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DIMETHYLCYCLOHEXYLAMINE (DMCHA)

 

Dimethylcyclohexylamine (DMCHA) is also suitable for the manufacture of rigid foam furniture frames and decorative parts.
Dimethylcyclohexylamine (DMCHA) is used in polyurethane plastics and textiles.
Dimethylcyclohexylamine (DMCHA) is also used as a chemical intermediate.


CAS Number: 98-94-2
EC Number: 202-715-5
Molecular Formula: C8H17N
Molecular Weight: 127.23 g/mol

SYNONYMS:
Cyclohexyldimethylamine, Dimethylaminocyclohexane, N-Cyclohexyldimethylamine, Polycat 8, N,N-Dimethylcyclohexanamine, Cyclohexanamine, N,N-dimethyl-, N,N-Dimethylaminocyclohexane, N,N-Dimethyl-N-cyclohexylamine, Cyclohexylamine, N,N-dimethyl-, (Dimethylamino)Cyclohexane, Cyclohexyl(Dimethyl)Amine, Cyclohexyldimethylamine, Dimethylcyclohexylamine, N-Cyclohexyldimethylamine, N,N-Dimethyl-N-Cyclohexylamine, N,N-Dimethylaminocyclohexane, N,N-Dimethylcyclohexanamine, DMCHA, POLYCAT 8, Dimethylcyclohexylamine, LupragenN101, TEGOAMIN DMCHA, JEFFCAT DMCHA, DABCO DMCHA, KAOLIZER 10, TOYOCAT DMCHA, NIAX C-8, KAOLIZER 10, PCCAT DMCHA, DESMORAPID 726-B, AminCat DMCHA, LUPRAGEN(R) N 100, DMCHA, DIMETHYLAMINOCYCLOHEXANE, CYCLOHEXYLDIMETHYLAMINE, Cyclohexanamine,N,N-dimethyl-, Cyclohexylamine, N,N-dimethyl-, Cyclohexylamine,N,N-dimethyl-, Dimethylcyclohexylamine, Dimethylcyclohexylamine, DMCHA, N,N-dimethylcyclohexylamine, CAS: 98-94-2, Polycat 8, Niax C-8, Catalyst PC8, Catalyst PC-8, Polyurethane Catalyst PC-8, Rigid Foam Catalyst PC-8, DMCHA, POLYCAT 8, Dimethylcyclohexylamine, LupragenN101, TEGOAMIN DMCHA, JEFFCAT DMCHA, DABCO DMCHA, KAOLIZER 10, TOYOCAT DMCHA, NIAX C-8, KAOLIZER 10, PCCAT DMCHA, DESMORAPID 726-B, AminCat DMCHA, N,N-Dimethylcyclohex, Lupragen N100Dimethylcyclohexylamine), N,N-Dimethylcyclohexylamine (Lupragen N100), N-Cyclohexyldimethylamine Dimethylaminocyclohexane, N,N-diMethylcyclohaxylaMine, DMCHAN,N-DiMethylcyclohexylaMine, N-Cyclohexyldi, N,N-Dimethylcyclohexylamine, DMCHA, Dimethylcyclohexylamine, PC8, N,N-Dimethylcyclohexanamine, Polycat 8, DIMETHYLAMINOCYCLOHEXANE, N,N-Dimethylaminocyclohexane, Cyclohexanamine,N,N-dimethyl-, KL3, NiaxC8,

Dimethylcyclohexylamine (DMCHA) is a tertiary amine consisting of cyclohexane having a dimethylamino substituent.
Dimethylcyclohexylamine (DMCHA) is low viscosity Amine catalyst.
Dimethylcyclohexylamine (DMCHA) acts as a widely used catalyst.


Applications of Dimethylcyclohexylamine (DMCHA) include all types of rigid packaging foam.
Specially Dimethylcyclohexylamine (DMCHA) is used in the two components system, soluble with many kinds of rigid polyol and additive.
Dimethylcyclohexylamine (DMCHA) is stable, compatible in the blend polyols.


