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EC number: 940-223-9 | CAS number: -
- Life Cycle description
- Uses advised against
- Endpoint summary
- Appearance / physical state / colour
- Melting point / freezing point
- Boiling point
- Density
- Particle size distribution (Granulometry)
- Vapour pressure
- Partition coefficient
- Water solubility
- Solubility in organic solvents / fat solubility
- Surface tension
- Flash point
- Auto flammability
- Flammability
- Explosiveness
- Oxidising properties
- Oxidation reduction potential
- Stability in organic solvents and identity of relevant degradation products
- Storage stability and reactivity towards container material
- Stability: thermal, sunlight, metals
- pH
- Dissociation constant
- Viscosity
- Additional physico-chemical information
- Additional physico-chemical properties of nanomaterials
- Nanomaterial agglomeration / aggregation
- Nanomaterial crystalline phase
- Nanomaterial crystallite and grain size
- Nanomaterial aspect ratio / shape
- Nanomaterial specific surface area
- Nanomaterial Zeta potential
- Nanomaterial surface chemistry
- Nanomaterial dustiness
- Nanomaterial porosity
- Nanomaterial pour density
- Nanomaterial photocatalytic activity
- Nanomaterial radical formation potential
- Nanomaterial catalytic activity
- Endpoint summary
- Stability
- Biodegradation
- Bioaccumulation
- Transport and distribution
- Environmental data
- Additional information on environmental fate and behaviour
- Ecotoxicological Summary
- Aquatic toxicity
- Endpoint summary
- Short-term toxicity to fish
- Long-term toxicity to fish
- Short-term toxicity to aquatic invertebrates
- Long-term toxicity to aquatic invertebrates
- Toxicity to aquatic algae and cyanobacteria
- Toxicity to aquatic plants other than algae
- Toxicity to microorganisms
- Endocrine disrupter testing in aquatic vertebrates – in vivo
- Toxicity to other aquatic organisms
- Sediment toxicity
- Terrestrial toxicity
- Biological effects monitoring
- Biotransformation and kinetics
- Additional ecotoxological information
- Toxicological Summary
- Toxicokinetics, metabolism and distribution
- Acute Toxicity
- Irritation / corrosion
- Sensitisation
- Repeated dose toxicity
- Genetic toxicity
- Carcinogenicity
- Toxicity to reproduction
- Specific investigations
- Exposure related observations in humans
- Toxic effects on livestock and pets
- Additional toxicological data
Vapour pressure
Administrative data
Link to relevant study record(s)
Description of key information
Vapour pressure at 20°C: 0.00000000033 Pa (Read across from structural homologue "[938-147-6] Fatty acid chlorides, C8-14 (even numbered), reaction products with glycine ")
Key value for chemical safety assessment
- Vapour pressure:
- 0 Pa
- at the temperature of:
- 20 °C
Additional information
The vapour pressure of the structural homologue was determined according to the European Commission Regulation (EC) No. 440/2008, Part A: Methods for the determination of physico-chemical properties A.4. Vapour pressure (effusion method) and OECD test guideline OECD 104 (Vapour pressure).
The composition of the source material [938-147-6] Fatty acid chlorides, C8-14 (even numbered), reaction products with glycine only slightly deviates from the target material with regard to the C-chain distribution:
C-chain distribution of N-Alkanoyl glycin sodium constituents of the UVCB substances (normalised to 100%), melting ranges, boiling and physical state:
Source material (Glycine, N-coco acyl derivs., sodium salts) | Target Material | |
C8 | 4 -12 % | 3 -14% |
C10 | 5 -12 % | 4 -10% |
C12 | 55 -68 % | 75 - 90% |
C14 | 14 -24% | - |
C16 | < 8% | - |
melting range | 141 -190°C | 143 -174°C |
boiling behaviour | decomposition before boiling at 260°C | decomposition before boiling at 290°C |
phys. state | white crystalline solid | white crystalline solid |
Compared to the source material the content of the main C-homologue (C12) of the target material is increased, whereas longer C-chain lengths are not present in the target material. All other constituents are identical and are present at comparable concentrations. The melting ranges and boiling behaviour of both substances are comparable. Therefore, it is reasonable to conclude that the vapour pressures of source and target materials are in the same order of magnitude.
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