Octanal
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Octanal
structure -
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CAS No:
124-13-0
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Formula:
C8H16O
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Chemical Name:
Octanal
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Synonyms:
Octanal;Antifoam LF;Caprylaldehyde;Caprylic aldehyde;Octaldehyde;n-Octanal;n-Octylal;n-Caprylaldehyde;n-Octaldehyde;Octanoic aldehyde;Octanaldehyde;Octylaldehyde;n-Octyl aldehyde;Aldehyde C 8;NSC 1508;NSC 8969
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CAS No:
Description
n-Octanal has a fatty, citrus, honey odor on dilution. liquid Octanal occurs in several citrus oils, for example, orange oil. It is a colorless liquid with a pungent odor, which becomes citrus-like on dilution. Octanal is used in perfumery in low concentrations, in eau de cologne, and in artificial citrus oils.ChEBI: A fatty aldehyde formally arising from reduction of the carboxy group of caprylic acid (octanoic acid).May be prepared by oxidation of the corresponding alcohol or reduction of
N-octylaldehyde is a colorless liquids with a strong fruity odor. Less dense than water and insoluble in water. Flash points 125°F. Used in making perfumes and flavorings.|Liquid|colourless to light yellow liquid/fatty-orange odour
N-octylaldehyde is a colorless liquids with a strong fruity odor. Less dense than water and insoluble in water. Flash points 125°F. Used in making perfumes and flavorings.|Octanal is a saturated fatty aldehyde formally arising from reduction of the carboxy group of caprylic acid (octanoic acid). It has a role as a plant metabolite. It is a saturated fatty aldehyde, a n-alkanal and a medium-chain fatty aldehyde.
Octanal Basic Attributes
128.21
128.21
204-683-8
XGE9999H19
8969|1508
1191
DTXSID3021643
Colorless liquid|Colorless to light yellow liquid
A - Alimentary tract and metabolism
29121990
Characteristics
17.1
2.7
Clear colorless to pale yellow Liquid
0.821 g/cm3 @ Temp: 20 °C
-23 °C
163.4 °C @ Press: 760 Torr
125 °F
n 20/D 1.421(lit.)
H2O: slightly soluble
0-6°C
2 mm Hg ( 20 °C)
Oral-Rat LD50: 5630 mg/kg
Combustible in case of open flame, high temperature and strong oxidant; burning emits irritating smoke
1.0-6.5%(V)
Strong, fruity odor
Taste characteristics at 25 ppm: aldehyde, green with a peely citrus orange note
5.14e-04 atm-m3/mole|Henry's Law constant = 5.14X10-4 atm-cu m/mole at 25 °C
Apparent partition coefficients (K*, in M/atm) of 15 carbonyl compounds including octylaldehyde between water and air were determined as a function of temperature, salinity, and pH. Values for K* decreased with increasing carbon number of alkanals; eg, at 25 °C apparent partition coefficients between air and seawater range from 3710 for formaldehyde and 13.1 for acetaldehyde to 0.181 for decanal. log K* was found-to be highly temperature dependent, varying linearly with l/T for all compounds studied. The salinity effect on K* increases with increasing molecular weight; K* (seawater)/K*(freshwater) ratios range from close to 1 for formaldehyde and acetaldehyde to less than 0.3 for nonanal and decanal. The effect of pH in the range of 4-8 on K* as found to be negligible.|Hydroxyl radical reaction rate constant = 3.17X10-11 cu cm/molecule-sec at 25 °C (est)
Flammable. Insoluble in water.
Aldehydes
OCTYL ALDEHYDES are aldehydes. Aldehydes are frequently involved in self-condensation or polymerization reactions. These reactions are exothermic; they are often catalyzed by acid. Aldehydes are readily oxidized to give carboxylic acids. Flammable and/or toxic gases are generated by the combination of aldehydes with azo, diazo compounds, dithiocarbamates, nitrides, and strong reducing agents. Aldehydes can react with air to give first peroxo acids, and ultimately carboxylic acids. These autoxidation reactions are activated by light, catalyzed by salts of transition metals, and are autocatalytic (catalyzed by the products of the reaction). The addition of stabilizers (antioxidants) to shipments of aldehydes retards autoxidation.
Safety Information
III
3
UN 1191 3/PG 3
2
10
16
RG7780000
Xi
Completely packed, lightly placed; storeroom ventilated, away from open flames, high temperature, and stored separately from oxidants
Stable. Flammable. Incompatible with strong oxidizing agents, strong reducing agents, strong bases.
P210, P233, P240, P241, P242, P243, P280, P303+P361+P353, P370+P378, P403+P235, P501
H226
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.|Product: Offer surplus and non-recyclable solutions to a licensed disposal company. Burn in a chemical incinerator equipped with an afterburner and scrubber but exert extra care in igniting as this material is highly flammable. Contact a licensed professional waste disposal service to dispose of this material. Contaminated packaging: Dispose of as unused product.
Incompatible materials: Strong oxidizing agents, strong reducing agents, strong bases.|Can react with oxidizing materials.
