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Home > Encyclopedia > 3,5-Dichlorophenol

3,5-Dichlorophenol

3,5-Dichlorophenol structure

3,5-Dichlorophenol 

structure

Description

yellow to light brown crystals, crystalline powder


Prisms (from petroleum ether) or pink crystals. (NTP, 1992)|COLOURLESS CRYSTALS WITH CHARACTERISTIC ODOUR.


Prisms (from petroleum ether) or pink crystals. (NTP, 1992)|3,5-dichlorophenol is a dichlorophenol in which the two chloro substituents are located at positions 3 and 5.

3,5-Dichlorophenol Basic Attributes

162.997

163.00

209-714-9

FG32L88KO9

0440

60649

2020

DTXSID2025006

Prisms from petroleum ether

2908199090

Characteristics

20.2

3.6

Prisms (from petroleum ether) or pink crystals. (NTP, 1992)

1.3446 (rough estimate)

68 °C

233 °C @ Press: 757 Torr

106.9±15.8 °C

1.594

Solubility in water, g/100ml at 25°C: 0.54 (poor)

0-6ºC

Vapour pressure, Pa at 25°C: 1

Relative vapour density (air = 1): 5.6

During vacuum fractionation of the mixed dichlorophenols produced by partial hydrolysis of trichlorobenzene, rapid admission of air to the receiver caused the column contents to be forced down into the boiler at 210 deg C, and a violent explosion ensued. /Dichlorophenol mixed isomers/

Henry's Law constant = 2.44X10-7 atm-cu m/mol at 25 °C (est)

pKa = 8.18

Hydroxyl radical reaction rate constant = 1.66X10-11 cu cm/molec-sec at 25 °C (est)

Insoluble in water.

Phenols and Cresols

3,5-DICHLOROPHENOL is incompatible with acid chlorides, acid anhydrides and oxidizing agents. (NTP, 1992)

Safety Information

6.1

2020

3

6.1

S26-S28-S37/39

SK8820000

Xi:Irritant;

Store only in original container. Store in an area without drain or sewer access. Provision to contain effluent from fire extinguishing. Separated from oxidants and food and feedstuffs. Ventilation along the floor.

P273-P280-P305 + P351 + P338-P310

H302-H311-H314-H411

SRP: The most favorable course of action is to use an alternative chemical product with less inherent propensity for occupational exposure or environmental contamination. 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 soil or water; effects on animal, aquatic, and plant life; and conformance with environmental and public health regulations.

Nat'l Research Council Canada; Chlorinated Phenols (1982) NRCC No. 18578|KOZAK VP ET AL; REVIEWS OF THE ENVIRONMENTAL EFFECTS OF POLLUTANTS: XI. CHLOROPHENOLS; US EPA REP EPA-600/1-79-012: 519 PAGES (1979). THIS PAPER DISCUSSES THE HEALTH & ENVIRONMENTAL EFFECTS, PHYSICAL & CHEMICAL PROPERTIES, ANALYTICAL METHODS, BIOLOGICAL ASPECTS (HUMAN & NON-HUMAN), ENVIRONMENTAL DISTRIBUTION & TRANSFORMATION & ENVIRONMENTAL INTERACTIONS OF CHLOROPHENOLS & THEIR CONSEQUENCES. AVAILABLE DATA INDICATE THAT CHLOROPHENOLS DO NOT POSSESS TUMORIGENIC, MUTAGENIC OR TERATOGENIC PROPERTIES.|Environmental Protection Service. Chlorophenols and Their Impurities in the Canandian Environment Report EPS 3-EC-81-2 (1981).|USEPA; Ambient Water Quality Criteria Doc: Chlorinated Phenols (1980) EPA 440/5-80-032.

Flash point data for this chemical are not available. It is probably combustible. (NTP, 1992)|Combustible. Gives off irritating or toxic fumes (or gases) in a fire.

|Danger|H302 (82%): Harmful if swallowed [Warning Acute toxicity, oral]|P260, P261, P264, P270, P271, P273, P280, P301+P312, P301+P330+P331, P302+P352, P303+P361+P353, P304+P340, P305+P351+P338, P310, P312, P321, P322, P330, P332+P313, P337+P313, P361, P362, P363, P391, P403+P233, P405, and P501|Aggregated GHS information provided by 51 companies from 9 notifications to the ECHA C&L Inventory. Each notification may be associated with multiple companies.|Not Classified

Excerpt from ERG Guide 153 [Substances - Toxic and/or Corrosive (Combustible)]: As an immediate precautionary measure, isolate spill or leak area in all directions for at least 50 meters (150 feet) for liquids and at least 25 meters (75 feet) for solids. SPILL: Increase, in the downwind direction, as necessary, the isolation distance shown above. FIRE: If tank, rail car or tank truck is involved in a fire, ISOLATE for 800 meters (1/2 mile) in all directions; also, consider initial evacuation for 800 meters (1/2 mile) in all directions. (ERG, 2016)

SMALL SPILLS AND LEAKAGE: Should a spill occur while you are handling this chemical, FIRST REMOVE ALL SOURCES OF IGNITION, then you should dampen the solid spill material with 60-70% ethanol and transfer the dampened material to a suitable container. Use absorbent paper dampened with 60-70% ethanol to pick up any remaining material. Seal the absorbent paper, and any of your clothes, which may be contaminated, in a vapor-tight plastic bag for eventual disposal. Solvent wash all contaminated surfaces with 60-70% ethanol followed by washing with a soap and water solution. Do not reenter the contaminated area until the Safety Officer (or other responsible person) has verified that the area has been properly cleaned. STORAGE PRECAUTIONS: You should store this chemical under ambient temperatures, and keep it away from oxidizing materials. (NTP, 1992)

