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111-71-7
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???(??):
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Heptaldehyde
???(??):
HEPTANAL;N-HEPTANAL;N-HEPTALDEHYDE;FEMA 2541;1-HEPTALDEHYDE;FEMA 2542;ENANTHALDEHYDE;HEPTYL ALDEHYDE;ENANTHAL;FEMA 2540
CBNumber:
CB2451916
???:
C7H14O
??? ??:
114.19
MOL ??:
111-71-7.mol
MSDS ??:
SDS

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???
-43 °C (lit.)
?? ?
153 °C (lit.)
??
0.817 g/mL at 25 °C (lit.)
???
3 hPa (20 °C)
FEMA
2540 | HEPTANAL
???
n20/D 1.413(lit.)
???
95 °F
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Flammables area
???
1.25g/l ???
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??, ?? ?? ???
??
???? ?? ???-????
??
????? ??? ? 1.00%. ??? ????? ?? ?? ?? ??-? ??
???? ??
synthetic
?? ??
??
????
1.1-5.2%(V)
Odor Threshold
0.00018ppm
???
???
??
Cp(liquid): 2.02 J/(g·K), at 25℃
????
0.146 W/(m·K) at 25 ℃
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Hygroscopic
Merck
14,4658
JECFA Number
95
BRN
1560236
Henry's Law Constant
3.4×10-2 mol/(m3Pa) at 25℃, Brockbank (2013)
Dielectric constant
9.1(Ambient)
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????. ?? ??? ? ????. ??? - ??? ?? ??? ???? ?????. ?? ???, ???, ?? ???? ???? ????.
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InChI
1S/C7H14O/c1-2-3-4-5-6-7-8/h7H,2-6H2,1H3
InChIKey
FXHGMKSSBGDXIY-UHFFFAOYSA-N
SMILES
CCCCCCC=O
LogP
2.8 at 20℃
CAS ??????
111-71-7(CAS DataBase Reference)
NIST
Heptanal(111-71-7)
EPA
Heptanal (111-71-7)
??
  • ?? ? ?? ??
  • ?? ? ???? ?? (GHS)
??? ?? Xi,N
?? ???? ?? 10-36/37/38-38-50/53
????? 26-36-37-16-61-60
????(UN No.) UN 3056
WGK ?? 1
RTECS ?? MI6900000
?? ?? ?? 250 °C
?? ?? ?? Irritant
TSCA TSCA listed
HS ?? 2912 19 00
?? ?? 3
???? III
???? ??? 3 - Flammable liquids
Hazard Classifications Aquatic Chronic 3
Flam. Liq. 3
Skin Irrit. 2
?? ?? ??? 111-71-7(Hazardous Substances Data)
?? LD50 orally in Rabbit: > 5000 mg/kg LD50 dermal Rabbit > 5000 mg/kg
???? ?? KE-18269
????(GHS): Flame (GHS02)Exclamation Mark (GHS07)
?? ?: Warning
??·?? ??:
?? ??·?? ?? ?? ?? ?? ?? ? ?? ?? P- ??
H226 ??? ?? ? ?? ??? ?? ?? 3 ??
H303 ??? ??? ? ?? ?? ?? ?? - ?? ?? 5 P312
H335 ?? ???? ??? ? ?? ?? ???? ?? - 1? ??;???? ?? ?? 3 ??
H401 ????? ??? ?? ????? ?? - ?? ?? 2 P273, P501
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P210 ?·???·??·????? ????? - ?? ???.
P233 ??? ??? ?????. ??? ??? ? ?? ?? ??? ???? ?????.
P240 ??? ????? ?? ? ??????.
P241 ?? ??? ??[???/??/??/...]?(?) ?????.
P242 ???? ???? ?? ??? ?????
P243 ??? ?? ??? ????.
P261 ??·?·??·???·??·...·????? ??? ????.
P264 ?? ??? ?? ??? ????.
P264 ?? ??? ?? ??? ????.
P271 ?? ?? ??? ? ?? ???? ?????.
P273 ???? ???? ???.
P280 ????/???/???/?????? ?????.
P303+P361+P353 ??(?? ????)? ??? ??? ?? ??? ??? ????? ??? ?? ????/?????.
P305+P351+P338 ?? ??? ? ?? ?? ???? ????. ???? ?????? ?????. ?? ????.
P312 ???? ??? ????(??)? ??? ????.
P332+P313 ?? ??? ??? ???? ??· ??? ????.
P337+P313 ?? ?? ??? ???? ???? ??· ??? ????.
P370+P378 ?? ? ?? ?? ?? (Section 5. ??, ??? ????? ??? ???)?(?) ?????.
P403+P233 ??? ??? ? ?? ?? ??? ???? ?????.
P403+P235 ??? ? ?? ?? ???? ???? ?????.
P405 ???? ?????.
P501 ...? ??? / ??? ?? ???.
NFPA 704
2
2 0