Octanal is a food additive permitted for direct addition to food for human consumption as a synthetic flavoring substance and adjuvant in accordance with the following conditions: 1) the quantity added to food does not exceed the amount reasonably required to accomplish its intended physical, nutritive, or other technical effect in food, and 2) when intended for use in or on food it is of appropriate food grade and is prepared and handled as a food ingredient.
Excerpt from ERG Guide 129 [Flammable Liquids (Water-Miscible / Noxious)]: HIGHLY FLAMMABLE: Will be easily ignited by heat, sparks or flames. Vapors may form explosive mixtures with air. Vapors may travel to source of ignition and flash back. Most vapors are heavier than air. They will spread along ground and collect in low or confined areas (sewers, basements, tanks). Vapor explosion hazard indoors, outdoors or in sewers. Those substances designated with a (P) may polymerize explosively when heated or involved in a fire. Runoff to sewer may create fire or explosion hazard. Containers may explode when heated. Many liquids are lighter than water. (ERG, 2016)
|Warning|H226 (93.16%): Flammable liquid and vapor [Warning Flammable liquids]|P210, P233, P240, P241, P242, P243, P264, P273, P280, P302+P352, P303+P361+P353, P305+P351+P338, P321, P332+P313, P337+P313, P362, P370+P378, P391, P403+P235, and P501|Aggregated GHS information provided by 1886 companies from 20 notifications to the ECHA C&L Inventory. Each notification may be associated with multiple companies.|H226: Flammable liquid and vapor [Warning Flammable liquids]|P210, P233, P240, P241, P242, P243, P280, P303+P361+P353, P370+P378, P403+P235, and P501
Excerpt from ERG Guide 129 [Flammable Liquids (Water-Miscible / Noxious)]: As an immediate precautionary measure, isolate spill or leak area for at least 50 meters (150 feet) in all directions. LARGE SPILL: Consider initial downwind evacuation for at least 300 meters (1000 feet). 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)
Excerpt from ERG Guide 129 [Flammable Liquids (Water-Miscible / Noxious)]: ELIMINATE all ignition sources (no smoking, flares, sparks or flames in immediate area). All equipment used when handling the product must be grounded. Do not touch or walk through spilled material. Stop leak if you can do it without risk. Prevent entry into waterways, sewers, basements or confined areas. A vapor-suppressing foam may be used to reduce vapors. Absorb or cover with dry earth, sand or other non-combustible material and transfer to containers. Use clean, non-sparking tools to collect absorbed material. LARGE SPILL: Dike far ahead of liquid spill for later disposal. Water spray may reduce vapor, but may not prevent ignition in closed spaces. (ERG, 2016)
Rubber gloves; safety goggles or face shield. (USCG, 1999)|Eye/face protection: Face shield and safety glasses. Use equipment for eye protection tested and approved under appropriate government standards such as NIOSH (US) or EN 166 (EU).|Handle with gloves.|Body Protection: Impervious clothing. Flame retardant antistatic protective clothing. The type of protective equipment must be selected according to the concentration and amount of the dangerous substance at the specific workplace.|Respiratory protection: Where risk assessment shows air-purifying respirators are appropriate use a full-face respirator with multipurpose combination (US) or type ABEK (EN 14387) respirator cartridges as a backup to engineering controls. If the respirator is the sole means of protection, use a full-face supplied air respirator. Use respirators and components tested and approved under appropriate government standards such as NIOSH (US) or CEN (EU).
Flammable liquid when exposed to heat, sparks, or flame|Moderate fire risk. Combustible.
Suitable extinguishing media: Dry powder, dry sand. Unsuitable extinguishing media: Do NOT use water jet.|Advice for firefighters: Wear self-contained breathing apparatus for firefighting if necessary.|To fight fire, use foam, carbon dioxide, dry chemical.
ACCIDENTAL RELEASE MEASURES: Personal precautions, protective equipment and emergency procedures: Use personal protective equipment. Avoid breathing vapors, mist or gas. Ensure adequate ventilation. Remove all sources of ignition. Beware of vapors accumulating to form explosive concentrations. Vapors can accumulate in low areas. Environmental precautions: Prevent further leakage or spillage if safe to do so. Do not let product enter drains. Discharge into the environment must be avoided. Methods and materials for containment and cleaning up: Contain spillage, and then collect with non-combustible absorbent material, (e.g. sand, earth, diatomaceous earth, vermiculite) and place in container for disposal according to local/national regulations.
ACCIDENTAL RELEASE MEASURES: Personal precautions, protective equipment and emergency procedures: Use personal protective equipment. Avoid breathing vapors, mist or gas. Ensure adequate ventilation. Remove all sources of ignition. Beware of vapors accumulating to form explosive concentrations. Vapors can accumulate in low areas. Environmental precautions: Prevent further leakage or spillage if safe to do so. Do not let product enter drains. Discharge into the environment must be avoided.|Precautions for safe handling: Avoid contact with skin and eyes. Avoid inhalation of vapor or mist. Keep away from sources of ignition - No smoking. Take measures to prevent the build up of electrostatic charge.|Appropriate engineering controls: Handle in accordance with good industrial hygiene and safety practice. Wash hands before breaks and at the end of workday.|Gloves must be inspected prior to use. Use proper glove removal technique (without touching glove's outer surface) to avoid skin contact with this product. Dispose of contaminated gloves after use in accordance with applicable laws and good laboratory practices. Wash and dry hands.|SRP: The scientific literature for the use of contact lenses by industrial workers is inconsistent. The benefits 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.
