days at an atmospheric concentration of 5X10+5 hydroxyl radicals per cu cm(1). 9,10-Dimethylanthracene is not expected to undergo hydrolysis in the environment due to the lack of functional groups that hydrolyze under environmental conditions(2). Analogous anthracene contains chromophores that absorb at wavelengths >290 nm(3), suggesting that 9,10-dimethylanthracene may be susceptible to direct photolysis by sunlight(SRC).|The photoooxidation of 9,10-dimethylanthracene dissolved in benzene and spread as liquid film on water is reported. The primary product is 9,10-dimethyl-9,10-anthracene endo-peroxide, which is further photodecomposed and hydrolyzed by water to a series of oxygenated aromatic compounds(1).

An estimated BCF of 2600 was calculated in fish for 9,10-dimethylanthracene(SRC), using a log Kow of 5.69(1) and a regression-derived equation(2). According to a classification scheme(2), this BCF suggests the potential for bioconcentration in aquatic organisms is very high(SRC), provided the compound is not metabolized by the organism(SRC). Polycyclic aromatic hydrocarbons, including 9,10-dimethylanthracene, have been shown to be rapidly metabolized by some aquatic organisms(4).

Using a structure estimation method based on molecular connectivity indices(1), the Koc of 9,10-dimethylanthracene can be estimated to be 4.6X10+4(SRC). According to a classification scheme(2), this estimated Koc value suggests that 9,10-dimethylanthracene is expected to be immobile in soil.

The Henry's Law constant for 9,10-dimethylanthracene is estimated as 2.9X10-5 atm-cu m/mole(SRC) using a fragment constant estimation method(1). This Henry's Law constant indicates that 9,10-dimethylanthracene is expected to volatilize from water surfaces(2). Based on this Henry's Law constant, the volatilization half-life from a model river (1 m deep, flowing 1 m/sec, wind velocity of 3 m/sec)(2) is estimated as 2 days(SRC). The volatilization half-life from a model lake (1 m deep, flowing 0.05 m/sec, wind velocity of 0.5 m/sec)(2) is estimated as 19 days(SRC). However, volatilization from water surfaces is expected to be attenuated by adsorption to suspended solids and sediment in the water column. The estimated volatilization half-life from a model pond is 80 years if adsorption is considered(3). 9,10-Dimethylanthracene's Henry's Law constant indicates that volatilization from moist soil surfaces may occur(SRC). 9,10-Dimethylanthracene is not expected to volatilize from dry soil surfaces(SRC) based upon an estimated vapor pressure of 3.0X10-6 mm Hg(SRC), determined from a fragment constant method(4).

DRINKING WATER: 9,10-Dimethylanthracene was detected in drinking water collected from Ottawa, Canada in February 1978 at a concentration of 19 ng/L(1). It was analyzed for but not detected in drinking water collected from Ottawa, Canada in January 1978, detection limit not reported(1).|RAIN/SNOW: 9,10-Dimethylanthracene was tested for but not detected in rain particulates from the lower Back River Estuary located in the Baltimore Harbor area on the Chesapeake Bay, sampled in June 1996(1).

9,10-Dimethylanthracene has reportedly been found in mineral oil(1). This compound was analyzed for but not found in samples of margarines, butters, and vegetable oils from Finland, detection limit 0.02 ug/kg(2), and samples of leaf lettuce from Finland, detection limit 0.05 ug/kg(3).

Occupational exposure to 9,10-dimethylanthracene may occur through inhalation of dust particles contaminated with incomplete combustion products and dermal contact with incomplete combustion products containing 9,10-dimethylanthracene. Limited monitoring data indicate that the general population may be exposed to 9,10-dimethylanthracene via smoking cigarettes, inhalation of ambient air, and ingestion of some foods. (SRC)