MINIMUM PROTECTIVE CLOTHING: If Tyvek-type disposable protective clothing is not worn during handling of this chemical, wear disposable Tyvek-type sleeves taped to your gloves. RECOMMENDED RESPIRATOR: Where the neat test chemical is weighed and diluted, wear a NIOSH-approved half face respirator equipped with an organic vapor/acid gas cartridge (specific for organic vapors, HCl, acid gas and SO2) with a dust/mist filter. (NTP, 1992)|Wear boots, protective gloves, and goggles. /Trichlorophenol/|/Wear/ approved dust respirator for toxic dusts; Protective clothing to prevent contact with skin. /Trichlorophenol/

During vacuum fractionation of the mixed dichlorophenols produced by partial hydrolysis of trichlorobenzene, rapid admission of air to the receiver caused the column contents to be forced down into the boiler at 210 °C, and a violent explosion ensued. /Dichlorophenol mixed isomers/

Extinguish fire using agent suitable for type of surrounding fire. Material itself does not burn or burns with difficulty. /Trichlorophenol/

Land Spill: Dig a pit, pond, lagoon, or holding area /SRP: If time permits, pits, ponds, lagoons, soak holes, or holding areas should be sealed with an impermeable flexible membrane liner./to contain liquid or solid material. Cover solids with plastic sheet to prevent dissolving in rain or fire fighting water. /Trichlorophenol/|Water Spill: Use natural deep water pockets, excavated lagoons, or sand bag barriers to trap material at bottom. If dissolved, apply activated carbon at ten times the spilled amount in region of 10 ppm or greater concentration. Remove trapped material with suction hoses. Use mechanical dredges or lifts to remove immobilized masses of pollutants and precipitates. /Trichlorophenol/|ACTIVATED CARBON IS A GOOD METHOD FOR REMOVING CHLOROPHENOLS FROM WATER. COMPETITIVE ADSORPTION OCCURS BETWEEN CHLOROPHENOLS & HUMIC SUBSTANCES PRESENT IN NEARLY ALL MUNICIPAL WATER SUPPLIES. THIS COMPETITION DECR THE CAPACITY OF CARBON FOR CHLOROPHENOLS. /CHLOROPHENOLS/

SRP: Contaminated protective clothing should be segregated in such a manner so that there is no direct personal contact by personnel who handle, dispose, or clean the clothing. Quality assurance to ascertain the completeness of the cleaning procedures should be implemented before the decontaminated protective clothing is returned for reuse by the workers. Contaminated clothing should not be taken home at end of shift, but should remain at employee's place of work for cleaning.|Keep material out of water sources and sewers; Build dikes to contain flow as necessary; Keep upwind; Avoid breathing vapors or dusts; Wash away any material which may have contacted the body with copious amounts of water or soap and water. /Trichlorophenol/|SRP: The scientific literature for the use of contact lenses in industry is conflicting. The benefit or detrimental effects of wearing contact lenses depend not only upon the substance, but also on factors including the form of the substance, characteristics and duration of the exposure, the uses of other eye protection equipment, and the hygiene of the lenses. However, there may be individual substances whose irritating or corrosive properties are such that the wearing of contact lenses would be harmful to the eye. In those specific cases, contact lenses should not be worn. In any event, the usual eye protection equipment should be worn even when contact lenses are in place.|Immediately wash contaminated areas of skin with concentrated soap solution. Contaminated gloves, clothing, shoes should be removed without delay and disposed by incineration.

/GUIDE 153: SUBSTANCES - TOXIC AND/OR CORROSIVE (COMBUSTIBLE)/ Health: TOXIC; inhalation, ingestion, or skin contact with material may cause severe injury or death. Contact with molten substance may cause severe burns to skin and eyes. Avoid any skin contact. Effects of contact or inhalation may be delayed. Fire may produce irritating, corrosive and/or toxic gases. Runoff from fire control or dilution water may be corrosive and/or toxic and cause pollution. /Chlorophenols, liquid; Chlorophenols, solid/|/GUIDE 153: SUBSTANCES - TOXIC AND/OR CORROSIVE (COMBUSTIBLE)/ Fire or Explosion: Combustible material: may burn but does not ignite readily. When heated, vapors may form explosive mixtures with air: indoors, outdoors, and sewers explosion hazards. Those substances designated with a "P" may polymerize explosively when heated or involved in a fire. Contact with metals may evolve flammable hydrogen gas. Containers may explode when heated. Runoff may pollute waterways. Substance may be transported in a molten form. /Chlorophenols, liquid; Chlorophenols, solid/|/GUIDE 153: SUBSTANCES - TOXIC AND/OR CORROSIVE (COMBUSTIBLE)/ Public Safety: CALL Emergency Response Telephone Number ... As an immediate precautionary measure, isolate spill or leak area in all directions for at least 50 meters (150 feet) for liquids and at least 25 meters (75 feet) for solids. Keep unauthorized personnel away. Stay upwind. Keep out of low areas. Ventilate enclosed areas. /Chlorophenols, liquid; Chlorophenols, solid/|/GUIDE 153: SUBSTANCES - TOXIC AND/OR CORROSIVE (COMBUSTIBLE)/ Protective Clothing: Wear positive pressure self-contained breathing apparatus (SCBA). Wear chemical protective clothing that is specifically recommended by the manufacturer. It may provide little or no thermal protection. Structural firefighters' protective clothing provides limited protection in fire situations ONLY; it is not effective in spill situations where direct contact with the substance is possible. /Chlorophenols, liquid; Chlorophenols, solid/|For more DOT Emergency Guidelines (Complete) data for 3,5-DICHLOROPHENOL (8 total), please visit the HSDB record page.