/GUIDE 129 FLAMMABLE LIQUIDS (Water-Miscible/Noxious)/ Fire or Explosion: HIGHLY FLAMMABLE: Will be easily ignited by heat, sparks or flames. Vapors may form explosive mixtures with air. Vapors may travel to source of ignition and flash back. Most vapors are heavier than air. They will spread along ground and collect in low or confined areas (sewers, basements, tanks). Vapor explosion hazard indoors, outdoors or in sewers. Those substances designated with a (P) may polymerize explosively when heated or involved in a fire. Runoff to sewer may create fire or explosion hazard. Containers may explode when heated. Many liquids are lighter than water. /Ethylhexaldehydes; Octyl aldehydes/|/GUIDE 129 FLAMMABLE LIQUIDS (Water-Miscible/Noxious)/ Health: May cause toxic effects if inhaled or absorbed through skin. Inhalation or contact with material may irritate or burn skin and eyes. Fire will produce irritating, corrosive and/or toxic gases. Vapors may cause dizziness or suffocation. Runoff from fire control or dilution water may cause pollution. /Ethylhexaldehydes; Octyl aldehydes/|/GUIDE 129 FLAMMABLE LIQUIDS (Water-Miscible/Noxious)/ Public Safety: CALL Emergency Response Telephone Number on Shipping Paper first. If Shipping Paper not available or no answer, refer to appropriate telephone number listed on the inside back cover. As an immediate precautionary measure, isolate spill or leak area for at least 50 meters (150 feet) in all directions. Keep unauthorized personnel away. Stay upwind, uphill and/or upstream. Ventilate closed spaces before entering. /Ethylhexaldehydes; Octyl aldehydes/|/GUIDE 129 FLAMMABLE LIQUIDS (Water-Miscible/Noxious)/ Protective Clothing: Wear positive pressure self-contained breathing apparatus (SCBA). Structural firefighters' protective clothing will only provide limited protection. /Ethylhexaldehydes; Octyl aldehydes/|For more DOT Emergency Guidelines (Complete) data for Octylaldehyde (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. Octyl aldehydes is included on the dangerous goods list. /Octyl aldehydes/|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. Octyl aldehydes is included on the dangerous goods list. /Octyl aldehydes/
A skin and eye irritant.
| 0 - Materials that, under emergency conditions, would offer no hazard beyond that of ordinary combustible materials.| 2 - Materials that must be moderately heated or exposed to relatively high ambient temperatures before ignition can occur. Materials would not under normal conditions form hazardous atmospheres with air, but under high ambient temperatures or under moderate heating could release vapor in sufficient quantities to produce hazardous atmospheres with air.| 0 - Materials that in themselves are normally stable, even under fire conditions.
Octylaldehyde was identified, not quantified, in rush hour traffic air samples taken at the Oakland-San Francisco Bay Bridge toll plaza April 23, 2001, 5-7PM, April 24, 2001, 6-10AM, and 3-7PM(1). Octylaldehyde was emitted in the exhaust gases from a diesel engine at unreported concentrations(2). Octylaldehyde was measured in the emissions of medium duty diesel trucks at a rate of 3,100 ug/km in the gas phase(3). Octylaldehyde was measured in the emissions of gasoline powered motor vehicles at a rate of 190 ug/km and 2,600 ug/km for catalyst equipped engines and non-catalyst equipped engines(4).