??? C??? ??, ??, ??

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Heptanal has a very strong, fatty, harsh, pungent odor and an unpleasant, fatty taste. Heptanal is obtained by distilling castor oil, preferably under reduced pressure.

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colourless liquid

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Heptanal is a constituent of the essential oils of ylang-ylang, clary sage, California lemon, bitter orange, rose and hyacinth Also reported found in cocoa, buckwheat, elderberry fruit and juice and babaco fruit (Carica pentagona Heilborn)

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Labelled Heptanal. Bioconversion of heptanal to heptanol by Saccharomyces cerevisiae and effect of C source maltose.

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Obtained by distilling castor oil, preferably under reduced pressure.

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A colorless, oily liquid with a penetrating fruity odor. Insoluble in water and less dense than water. Hence floats on water. Flash point near 141°F. Used to make perfumes and pharmaceuticals.

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Flammable. Insoluble in water.

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Heptaldehyde may undergo exothermic self-condensation or polymerization reactions in the presence of acids. May generate flammable and/or toxic gases with azo, diazo compounds, dithiocarbamates, nitrides, and strong reducing agents. Is readily oxidized to give heptanoic acid. Can react with air to give first peroxo acids, and ultimately heptanoic acid. These autoxidation reactions are activated by light, catalyzed by salts of transition metals, and are autocatalytic (catalyzed by the products of the reaction). The presence of stabilizers (antioxidants) retards autoxidation. Incompatible with strong oxidizers, bases and reducing agents.

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Combustible.

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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.

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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. Runoff to sewer may create fire or explosion hazard. Containers may explode when heated. Many liquids are lighter than water.

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Aldehyde C-7 (heptaldehyde) is readily oxidized in the animal body to the corresponding fatty acid, which then undergoes -oxidation and is eventually oxidized to carbon dioxide and water . Boyland was unable to detect pimelic acid in the urine of rats fed heptanal, indicating that the compound was probably completely oxidized in the body. The finding of tumour-inhibiting action by malonic acid supported the possibility of ω-oxidation leading to the formation of glutaric and malonic acids, although the intermediate pimelic acid was not isolated. Yoshida et al. found that heptanal was not utilized as an energy source by chicks when fed at 5% in the diet for 6 days, although the diet was palatable and caused no deaths. Direct evidence was obtained by Erwin & Deitrich for the oxidation in rat, monkey and bovine brain of heptanal and other aldehydes that may arise from biologically active amines in the brain. Aldehyde-oxidizing activity was present in all the areas of bovine brain studied. It was suggested that brain aldehyde dehydrogenase may be important in oxidizing aldehydes from exogenous sources.

Purification Methods

Dry n-heptaldehyde with CaSO4 or Na2SO4 and fractionally distil it under reduced pressure. More extensive purification is by precipitation as the bisulfite compound (formed by adding the aldehyde to saturated aqueous NaHSO3) which is filtered off and recrystallised from hot H2O. The crystals, after being filtered and washed well with H2O, are hydrolysed by adding 700mL of aqueous Na2CO3 (12.5% w/w of anhydrous Na2CO3) per 100g of aldehyde. The aldehyde is then steam distilled off, separated, dried with CuSO4 and distilled under reduced pressure in a slow stream of nitrogen. [McNesby & Davis J Am Chem Soc 76 2148 1954, Beilstein 1 H 695, 1 I 357, 1 II 750, 1 III 2844, 1 IV 3314.]

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