No person may /transport,/ offer or accept a hazardous material for transportation in commerce unless that person is registered in conformance ... and the hazardous material is properly classed, described, packaged, marked, labeled, and in condition for shipment as required or authorized by ... /the hazardous materials regulations (49 CFR 171-177)./|The International Air Transport Association (IATA) Dangerous Goods Regulations are published by the IATA Dangerous Goods Board pursuant to IATA Resolutions 618 and 619 and constitute a manual of industry carrier regulations to be followed by all IATA Member airlines when transporting hazardous materials.|The International Maritime Dangerous Goods Code lays down basic principles for transporting hazardous chemicals. Detailed recommendations for individual substances and a number of recommendations for good practice are included in the classes dealing with such substances. A general index of technical names has also been compiled. This index should always be consulted when attempting to locate the appropriate procedures to be used when shipping any substance or article.

Personal protection: chemical protection suit including self-contained breathing apparatus. Do NOT let this chemical enter the environment. Sweep spilled substance into covered containers. If appropriate, moisten first to prevent dusting. Carefully collect remainder. Then store and dispose of according to local regulations.

Store only in original container. Store in an area without drain or sewer access. Provision to contain effluent from fire extinguishing. Separated from oxidants and food and feedstuffs. Ventilation along the floor.

A harmful concentration of airborne particles can be reached quickly when dispersed, especially if powdered.

The substance is severely irritating to the eyes, skin and respiratory tract.

NO open flames.

STRICT HYGIENE! PREVENT DISPERSION OF DUST!

Use local exhaust or breathing protection.

Protective gloves. Protective clothing.

Wear face shield or eye protection in combination with breathing protection.

The major hazards encountered in the use and handling of 3,5-dichlorophenol stem from its toxicologic properties. Toxic effects from exposure to this crystalline substance may occur from dermal contact or inhalation and include burning of the skin, headache, dizziness, cyanosis, and death from cardiac or respiratory failure. Personnel handling 3,5-dichlorophenol should wear protective clothing, gloves, boots, goggles, and an approved dust respirator. In emergency situations, wear a self-contained breathing apparatus and structural firefighter's protective clothing. Remove and isolate contaminated clothing at the site. In case of contact with 3,5-dichlorophenol, immediately flush skin or eyes with running water for at least 15 minutes, and wash affected areas of the skin with soap and water. 3,5-Dichlorophenol does not ignite easily, but it can burn, producing irritating and poisonous gases. For small fires involving 3,5-dichlorophenol, extinguish with dry chemical, CO2, water spray, or standard foam, and for large fires, use water spray, fog, or standard foam. Dike runoff from fire control water if necessary to keep it from entering water sources or sewers. 3,5-Dichlorophenol may be shipped via air, rail, road, or water in containers bearing the label, "Keep away from food." Small spills of 3,5-dichlorophenol solution may be taken up with sand or other noncombustible absorbent and placed into containers for later disposal. Large spills should be contained in pits, or other holding areas that are sealed with an impermeable flexible membrane liner. Solids should be covered with a plastic sheet. Spills of 3,5-dichlorophenol in water may be trapped at the bottom with sand bag barriers, activated charcoal applied, and trapped material removed with suction hoses, mechanical dredges, or lifts. Prior to implementing land disposal of waste residue (including waste sludge), consult with environmental regulatory agencies for guidance.

Biologically treated effluent samples from nine Canadian bleached softwood kraft mills were analyzed for chlorinated phenolic content. Chlorinated phenolics, including 3,5-dichlorophenol, are present in effluent discharged from bleached kraft mills and are not expected to contribute an off-odor to recipient waters.|3,5-Dichlorophenol was detected in 7 of 34 treated water samples collected at a sewage treatment plant in Karkola, Finland between September 1989 and November 1990 at an average concentration of 0.34 ug/L(1). 3,5-Dichlorophenol was detected in one sample of aqueous leachate collected at a hazardous waste site in Germany at a concentration of 2.8 ppm(2). 3,5-Dichlorophenol was detected in 2 of 5 samples of gas emissions from a metal reclamation plant in Finland, at an average concentration of 0.1 ug/cu Nm(3).

SEDIMENT: 3,5-Dichlorophenol was detected in 16 of 17 sediment samples collected from Lake Ketelmeer, the Netherlands in 1979 and 1980 with maximum and median concentrations of 12 and 6.6 ug/kg dry sediment weight(1).

3,5-Dichlorophenol was detected in 12 of 12 sewage sludge samples collected in northwest England in concentrations ranging from 0.11 to 1.14 mg/kg dry sludge weight, with an average of 0.54 mg/kg(1). 3,5-Dichlorophenol was detected in 12 of 50 sewage sludge samples collected in Karkola, Finland between September 1989 and November 1990 with an average concentration of 0.10 mg/kg dry sludge weight(2).