URBAN/SUBURBAN: Air samples were collected in Milan in Feb, Rome in Sept, and Taranto in Aug 1991, located in northern, central, and southern Italy, respectively. Concentrations of octylaldehyde were 0.36-0.40, 0.13-1.14, and 0.46-1.05 ppbv in Milan, Rome, and Taranto, respectively(1). Seven suburban air samples taken Aug 1991 from the town of Montelibretti, Italy, contained octylaldehyde at concentrations of 0.14-0.89 ppbv(1). Octylaldehyde was detected in ambient air in The Netherlands at a mean concentration of 0.05 ppb with a maximum of 0.50 ppb(2). Octylaldehyde was not detected in samples taken at the top of an 11-story building on the campus of Hong Kong University Science and Technology, Kowloon, Hong Kong(3). Octylaldehyde was detected at an avg of 0.32 ppb in 12 of 13 Helsinki samples tested May to Sep 1997(4).|INDOOR AIR: Octylaldehyde was detected in residential, indoor air at concentrations ranging from not detected to 22 ug/cu m(1). 46% of indoor air samples taken from residential housing contained octylaldehyde at an avg concentration of 4.63 ug/cu m(2). Indoor air sampled from new or recently renovated buildings contained octylaldehyde at 287 ug/cu m(3). Octylaldehyde was found at 1.4-3.6 ppb in new manufactured and at 1.4-7.2 ppb in site-built houses(4). Octylaldehyde was found in 15 of 15 indoor residences at an avg concentration of 0.95 ppb and 9 of 9 work places at an avg concentration of 0.61 ppb in Helsinki, Finland samples tested May to September 1997(5). Octylaldehyde was detected not quantified inside the vehicles of 50 late shift patrol cars sampled from August 13 to October 11, 2001(6).|RURAL/REMOTE: Two rural sites in Italy, Monti Cimini Forest and Lido di Ostia had octylaldehyde concentrations of 0.91-1.83 ppbv from 11 samples taken Aug 1990, and 0.57-2.32 ppbv from 4 samples taken Feb 1992, respectively(1). Four air samples collected from a large forest area near Storkow, East Germany, July 1991, contained octylaldehyde at concentrations of 0.13-0.81 ppbv(1). Outdoor air from the Kanawha Valley, West Virginia contained octylaldehyde from trace amounts to 1,044 ng/cu m(2). Air samples from a rural forested site in the Sierra Nevada Mountains, California, contained octylaldehyde at unreported concentrations(3). Octylaldehyde was detected, not quantified in air samples taken from the Southern Black Forest, Germany(4).|SOURCE DOMINATED: Octylaldehyde was detected in kitchen exhaust at concentrations of 1.09-4.32 ppbv(1). Octylaldehyde was measured in the emissions accumulated in the headspace of a sealed vessel over 7 days of storage of carbonized refuse-derived fuel at concentrations of 1480 ug/kg(2).
Octylaldehyde was detected, not quantified in settled household dust samples collected from 12 houses in urban areas of central Finland(1).
Toxicity
practically nontoxic
IDENTIFICATION AND USE: Octylaldehyde (Octanal) is a colorless liquid. It is employed in the perfume industry for the preparation of synthetic citrus oils and for the synthesis of alpha-hexylcinnamaldehyde. HUMAN STUDIES: In vitro in human A549 cells octanal affects the expression of several chemokines and inflammatory cytokines and increases the levels of interleukin 6 (IL-6) and IL-8 released. Microarray analysis identified 15 miRNAs that were differentially expressed in octanal-exposed A549 human alveolar cells. ANIMAL STUDIES: It induced a significant decrease in the number of live pups in rats but only at a dose which causes maternal toxicity. Octanal was tested in Salmonella typhimurium TA98, TA100, TA1535 and TA1537 with and without metabolic activation. No cytotoxic or genotoxic effects were observed. ECOTOXICITY STUDIES: A membrane damage mechanism involving membrane peroxidation might contribute to the antifungal activity of octanal against P. digitatum spores. Aflatoxin production by the fungus Aspergillus parasiticus was stimulated by octanal.
The effects of 16 aliphatic aldehydes with 3-10 carbons on the growth and patulin production of Penicillium expansum were examined. When P. expansum spores were inoculated into apple juice broth, some alkenals, including 2-propenal, (E)-2-butenal, (E)-2-pentenal, and (E)-2-hexenal, inhibited fungal growth and patulin production. Their minimal inhibitory concentrations were 5, 50, 80, and 80 ug/mL respectively. Vital staining indicated that these alkenals killed mycelia within 4 hr. Treatment of the spores with these aldehydes also resulted in rapid loss of germination ability, within 0.5-2 d. On the other hand, aliphatic aldehydes with 8-10 carbons significantly enhanced patulin production without affecting fungal growth: 300 ug/mL of octanal and 100 ug/mL of (E)-2-octenal increased the patulin concentrations in the culture broth by as much as 8.6- and 7.8-fold as compared to that of the control culture respectively. The expression of the genes involved in patulin biosynthesis in P. expansum was investigated in mycelia cultured in apple juice broth containing 300 ug/mL of octanal for 3.5, 5, and 7 d. Transcription of the msas gene, encoding 6-methylsalicylic acid synthase, which catalyzed the first step in the patulin biosynthetic pathway was remarkably high in the 3.5-d and 5-d-old cultures as compared with the control. However, octanal did not any increase the transcription of the msas in the 7-d-old culture or that of the other two genes, IDH and the peab1, in culture. Thus the enhanced patulin accumulation with supplementation with these aldehydes is attributable to the increased amount of the msas transcript.
LD50 Rabbit dermal 6350 mg/kg|LD50 Rat oral 5630 mg/kg
Octylaldehyde occurs in several citrus oils, such as orange oil(1). Octylaldehyde has been detected in the essential oils of sweet orange, bitter orange, mandarin, tangerine, grapefruit, Mexican lime, lemon, Taiwan citronella, rose, lemongrass, Pinus sabiniana, P. jefferyi, Xanthoxylum rhesta, lime petigrain, clary sage, and lavandin(2).|Octylaldehyde is listed as a component of oils from navel oranges, Valencia oranges, midseason oranges, tangerines and white grapefruits(1), in kiwi fruit flowers(2) and cassava(3). Octylaldehyde was detected in Cyperus esculentus L.(4), in the emissions of many tree species(5,6) from rape during the blooming season(7) and in musty sorghum(8).