Drug Information

The metabolism of two polycyclic aromatic hydrocarbons i.e. anthracene and 9,10-dimethylanthracene by Micrococcus sp., Pseudomonas sp. and Bacillus macerans was examined. The above compounds were used as a sole carbon source for their growth. Using the reversed-phase thin layer chromatography techniques a number of anthracene and 9,10-dimethylanthracene metabolites were isolated and their structures identified spectroscopically. These included anthracene and 9,10-dimethylanthracene cis-dihydrodiols, hydroxy-methyl-derivatives and various phenolic compounds. Bacteria metabolize hydrocarbons using the dioxygenase enzyme system, which differs from the mammalian cytochrome P-450 monoxygenase. ...|In-vitro stereoselective metabolism of methylated anthracenes by rat liver microsomes, and the configurations and optical purity of the trans-dihydrodiol metabolites were investigated. Liver microsomes from untreated immature male Sprague-Dawley-rats and from rats pretreated with either 3-methylcholanthrene (3-MC) or phenobarbital (PB) were incubated with 9-methylanthracene (779022) (9-MA), 9-hydroxymethylanthracene (9-OHMA), or 9,10-dimethylanthracene (781431) (9,10-DMA) for 60 minutes. Metabolites were separated by reverse phase high performance liquid chromatography (HPLC). Results indicated that 9-MA, 9-OHMA and 9,10-DMA were metabolized by 3-MC, PB and control microsomes in a stereoselective manner. With the exception of the formation of 9-OHMA-trans-3,4 dihydrodiol by PB microsomes, all of the trans-dihydrodiol metabolites formed from the three microsomal enzyme systems were predominantly the R,R enantiomers. The 3-MC microsomes exhibited much higher stereoselectivity than the Pb or control microsomes in the formation of trans-dihydrodiols from anthracene, 9-MA, 9-OHMA and 9,10-DMA. Optical purities of the trans-dihydrodiol metabolites, determined by analysis of the chiral stationary phase HPLC profiles of the dihydrodiols or their corresponding tetrahydrodiol derivatives, ranged from 76 to 98 percent, 4 to 76 percent and 4 to 60 percent for 3-MC, PB and control microsomes, respectively. Methyl and hydroxymethyl substituents slightly decreased the stereoselectivity of the trans-dihydrodiol formation. The authors conclude that the lower optical purities of the trans-dihydrodiols formed by either PB or control microsomes are clearly due to the lower stereoselectivity of the cytochrome-P-450 enzymes or epoxidation of the polycyclic aromatic hydrocarbon substrates, but not due to the change of the stereoselectivity of the epoxide hydrolase enzymes.|The metabolism of the weakly-carcinogenic hydrocarbon, 9,10-dimethylanthracene (DMA) by rat-liver microsomal preparations has been examined. 9-Hydroxymethyl-10-methylanthracene (9-OHMeMA) and 9,10-dihydroxymethyl-anthracene (9,10-DiOHMeA) were identified as metabolites by comparing their chromatographic and spectral properties with those of the authentic compounds. The trans-1,2-dihydro-1,2-dihydroxy derivative of DMA (DMA 1,2-diol) was the major metabolite formed which was identified by its chromatographic, u.v., n.m.r. and mass spectral properties. The dihydrodiol was also formed in the oxidation of DMA in an ascorbic acid-ferrous sulphate-EDTA system. Two other dihydrodiols that were formed from DMA by metabolism appeared to be the trans-1,2- and 3,4-dihydrodiols of 9-OHMeMA (9-OHMeMA 1,2-diol and 9-OHMeMA 3,4-diol) and the further metabolism of DMA 1,2-diol yielded both of these dihydrodiols. When 9-OHMeMA was further metabolized, two main metabolites were formed; one was identified as 9,10-DiOHMeA and the other appeared to be 9-OHMeMA 3,4-diol. No metabolites were detected when 9,10-DiOHMeA was incubated with rat-liver microsomal fractions.

/SRP:/ Immediate first aid: Ensure that adequate decontamination has been carried out. If patient is not breathing, start artificial respiration, preferably with a demand-valve resuscitator, bag-valve-mask device, or pocket mask, as trained. Perform CPR as necessary. Immediately flush contaminated eyes with gently flowing water. Do not induce vomiting. If vomiting occurs, lean patient forward or place on left side (head-down position, if possible) to maintain an open airway and prevent aspiration. Keep patient quiet and maintain normal body temperature. Obtain medical attention. /Aromatic hydrocarbons and related compounds/|/SRP:/ Basic treatment: Establish a patent airway (oropharyngeal or nasopharyngeal airway, if needed). Suction if necessary. Watch for signs of respiratory insufficiency and assist ventilations if necessary. Administer oxygen by nonrebreather mask at 10 to 15 L/min. Monitor for pulmonary edema and treat if necessary ... . Monitor for shock and treat if necessary ... . Anticipate seizures and treat if necessary ... . For eye contamination, flush eyes immediately with water. Irrigate each eye continuously with 0.9% saline (NS) during transport ... . Do not use emetics. For ingestion, rinse mouth and administer 5 mL/kg up to 200 mL of water for dilution if the patient can swallow, has a strong gag reflex, and does not drool. Administer activated charcoal ... . /Aromatic hydrocarbons and related compounds/|/SRP:/ Advanced treatment: Consider orotracheal or nasotracheal intubation for airway control in the patient who is unconscious, has severe pulmonary edema, or is in severe respiratory distress. Consider drug therapy for pulmonary edema ... . Positive-pressure ventilation techniques with a bag valve mask device may be beneficial. Consider drug therapy for pulmonary edema ... . Consider administering a beta agonist such as albuterol for severe bronchospasm ... . Monitor cardiac rhythm and treat arrhythmias if necessary ... Start IV administration of D5W /SRP: "To keep open", minimal flow rate/. Use 0.9% saline (NS) or lactated Ringer's (LR) if signs of hypovolemia are present. For hypotension with signs of hypovolemia, administer fluid cautiously. Watch for signs of fluid overload ... .Treat seizures with diazepam or lorazepam ... . Use proparacaine hydrochloride to assist eye irrigation ... . /Aromatic hydrocarbons and related compounds/

9,10-dimethylanthracene

9,10-Dimethylanthracene Use and Manufacturing

Methods of Manufacturing

The 9, 10-dimethyl-9, 10-dihydroxyanthracene is generated by the reaction of anthraquinone and methylmagnesium iodide, and then the product is obtained by dehydroxylation in the presence of acetic acid, zinc powder and thiourea.

Uses

Used in organic synthesis.

Production

(1977) NOT PRODUCED COMMERCIALLY IN USA|(1979) NOT PRODUCED COMMERCIALLY IN USA

Computed Properties

Molecular Weight:206.28
XLogP3:5.7
Exact Mass:206.109550447
Monoisotopic Mass:206.109550447
Heavy Atom Count:16
Complexity:194
Covalently-Bonded Unit Count:1
Compound Is Canonicalized:Yes

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