Toxicity

LD50 Mouse (male CD-1 ICR) oral 2643 mg/kg.|LD50 Mouse (female CD-1 ICR) oral 2389 mg/kg.

/AQUATIC SPECIES/ ... Ten European laboratories took part in an inter-laboratory study using different commercial devices based on bioluminescence inhibition of bacteria Vibrio fischeri. Reproducibility and stability by short toxicity endpoints, effective concentration that gives 10%, 50% and 80% of inhibition (EC(10), EC(50) and EC(80)) is evaluated. Parametric and non-parametric statistic is applied and performance of participant laboratories is addressed by z-scores calculated by non-parametric statistic. z-Score classification was based on harmonised protocol for proficiency testing of analytical laboratories (satisfactory |z|3). Tested samples were phenol, 3,5-dichlorophenol and influent wastewater. Based on z-score classification, more than 70% of the laboratories showed a satisfactory performance for phenol, 3,5-dichlorophenol and influent wastewater (86%, 90% and 70%, respectively). Reproducibility and stability was observed in toxicant references and in wastewater samples. EC(80) determination appears to be more robust that EC(10) and EC(50). EC determinations can be considered favorable at 5 and 15min of exposition, in particular for EC(80). The use of different commercial devices can not be considered an additional source of variation.|/AQUATIC SPECIES/ A rapid and simple ecotoxicological bioassay allows quick estimation of the effects of ... 3,5-dichlorophenol (3,5-DCP) on the growth of the green alga Pseudokirchneriella subcapitata (formerly Selenastrum capricornutum). The effects of a 15-min exposure to... 3,5-DCP on delayed fluorescence (DF) in P. subcapitata were compared to the results of standard growth inhibition tests involving 72 hr of exposure to these chemicals at the same concentrations. Integrated DF intensity in the time period from 0.6 to 50s was found to correlate with algal growth inhibition as measured by the standard tests.|/AQUATIC SPECIES/ The polychaete Platynereis dumerilii (Polychaeta: Nereidae) has been evaluated as a candidate bioassay species for marine ecotoxicity testing. The species conforms with many of the requirements of an ideal bioassay organism in that (i) it is amenable to laboratory culture, (ii) its relatively small size makes it convenient for handling and laboratory exposure studies, (iii) its diet is defined and can be controlled, (iv) it reproduces throughout the year and, using photoperiod manipulation, can be induced to spawn as required, and (v) it has a short life cycle (approximately 3 months at 20 °C) making it feasible to study the effects of xenobiotics on chronic endpoints such as reproduction. The components of the life history which have been examined to date include fertilization rate, embryo-larval development, and larval survival. These life stages were evaluated using the reference materials used in the 1991 International Paris Commission (PARCOM) Ring Test (namely, the biocides, Bioban P-1487 and Vantocil IB, and the widely used reference toxicant, 3,5-dichlorophenol). For fertilization rate, the median effect concentrations (1-hr EC50 values) were ... 1.92 [corrected] mg/L for 3,5-dichlorophenol ... For embryo-larval development, the median effect concentrations (48-hr EC50 values) were ... 2.13 mg/L for 3,5-dichlorophenol ... . For larval survival, the median lethal concentrations (48-hr LC50 values) were ... 3.64 mg/L for 3,5-dichlorophenol ... .|/AQUATIC SPECIES/ In order to investigate possible synergistic or antagonistic (more or less than additive) toxicity effects, mixtures of chemicals were tested in water using a microbial bioassay. Ten toxicants (3,4-dichloroaniline, 3,5-dichlorophenol, cadmium, chromium, copper, Lindane, linear alkylbenzene sulphonate, pentachlorophenol, toluene, zinc) were chosen on the basis of their common occurrence in industrial effluents within local waste water treatment plants. These toxicants also cover a wide range of modes of toxic action, namely, polar and non-polar narcosis, membrane disruption, respiratory disruption, uncouplers of oxidative phosphorylation, biochemical disruption and enzyme inhibition. Efficient screening for possible combination toxicity between toxicants involved testing the chemicals both singly and in triplet combinations. The triplets were based on four replicates of a balanced incomplete block design (BIB). A standardised Vibrio fischeri rapid toxicity bioluminescence assay was used. The combinations tested showed that only one mixture was found to be significantly more toxic than expected from the pure single-toxicant results. Two triplets were significantly less toxic. Further tests on the more toxic triplet showed that the effect was due to only one of the 45 pairs originally screened.|For more Ecotoxicity Excerpts (Complete) data for 3,5-DICHLOROPHENOL (11 total), please visit the HSDB record page.

Dichlorophenols can be synthesized directly by soil fungi utilizing chloride ions and humic phenols found in soil(1); chloroperoxidase enzymes released into soil by fungi can also bring about the chlorination of humic phenols with chloride ions(1). Chlorophenols may be released into the environment through burning of fresh lignocellulosic biomass during forest fires(2).

3,5-Dichlorophenol formation from the chlorination processes involving water treatment(1), various incineration processes(2), and during wood pulp bleaching(2) will result in its direct release to the environment(SRC). The origin of chlorophenols during wood pulp bleaching is via chlorination of naturally occuring lignins found in wood(3). 3,5-Dichlorophenol may be released to the environment via biodegradation in sediment of tri-, tetra- and pentachlorophenols(4).