Octylaldehyde's production and use as a flavoring ingredient (1), in perfumery(2,3), in artificial citrus oils(3), and for the synthesis of alpha-hexylcinnamaldehyde(4) may result in its release to the environment through various waste streams(SRC).
TERRESTRIAL FATE: Based on a classification scheme(1), an estimated Koc value of 290(SRC), determined from a log Kow of 3.5(2) and a regression-derived equation(3), indicates that octylaldehyde is expected to have moderate mobility in soil(SRC). Volatilization of octylaldehyde from moist soil surfaces is expected to be an important fate process(SRC) given a Henry's Law constant of 5.14X10-4 atm-cu m/mole(4). Octylaldehyde has a vapor pressure of 0.6 mm Hg(2) and exists as a liquid under environmental conditions; therefore, octylaldehyde may volatilize from dry soil. Utilizing the Zahn-Wellens test, 77% degradation was reached using an activated sludge inoculum after 28 days(5) which indicates this compound is expected to biodegrade under certain environmental conditions in soil(SRC).|AQUATIC FATE: Based on a classification scheme(1), an estimated Koc value of 290(SRC), determined from a log Kow of 3.5(2) and a regression-derived equation(3), indicates that octylaldehyde may adsorb to suspended solids and sediment(SRC). Volatilization from water surfaces is expected(4) based upon a estimated Henry's Law constant of 5.14X10-4 atm-cu m/mole(5). Using this Henry's Law constant and an estimation method(3), volatilization half-lives for a model river and model lake are 5 hours and 5 days, respectively(SRC). According to a classification scheme(6), an estimated BCF of 60(SRC), from its log Kow(2) and a regression-derived equation(3), suggests the potential for bioconcentration in aquatic organisms is moderate(SRC). Utilizing the Zahn-Wellens test, 77% degradation was reached using an activated sludge inoculum after 28 days(7) which indicates this compound is expected to biodegrade under certain environmental conditions in water(SRC).|ATMOSPHERIC FATE: According to a model of gas/particle partitioning of semivolatile organic compounds in the atmosphere(1), octylaldehyde, which has a vapor pressure of 0.6 mm Hg at 20 °C(2), will exist solely in the vapor phase in the ambient atmosphere. Vapor-phase octylaldehyde 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 12 hours(SRC), calculated from its rate constant of 3.2X10-11 cu cm/molecule-sec at 25 °C(SRC) that was derived using a structure estimation method(3). Octylaldehyde does not contain chromophores that absorb at wavelengths >290 nm(4) and, therefore, is not expected to be susceptible to direct photolysis by sunlight(SRC).
The rate constant for the vapor-phase reaction of octylaldehyde with photochemically-produced hydroxyl radicals has been estimated as 3.2X10-11 cu cm/molecule-sec at 25 °C(SRC) using a structure estimation method(1). This corresponds to an atmospheric half-life of about 12 hours at an atmospheric concentration of 5X10+5 hydroxyl radicals per cu cm(1). Octylaldehyde is not expected to undergo hydrolysis in the environment due to the lack of functional groups that hydrolyze under environmental conditions(2). Octylaldehyde does not contain chromophores that absorb at wavelengths >290 nm(2) and, therefore, is not expected to be susceptible to direct photolysis by sunlight(SRC).
An estimated BCF of 60 was calculated in fish for octylaldehyde(SRC), using a log Kow of 3.5(1) and a regression-derived equation(2). According to a classification scheme(3), this BCF suggests the potential for bioconcentration in aquatic organisms is moderate(SRC).
The Koc of octylaldehyde is estimated as 290(SRC), using a log Kow of 3.5(1) and a regression-derived equation(2). According to a classification scheme(3), this estimated Koc value suggests that octylaldehyde is expected to have moderate mobility in soil(SRC).
The Henry's Law constant for octylaldehyde is 5.14X10-4 atm-cu m/mole(1). This Henry's Law constant indicates that octylaldehyde 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 5 hours(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 5 days(SRC). Octylaldehyde's Henry's Law constant indicates that volatilization from moist soil surfaces may occur(SRC). Octylaldehyde has a vapor pressure of 0.6 mm Hg(3) and exists as a liquid under environmental conditions; therefore, octylaldehyde may volatilize from dry soil(SRC).
GROUNDWATER: Water quality data compiled from the Retrieval (STORET) Data Warehouse reports groundwater monitoring data for octylaldehyde. Octylaldehyde was detected in 3 of 3 routine samples collected at the Palermo Wellfield Superfund Site on October 10, 2016 at depths of 53.5, 69.5 and 88.5 ft at concentrations of 1.19, 1.69 and 7.16 ug/L(1).|DRINKING WATER: Octylaldehyde was detected in samples collected from 7 different treatment steps of a drinking water treatment plant at concentrations of 0.46, 0.60, 0.44, 0.30, 0.42, 0.41 and 0.49 at the raw water, post-ozonation, coagulation/flocculation, sand filtration, main ozonation, granular activated carbon filter step and final chlorination step in the plant, receptively(1). Octylaldehyde was identified as an ozone disinfection by-product in drinking water samples from a pilot plant in Jefferson Parish, LA which uses Mississippi River as the raw water source; samples were collected following 4 rounds of ozonation treatment performed in January, 1994, August 1994, May 1995, and September 1996(2). Octylaldehyde was not detected when using ozone, ozone with bromide, chloramination, chloramination with bromide, chlorine dioxide, chlorine dioxide with bromide, chlorine, and chlorine with bromide treatments; it was suggested that the bromine consumes some of the disinfectants and results in a small reduction in oxidizing power(3).|SURFACE WATER: Octylaldehyde was measured in surface water from the Los Angeles Aqueduct; raw water contained 47 ng/L, post ozonation (ozone at 1 mg/L) water contained 214 ng/L, and finished water contained 209 ng/L octylaldehyde(1). The Southern California State Project Water, which sampled both finished and raw water, did not report measurable concentrations of octylaldehyde(1). Water samples taken from the Glatt River, Switzerland, contained octylaldehyde at unreported concentrations(2).|SEAWATER: Octylaldehyde was detected in coastal surface waters offshore from Peru, possibly from biogenic sources(1). Octylaldehyde was detected in seawater from a nearshore region in Vineyard Sound, MA at a mean concentration of 12 ng/L (range = 3.6-42 ng/L)(2). Seawater from Vineyard Sound, MA was monitored from December through March; concentrations of octylaldehyde increased through January from 5 ng/kg to a maximum of 145 ng/kg in late February(3). Octylaldehyde was measured in coastal waters of the Gulf of Mexico (near the mouth of the Mississippi River) from 2-15 ng/kg(4).
Octylaldehyde has been reported in foods and beverages including, apple, apricot, many berries, guava, grapes, melon, papaya, celery, peas, potato, tomato, ginger, spearmint oil, hop oil, beer, rum, cider, white wine, cocoa, tea, roasted filberts and peanuts, pecans, oats, coconut products, soybean, avocado, passion fruit, starfruit, beans, mushroom, trassi, macadamia nut, sesame seed, mango, cauliflower, tamarind, loquat, angelica root oil and mastic gum oil(1).|Octylaldehyde was detected in peanut oil, heated to 200 °C, at unreported concentrations(1). Commercial rice cakes were found to contain 800-960 ppb of octylaldehyde(2). Octylaldehyde was identified in gari and farine, both products of cassava(3), in Beaufort cheese(4), roasted filberts(5), heated corn oil(6), kiwi fruit flowers(7), in both commercial and concentrated aqueous orange essences(8). Bisbee Delicious apples from Washington state emitted increasing concentrations of octylaldehyde through the end of August (to 1671.9 pL/kg-hr) but concentrations decreased in apples harvested after this point (to 32.4-141.9 pL/kg-hr)(9). Octylaldehyde was detected in raw and roasted earth almonds (Cyperus esculentus L.)(10). Octylaldehyde was detected in the emissions from heated rapeseed oil(11).Commercial samples of California navel orange, Florida Valencia orange, midseason orange, tangerine, and white grapefruit cold-pressed oils contained 0.161, 0.449, 0.358, 0.371, 0.493 wt% octylaldehyde, respectively(12). Octylaldehyde was detected in whole and ground musty sorghum with direct helium-purge method and with supercritical fluid extraction method(13).|Octylaldehyde was identified as a volatile component of raw beef(1) and in scrambled eggs(2) at unreported concentrations. Octylaldehyde was measured at 999 ng/g and 1080 ng/g in big eyed herring paste and hair tail viscera paste, and was not detected in anchovy paste or shrimp paste(3). Octylaldehyde was detected in full fat and reduced fat frankfurters(4), Italian-type dry-cured ham(5), and as an odorant in cooked mussels (Mytilus edulis)(6). Octylaldehyde was released from charbroiling meat at 146,000 ug/kg of cooked meat(7). Aroma concentrates of uncured beef and chicken contained 0.69 mg/kg and 5.08 mg/kg octylaldehyde, respectively(8). Octylaldehyde was isolated as a volatile component of duck meat at 9.3 ppb, duck fat at 13.64 ppb, Cantonese style roasted duck at 9.66 ppb and Cantonese style roasted duck gravy at 38.08 ppb(9).|Octylaldehyde has been reported in cooked eggs and meats(1). Octylaldehyde has been detected in foal meat at increasing levels upon aging(2).
Octylaldehyde has been reported in cheeses, butter and milk(1). Four of eight samples of human milk, from women living in Bayonne and Jersey City, New Jersey; Pittsburgh, PA; Baton Rouge, LA; Charleston, WV, contained octylaldehyde at unreported concentrations(2).