PENTACHLOROPHENOL DECOMPOSES, WITHIN FEW WEEKS AFTER APPLICATION TO RICE FIELDS, BY REDUCTIVE DECHLORINATION. STABLE DECOMP PRODUCTS INCL 3,5-DICHLOROPHENOL.|TERRESTRIAL FATE: Based on a classification scheme(1), an estimated Koc value of 1,200(SRC), determined from a log Kow of 3.62(2) and a regression-derived equation(3), indicates that 3,5-dichlorophenol is expected to have low mobility in soil(SRC). The pKa of 3,5-dichlorophenol is 8.14(4), indicating that this compound will partially exist in the anion form and anions generally do not adsorb more strongly to soils containing organic carbon and clay than their neutral counterparts(5). Volatilization of 3,5-dichlorophenol from moist soil surfaces is expected to be an important fate process(SRC) given an estimated Henry's Law constant of 2.4X10-7 atm-cu m/mole, derived from its vapor pressure, 0.00842 mm Hg(6), and water solubility, 7,394 mg/L(6). 3,5-Dichlorophenol is not expected to volatilize from dry soil surfaces(SRC) based upon its vapor pressure(6). The half-life of 3,5-dichlorophenol in an aquifer slurry was reported as 1 day(7) suggesting that biodegradation may be an important environmental fate process in soil(SRC).|AQUATIC FATE: Based on a classification scheme(1), an estimated Koc value of 1,200(SRC), determined from a log Kow of 3.62(2) and a regression-derived equation(3), indicates that 3,5-dichlorophenol 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 2.4X10-7 atm-cu m/mole(SRC), derived from its vapor pressure, 0.00842 mm Hg(4), and water solubility, 7,394 mg/L(4). Using this Henry's Law constant and an estimation method(3), volatilization half-lives for a model river and model lake are 190 days and 47 months, respectively(SRC). According to a classification scheme(5), a measured BCF of 9 to 82(6) suggests bioconcentration in aquatic organisms is low. A half-life of about 14 days in water(4), suggests that biodegradation may be an important environmental fate process in water(SRC).|ATMOSPHERIC FATE: According to a model of gas/particle partitioning of semivolatile organic compounds in the atmosphere(1), 3,5-dichlorophenol, which has a vapor pressure of 0.00842 mm Hg at 25 °C(2) is expected to exist solely as a vapor in the ambient atmosphere. Vapor-phase 3,5-dichlorophenol 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 about 1 day(SRC), calculated from its estimated rate constant of 1.7X10-11 cu cm/molecule-sec at 25 °C(3). 3,5-Dichlorophenol contains chromophores that absorb at wavelengths >290 nm(4) and therefore may be susceptible to direct photolysis by sunlight(SRC).

The rate constant for the vapor-phase reaction of 3,5-dichlorophenol with photochemically-produced hydroxyl radicals has been estimated as 1.7X10-11 cu cm/molecule-sec at 25 °C(SRC) using a structure estimation method(1). This corresponds to an atmospheric half-life of about 1 day at an atmospheric concentration of 5X10+5 hydroxyl radicals per cu cm(1). 3,5-Dichlorophenol undergoes direct photolysis and hydrolysis in water upon UV irradiation at wavelengths greater than 280 nm, producing 5-chlororesorcinol via replacement of the chlorine in the 3 position on the phenolic ring with a hydroxyl group(2). 3,5-Dichlorophenol is not expected to undergo hydrolysis in the environment due to the lack of functional groups that hydrolyze under environmental conditions(3). 3,5-Dichlorophenol contains chromophores that absorb at wavelengths >290 nm(3) and therefore may be susceptible to direct photolysis by sunlight(SRC).|As a chemical class, the phenols are susceptible to photo-oxidations in sunlit natural water via reactions with peroxy and hydroxyl radicals(1); half-lives for phenol are on the order of 0.8 days of sunlight for peroxy radicals and 100 hours of sunlight for hydroxyl radicals(1); half-lives for the dichlorophenols can be expected to be slower due to the halogen substitutions, but may still have some importance with respect to overall environmental degradation(SRC).

81.28|A BCF range of 9 to 82 was measured in fish for 3,5-dichlorophenol using carp (Cyprinus carpio) which were exposed over a eight week period to a water concentration of 30 ppb, according to the standard test of the Japanese Ministry of Industry and Trade (MITI)(1). According to a classification scheme(2), this BCF suggests the potential for bioconcentration in aquatic organisms is moderate(SRC).

676.08 L/kg|The Koc of 3,5-dichlorophenol is estimated as 1,200(SRC), using a log Kow of 3.62(1), and a regression-derived equation(2). According to a classification scheme(3), this estimated Koc value suggests that 3,5-dichlorophenol is expected to have low mobility in soil. The pKa of 3,5-dichlorophenol is 8.18(4), indicating that this compound will partially exist in anion form in the environment and anions generally do not adsorb more strongly to soils containing organic carbon and clay than their neutral counterparts(5).

The Henry's Law constant for 3,5-dichlorophenol is estimated as 2.4X10-7 atm-cu m/mole(SRC) derived from its vapor pressure, 0.00842 mm Hg(1), and water solubility, 7,394 mg/L(1). This Henry's Law constant indicates that 3,5-dichlorophenol is expected to volatilize slowly 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 about 190 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 about 47 months(SRC). 3,5-Dichlorophenol's estimated Henry's Law constant indicates that volatilization from moist soil surfaces may occur(SRC). 3,5-Dichlorophenol is not expected to volatilize from dry soil surfaces(SRC) based upon its vapor pressure(1).