According to the 2016 TSCA Inventory Update Reporting data, 1 of 4 reporting facilities estimate the number of persons reasonably likely to be exposed during the manufacturing, processing, or use of octylaldehyde in the United States may be as low as 10 workers and as high as 25 workers per plant; the data may be greatly underestimated due to confidential business information (CBI) or unknown values(1).|NIOSH (NOES Survey 1981-1983) has statistically estimated that 26,226 workers (15,661 of these were female) were potentially exposed to octylaldehyde in the US(1). Occupational exposure to octylaldehyde may occur through inhalation and dermal contact with this compound at workplaces where octylaldehyde is produced or used. Monitoring data and use information indicate that the general population may be exposed to octylaldehyde via inhalation of ambient air, ingestion of food and drinking water, and dermal contact with products containing octylaldehyde(SRC).|Octylaldehyde was found in 15 of 15 personal air samples at an average concentration of 0.61 ppb from samples taken in Helsinki, Finland, tested May to September 1997(1).
Four of eight samples of human milk, from women living in Bayonne and Jersey City, New Jersey; Pittsburgh, PA; Baton Rouge, LA; Charleston, WV, contained octylaldehyde at unreported concentrations(1).
Drug Information
Rats were nose exposed to an atmosphere containing 11.4 ppm of (11)C-octanal for 2 min. Inhaled octanal was absorbed from the lungs in a biphasic manner and the greatest concentration of octanal occurred in most tissues at 5 min. Tissue activities calculated on the basis of the administered dose and on the radiolabel retained until the animal was killed indicated a redistribution of the radiolabel as metabolic products after 20 min. The labeled carbon was eliminated in a biphasic manner as (11)CO2, which accounted for essentially all of the activity lost by the exposed rats.
Inhalation may be irritating to mucous membrane; overexposure may cause dizziness and collapse. Ingestion causes irritation of mouth and stomach. Contact with eyes or skin causes irritation. (USCG, 1999)
Call for medical aid. INHALATION: Remove victim to fresh air; give oxygen if breathing is difficult. EYES: Irrigate immediately for 15 min. with water, lifting lids occasionally. SKIN: Flush with water; wash with soap and water. (USCG, 1999)
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. /Aldehydes 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. Aggressive airway management may be necessary. Administer oxygen by nonrebreather mask at 10 to 15 L/min. Anticipate seizures and treat if necessary ... . Monitor for shock and treat if necessary ... . Monitor for pulmonary edema 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 ... . /Aldehydes and Related Compounds/|Advanced treatment: Consider Consider orotracheal or nasotracheal intubation for airway control in the patient who is unconscious, has severe pulmonary edema, or is in severe respiratory distress. Intubation should be considered at the first sign of upper airway obstruction caused by 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 ... . 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 ... . Treat seizures with diazepam (Valium) or lorazepam (Ativan) ... . Use proparacaine hydrochloride to assist eye irrigation ... . /Aldehydes and Related Compounds/
/ALTERNATIVE and IN VITRO TESTS/ ... In this study, we aimed to identify octanal (OC)-sensitive miRNAs and to characterize the relationships between miRNAs and expression of candidate genes involved in OC-induced toxicity. Microarray analysis identified 15 miRNAs that were differentially expressed in OC-exposed A549 human alveolar cells. Integrated analyses of miRNA and mRNA expression profiles identified significant miRNA-mRNA anti-correlations. GO analysis of 101 putative target genes showed that the biological category 'MAPK signaling pathway' was prominently annotated. Moreover, we detected increased phosphorylation of p38 MAPK in the OC-exposed group. By integrating the transcriptome and microRNAome, we provide evidence that OC can affect MAPK-induced toxicity signaling. Therefore, this study demonstrates the added value of an integrated miRNA-mRNA approach for identifying molecular events induced by environmental pollutants in an in vitro human model.|/ALTERNATIVE and IN VITRO TESTS/ Inhalation is an important route of aldehyde exposure, and lung is one of the main targets of aldehyde toxicity. Octanal is distributed ubiquitously in the environment and is a component of indoor air pollutants. We investigated whether octanal exposure enhances the inflammatory response in the human respiratory system by increasing the expression and release of cytokines and chemokines. The effect of octanal in transcriptomic modulation was assessed in the human alveolar epithelial cell line A549 using oligonucleotide arrays. We identified a set of genes differentially expressed upon octanal exposure that may be useful for monitoring octanal pulmonary toxicity. These genes were classified according to the Gene Ontology functional category and Kyoto Encyclopedia of Genes and Genomes analysis to explore the biological processes related to octanal-induced pulmonary toxicity. The results show that octanal affects the expression of several chemokines and inflammatory cytokines and increases the levels of interleukin 6 (IL-6) and IL-8 released. In conclusion, octanal exposure modulates the expression of cytokines and chemokines important in the development of lung injury and disease. This suggests that inflammation contributes to octanal-induced lung damage and that the inflammatory genes expressed should be studied in detail, thereby laying the groundwork for future biomonitoring studies.
caprylic aldehyde
Octanal Use and Manufacturing
Octanol or caprylic acid can be used as raw materials. Octanol is oxidized to produce octanal in the presence of a copper-chromium catalyst. There are many methods for producing caprylic acid by caprylic acid, such as mixing caprylic acid vapor with excess formic acid vapor and passing titanium oxide or manganese oxide catalyst at 300°C to obtain caprylic aldehyde with a yield of 90%.