GROUNDWATER: 3,5-Dichlorophenol was detected in 18 of 48 groundwater samples collected at Karkola, Finland between September 1989 and November 1990 at an average concentration of 340 ug/L(1). 3,5-Dichlorophenol was detected in 3 of 7 groundwater samples collected in the vicinity of a landfill in Vegen, Denmark in 1999 in concentrations ranging from 0.2 to 0.4 ug/L, with an average of 0.3 ug/L(2); none of the compound was detected more than 29 meters distance from the landfill(2).|DRINKING WATER: 3,5-Dichlorophenol was detected not quantified in effluent concentrates collected from a water treatment facility in Philadelphia, PA in Feb 1976(1).|SURFACE WATER: 3,5-Dichlorophenol was detected in 1 of 13 samples collected from Lake Ketelmeer, the Netherlands between March 1979 and March 1980 at a maximum concentration of 0.07 ppb(1). 3,5-Dichlorophenol was detected in 27 of 109 samples collected from the Rhine River, Lobith, the Netherlands in 1976 and 1977 at a maximum concentration of 0.77 ppb(2). 3,5-Dichlorophenol was detected in 6 of 6 samples collected from the Isipingo River, South Africa between April 1991 and May 1991 at concentrations ranging from 0.10 to 4.02 ug/L, with an average concentration of 1.5 ug/L(3).

Workers employed in wood treatment plants, tanneries, textile plants, and pulp and paper mills, as well as pesticide spray operators are potentially at risk from exposure to chlorophenols and to impurities in chlorophenol products. /Chlorophenols/|Occupational exposure to 3,5-dichlorophenol may occur through dermal contact with this compound at workplaces where 3,5-dichlorophenol is produced or used. Monitoring data indicate that the general population may be exposed to 3,5-dichlorophenol via ingestion of drinking water, and via dermal contact with this compound. (SRC)

3,5-Dichlorophenol was identified, not quantified, in urine samples of children residing in Arkansas near a herbicide plant(1). 3,5-Dichlorophenol was detected in 7 of 7 urine samples collected from adults at concentrations ranging from 11 to 60 ppb, with an average concentration of 27 ppb(2). 3,5-Dichlorophenol was detected in 10 of 10 urine samples collected from adults at concentrations ranging from 6 to 42 ppb, with an average concentration of 19 ppb(3).

Drug Information

Because of their high lipid solubility and low ionization at physiological pH, dichlorophenols would be expected to be readily absorbed following ingestion. /Dichlorophenols/|Dichlorophenol isomers are absorbed through the skin and from the gut. /Dichlorophenol isomers/|... Readily absorbed from the gastroenteric tract and from parenteral sites of injection. /Chlorophenols/

3,5-Dichlorophenol is a metabolite of the pesticides polychlorinated phenols and benzene hexachloride.

0.12 Days

Chlorinated phenols ... are very effective (in vitro) as uncouplers of oxidative phosphorylation. They thus prevent incorporation of inorganic phosphate into ATP without affecting electron transport. As a result of this action, cells continue to respire but soon are depleted of ATP necessary for growth. /Chlorophenols/

... Chlorinated 2-phenoxyphenols, chlorinated diphenylethers, and chlorinated dibenzofurans occur as impurities in technical grade of chlorophenols. /Chlorophenols/

SYMPTOMS: Symptoms of exposure to this compound may include irritation of the skin, eyes, mucous membranes and upper respiratory tract. Prolonged contact can cause damage to the eyes, severe irritation and burns. Exposure to this class of compounds may cause profuse sweating, intense thirst, abdominal pain, nausea, vomiting, diarrhea, cyanosis from methemoglobinemia, hyperactivity, stupor, blood pressure fall, hyperpnea, hemolysis, convulsions, collapse, coma and pulmonary edema followed by pneumonia. If death from respiratory failure is not immediate, jaundice and oliguria or anuria may occur. Other symptoms of exposure to this class of compounds may include headache, dizziness, rapid and difficult breathing, weakness, severe burns and internal damage. Chronic exposure may result in digestive disturbances, nervous disorders, skin eruptions and liver and kidney damage. Skin contact with this type of compound may result in softening and whitening of the skin, followed by the development of painful burns. Prolonged contact may lead to dermatitis. Local contact may also result in painless blanching or erythema and corrosion of the skin. Skin sensitivity reactions occur occasionally. ACUTE/CHRONIC HAZARDS: This compound may be harmful by inhalation, ingestion or skin absorption. It is an irritant of the skin, eyes, mucous membranes and upper respiratory tract; and prolonged contact may result in severe irritation or burns. When heated to decomposition it emits toxic fumes of carbon monoxide, carbon dioxide and hydrogen chloride gas. (NTP, 1992)

EYES: First check the victim for contact lenses and remove if present. Flush victim's eyes with water or normal saline solution for 20 to 30 minutes while simultaneously calling a hospital or poison control center. Do not put any ointments, oils, or medication in the victim's eyes without specific instructions from a physician. IMMEDIATELY transport the victim after flushing eyes to a hospital even if no symptoms (such as redness or irritation) develop. SKIN: IMMEDIATELY flood affected skin with water while removing and isolating all contaminated clothing. Gently wash all affected skin areas thoroughly with soap and water. IMMEDIATELY call a hospital or poison control center even if no symptoms (such as redness or irritation) develop. IMMEDIATELY transport the victim to a hospital for treatment after washing the affected areas. INHALATION: IMMEDIATELY leave the contaminated area; take deep breaths of fresh air. If symptoms (such as wheezing, coughing, shortness of breath, or burning in the mouth, throat, or chest) develop, call a physician and be prepared to transport the victim to a hospital. Provide proper respiratory protection to rescuers entering an unknown atmosphere. Whenever possible, Self-Contained Breathing Apparatus (SCBA) should be used; if not available, use a level of protection greater than or equal to that advised under Protective Clothing. INGESTION: DO NOT INDUCE VOMITING. Phenols are very toxic poisons AND corrosive and irritating, so that inducing vomiting may make medical problems worse. IMMEDIATELY call a hospital or poison control center and locate activated charcoal, egg whites, or milk in case the medical advisor recommends administering one of them. If advice from a physician is not readily available and the victim is conscious and not convulsing, give the victim a glass of activated charcoal slurry in water or, if this is not available, a glass of milk, or beaten egg whites and IMMEDIATELY transport victim to a hospital. If the victim is convulsing or unconscious, do not give anything by mouth, assure that the victim's airway is open and lay the victim on his/her side with the head lower than the body. DO NOT INDUCE VOMITING. IMMEDIATELY transport the victim to a hospital. (NTP, 1992)


Fresh air, rest. Refer for medical attention.


Remove contaminated clothes. Rinse and then wash skin with water and soap. Refer for medical attention .


Rinse with plenty of water (remove contact lenses if easily possible). Refer for medical attention.

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. /Phenols and related compounds/|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 ... . Administer activated charcoal ... . Do not use emetics. Cover skin burns with dry, sterile dressings after decontamination ... . Maintain body temperature. /Phenols and related compounds/|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. Positive pressure ventilation techniques with a bag valve mask device may be beneficial. Consider drug therapy for pulmonary edema ... . 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. Consider vasopressors if patient is hypotensive with a normal fluid volume. Watch for signs of fluid overload ... . Administer 1% solution methylene blue if patient is symptomatic with severe hypoxia, cyanosis, and cardiac compromise not responding to oxygen. DIRECT PHYSICIAN ORDER ONLY ... Treat seizures with diazepam or lorazepam. ... Use proparacaine hydrochloride to assist eye irrigation ... . /Phenols and related compounds/

/SIGNS AND SYMPTOMS/ SYMPTOMATOLOGY: Burning pain in mouth and throat. White necrotic lesions in mouth, esophagus and stomach. Abdominal pain, vomiting ... and bloody diarrhea. Pallor, sweating, weakness, headache, dizziness, tinnitus. Shock: Weak irregular pulse, hypotension, shallow respirations, cyanosis, pallor, and a profound fall in body temperature. Possibly fleeting excitement and confusion, followed by unconsciousness. ... Stentorous breathing, mucous rales, rhonchi, frothing at nose and mouth and other signs of pulmonary edema are sometimes seen. Characteristic odor of phenol on the breath. Scanty, dark-colored ... urine ... moderately severe renal insufficiency may appear. Methemoglobinemia, Heinz body hemolytic anemia and hyperbilirubinemia have been reported. ... Death from respiratory, circulatory or cardiac failure. If spilled on skin, pain is followed promptly by numbness. The skin becomes blanched, and a dry opaque eschar forms over the burn. When the eschar sloughs off, a brown stain remains. /Phenol/|/EPIDEMIOLOGY STUDIES/ Several epidemiological studies have been published concerning human cancer outcomes following occupational exposure to chlorophenols, phenoxy herbicides (made from or contaminated with chlorophenols) and chlorinated dibenzo-p-dioxins and dibenzofurans (microcontaminants found in some chlorophenols and phenoxy herbicides). Most of these studies (case-control and cohort studies) have been described and reviewed in several publications by IARC (1979, 1986, 1987). Equivocal relationships between chlorophenols and cases of soft tissue sarcoma, malignant lymphoma (Hodgkins disease and non-Hodgkins lymphoma), nasal and nasopharyngeal cancer and lung cancer have been reported. IARC concluded that there is a limited evidence of carcinogenicity from occupational exposure to chlorophenols ... /Chlorophenols/|/ALTERNATIVE and IN VITRO TESTS/ Nineteen isomeric chlorophenols were tested for their toxicity to HeLa cells. Cytotoxicity (median inhibitory concn IC50) varied between 0.37 and 900 mg/L and generally increased in proportion to the number of chlorine substituents and the partition coeffient. Ortho chlorination decreased toxicity, whereas meta chlorination had the opposite effect. A good correlation was found between HeLa cell toxicity and data on the bacterial toxicity of the substances.|/ALTERNATIVE and IN VITRO TESTS/ /The study objectives/ were 2-fold: (1) to determine if the HEPM (human embryonic palatal mesenchymal) assay could be used to complement other bioassay systems of nonhuman origin, i.e., Hydra attenuata (HA) and rat whole embryo culture (WEC), in the evaluation of the developmental toxicity of chlorophenols (CPs) and (2) to delineate the ability of the HEPM assay to evaluate structure-activity relationships of pentachlorophenol (C5P), 2,3,4,5-tetrachlorophenol (C4P), 2,3,5-trichlorophenol (C3P), 3,5-dichlorophenol (C2P), 4-monochlorophenol (CP), phenol, and CP derivatives (i.e., acetates, sodium phenates and anisoles). HEPM cells were seeded into each well of a 24-well plate and cultivated for 24 hr. The medium was replaced with fresh medium containing various concentrations of test chemicals dissolved in dimethyl sulfoxide (DMSO, 0.1%). After culturing for 72 hr, the medium was removed, cells were trypsinized, and cell number determined. The HEPM cell growth inhibition assay demonstrated a linear relationship between the IC50 values of the CPs and degree of chlorine substitution. The IC50 values of C5P, C4P, C3P, C2P, CP, and phenol were 18.8, 21.5, 27.5, 63.0, 150.0 and 470.0 uM, respectively. A clear structure-activity relationship was observed between toxicity of CPs and the degree of chlorine substitution. The rank order of CP toxicity from the HEPM assay (i.e., C5P > C4P > C3P > C2P > CP > phenol) is in excellent agreement with previous in vitro and in vivo studies. However, contrary to published reports, the HEPM assay predicted that all CPs were teratogenic (false positives)...