GB 2760-1996 stipulates that it is temporarily allowed to use food flavors. Mainly used to prepare apricot, plum, cream, chocolate, grape and citrus flavors. The dosage is generally less than 10mg/kg, so as not to produce bad oil smell.
Flavor and Fragrance
Air care products
10,000,000 - 50,000,000 lb|(1975) 3.18X10+6 GRAMS|(1979) PROBABLY GREATER THAN 9.08X10+5 GRAMS|Octanal is listed as a High Production Volume (HPV) chemical (65FR81686). Chemicals listed as HPV were produced in or imported into the U.S. in >1 million pounds in 1990 and/or 1994. The HPV list is based on the 1990 Inventory Update Rule. (IUR) (40 CFR part 710 subpart B; 51FR21438).|Production volumes for non-confidential chemicals reported under the Inventory Update Rule. [Table#5202]|Non-confidential 2016 Chemical Data Reporting (CDR) information on the production and use of chemicals manufactured or imported into the United States. Chemical: Octanal:
Grade: Technical, FCC
All other basic organic chemical manufacturing|Octanal: ACTIVE
EMSLC Method #554. Determination of Carbonyl Compounds in Drinking Water by Dinitrophenyl Hydrazine Derivatization and High Performance Liquid Chromatography. Revision 1.0. Detection limit = 6 ug/L.|OSW Method #8315. Determination of Carbonyl Compounds by High Performance Liquid Chromatography (HPLC). Detection limit = 6.9 ug/L.|OSW Method #8315A. Determination of Carbonyl Compounds by High Performance Liquid Chromatography (HPLC) Using Liquid-Liquid Extraction. Procedure 1 is for analysis of aqueous, soil, waste, and stack samples. Detection limit for procedure 1 = 9.9 ug/L. Procedure 2 is for analysis of indoor air samples. Detection limit for procedure 2 = 6.9 ug/L.|Method: EPA-TSC/NERL 556; Procedure: gas chromatography with electron capture detector; Analyte: octanal; Matrix: finished drinking water and raw source water; Detection Limit: 0.6 ug/L.|Method: EPA-OGWDW/TSC 556.1; Procedure: fast gas chromatography system equipped with an electron capture detector; Analyte: octanal; Matrix: finished drinking water and raw source water; Detection Limit: 0.22 ug/L.
Lipid peroxidation has been linked to the etiology of several diseases, including Alzheimer's disease (AD). End products of this phenomenon include low molecular weight, water-soluble aldehydes, compounds that covalently modify proteins and nucleic acids, thereby altering function. Aliphatic aldehydes (C3-C10) are generated during lipid peroxidation, along with alpha,beta-unsaturated aldehydes, including acrolein and 4-hydroxynonenal (HNE). The Hantzsch reaction was used to produce heterocyclic aldehyde derivatives that can be conveniently analyzed with mass spectrometry. Liquid chromatographic analyses revealed increasing retention times from derivatized methanal to octanal. HNE derivatives were observed to elute between heptanal and octanal derivatives, while the acrolein derivatives had a retention time similar to the propanal derivative. Smaller aliphatic aldehyde derivatives fragmented in a similar manner to produce a base peak of m/z 273, while the larger derivatives yielded m/z 274 as the base peak. Acrolein and HNE derivatives fragmented in a slightly different manner compared to their aliphatic counterparts. Calibration plots of aliphatic and unsaturated aldehydes were linear (r2 >/= 0.99) in the concentration range explored (approximately 5-1500 pg on column). The LC-MS/MS methodology developed here will be used in subsequent studies to determine aldehyde concentrations for comparing age-matched controls to AD tissues from human subjects.
EPA Safer Chemical Functional Use Classes -> Fragrances|Safer Chemical Classes -> Yellow triangle - The chemical has met Safer Choice Criteria for its functional ingredient-class, but has some hazard profile issues|Food additives -> Flavoring Agents|Flavouring Agent -> FLAVOURING_AGENT; -> JECFA Functional Classes|Flavoring Agents -> JECFA Flavorings Index|Fatty Acyls [FA] -> Fatty aldehydes [FA06]
Flavoring Agents|Flavouring Agent -> FLAVOURING_AGENT;
Computed Properties
Molecular Weight:128.21
XLogP3:2.7
Hydrogen Bond Acceptor Count:1
Rotatable Bond Count:6
Exact Mass:128.120115130
Monoisotopic Mass:128.120115130
Topological Polar Surface Area:17.1
Heavy Atom Count:9
Complexity:59.6
Covalently-Bonded Unit Count:1
Compound Is Canonicalized:Yes
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