3,5-DCP

The substance can be absorbed into the body by inhalation and through the skin.

Sore throat. Cough. Burning sensation.


Redness. Pain.


Redness. Pain.

3,5-Dichlorophenol Use and Manufacturing

Methods of Manufacturing

... Catalytic hydrodechlorination of polychlorophenols in organic or aqueous media with a palladium catalyst was used to obtain 3-chlorophenol and 3,5-dichlorophenol. Hydrodechlorination of polychlorophenols with hydriodic acid in an aqueous or organic medium has also been reported.|HYDROLYSIS OF 1,2,4-TRICHLOROBENZENE USING A COPPER, ZINC OR IRON HALIDE CATALYST; PARTIAL DEHALOGENATION OF POLYCHLOROPHENOL; DIAZOTIZATION OF 3,5-DICHLOROANILINE FOLLOWED BY HYDROLYSIS OF THE DIAZONIUM SALT|Hydrolysis of chlorobenzenes can be carried out in alkaline aqueous media, with or without the presence of copper salts. It can be done in the vapor phase at 250 - 400 °C on phosphates or on silica at 500 - 550 °C. Hydrolysis is most frequently carried out in the presence of methanolic sodium or potassium at 150 - 200 °C and 1.0 - 3.0 MPa. /Mono-, Di-, and Trichlorophenols with Chlorine in a Meta Position/|Sulfonation of chlorobenzenes followed by the desulfonation of chlorobenzenesulfonic acids can be used to produce numerous chlorophenols. The chlorobenzenes are sulfonated by using 15 - 20% oleum at 60 - 80 °C. The subsequent desulfonation is usually carried out by using 15 - 25% aqueous sodium hydroxide solution at 180 - 220 °C and 1.5 - 3.0 MPa. /Mono-, Di-, and Trichlorophenols with Chlorine in a Meta Position/|For more Methods of Manufacturing (Complete) data for 3,5-DICHLOROPHENOL (6 total), please visit the HSDB record page.

Uses

RESEARCH CHEMICAL

Phenol, 3,5-dichloro-: ACTIVE

Separation of free chlorophenol isomers on non-polar and polar quartz capillary columns was studied. /Chlorophenol isomers/|Determination of chlorinated phenols in water, wastewater, and wastewater sludge by capillary GC/ECD /Chlorinated phenols/|A method is presented for the simultaneous determination of a wide range of carboxylic acids and phenols in water. Extractive alkylation is used with the tetrabutylammonium ion as counter ion and pentafluorobenzylbromide as alkylating agent. Extracts are analyzed by glass capillary gas chromatography and electron capture detection. Using a 1 ml water sample, the detection limit is 1-10 ug/l. /Chlorophenols/|Chlorophenols were separated by high pressure liquid chromatography with UV detection (280 nm) in conjunction with electrochemical detection. /Chlorophenols/|For more Analytic Laboratory Methods (Complete) data for 3,5-DICHLOROPHENOL (6 total), please visit the HSDB record page.

Chlorinated phenols in urine are isolated by sorption onto small column of macroreticular resin. The phenols were eluted from column with 2-propanol in hexane; solution concentrated & the phenols were separated & analyzed by GC. /Chlorinated phenols/|A method is described for the confirmation of chlorophenols in hydrolyzed urine (human) using gas chromatography and liquid chromatography with electrochemical detection. /Chlorophenols/|A method for the detection and confirmation of trace amounts of chlorophenol residues in environmental and biological samples by quadrupole mass spectrometry with selected-ion monitoring (sim) is described. Use of sim eliminates background interference which allows identification of chlorophenol residues in human urine. Phenol concentrations as low as 1.0 pmol/mL urine gave peaks that were discernible by sim. /Chlorophenol/

Computed Properties

Molecular Weight:163.00
XLogP3:3.6
Hydrogen Bond Donor Count:1
Hydrogen Bond Acceptor Count:1
Exact Mass:161.9639201
Monoisotopic Mass:161.9639201
Topological Polar Surface Area:20.2
Heavy Atom Count:9
Complexity:87.1
Covalently-Bonded Unit Count:1
Compound Is Canonicalized:Yes

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