Dimethylcyclohexylamine (DMCHA) is a low viscosity, moderately active amine catalyst for use in a wide range of rigid foams.
One of the main applications of Dimethylcyclohexylamine (DMCHA) is in formulations for insulation foams, spraying, panels, laminates, in-situ infusion and refrigeration, etc.


Dimethylcyclohexylamine (DMCHA) is also suitable for the manufacture of rigid foam furniture frames and decorative components.
Dimethylcyclohexylamine (DMCHA) is a colorless liquid with a musky ammonia odor.
Dimethylcyclohexylamine (DMCHA) is less dense than water.


Dimethylcyclohexylamine (DMCHA) is a tertiary amine consisting of cyclohexane having a dimethylamino substituent.
Dimethylcyclohexylamine (DMCHA) is a conjugate base of a N,N-dimethylcyclohexylaminium.
Dimethylcyclohexylamine (DMCHA) catalyst is a strongly basic, general purpose catalyst recommended for a broad range of rigid and semirigid urethane foams, including spray, slabstock, laminations and refrigeration insulation panels.


Dimethylcyclohexylamine (DMCHA) catalyst, which is readily soluble in most polyols and organic solvents but essentially insoluble in water, shows excellent stability in B-compounds and can be batched with polyols or metered separately.
Dimethylcyclohexylamine (DMCHA) is colorless to slightly yellow transparent liquid.


Dimethylcyclohexylamine (DMCHA) is a low viscosity amylate catalyst for rigid foams.
Dimethylcyclohexylamine (DMCHA) is a yellow transparent liquid.


Dimethylcyclohexylamine (DMCHA) is a low-viscosity medium-active amine catalyst, used for refrigerator hard foam, board, spraying, and on-site infusion of polyurethane hard foam.


Dimethylcyclohexylamine (DMCHA) is a tertiary amine that finds extensive use in the production of surface coatings, fillers, binding agents, sealants, and detergents.
Additionally, Dimethylcyclohexylamine (DMCHA) serves as a reactive intermediate in the manufacturing of additives for the fuel and lubricant markets.

USES and APPLICATIONS of DIMETHYLCYCLOHEXYLAMINE (DMCHA):
Dimethylcyclohexylamine (DMCHA) is a moderately active amine catalyst with low viscosity.
Dimethylcyclohexylamine (DMCHA) can be used in a wide range of hard foams.
One of the main applications of Dimethylcyclohexylamine (DMCHA) is insulation foam, coating, plate, laminate, field pouring, and refrigeration formulations.


Dimethylcyclohexylamine (DMCHA) is also suitable for the manufacture of rigid foam furniture frames and decorative parts.
Dimethylcyclohexylamine (DMCHA) is used in polyurethane plastics and textiles.
Dimethylcyclohexylamine (DMCHA) is also used as a chemical intermediate.


Dimethylcyclohexylamine (DMCHA) has been used as a switchable hydrophilicity solvent (SHS) for the extraction of lipids from freeze-dried samples of Botryococcus braunii microalgae for biofuel production.
Dimethylcyclohexylamine (DMCHA) has been used as a catalyst in a three-component organocatalyzed Strecker reaction on water.


The curing temperature of baking finishes comprising polyurethane-forming substances can be reduced by 50–80 ℃ by adding weakly acidic derivatives of Dimethylcyclohexylamine (DMCHA).
Like pyridine, dimethylcyclohexylamine catalyzes certain reactions.


Dimethylcyclohexylamine (DMCHA) is slightly more efficient than pyridine in the preparation of acid chlorides with thionyl chloride.
Dimethylcyclohexylamine (DMCHA) can be used as a corrosion inhibitor.
Dimethylcyclohexylamine (DMCHA) can be used as an antioxidant in fuel oils.


Dimethylcyclohexylamine (DMCHA) is a tertiary amine used primarily to promote the urethane (polyol-isocyanate) reaction in a wide range of rigid foam applications.
Dimethylcyclohexylamine (DMCHA) is recommended for evaluation in a broad range of rigid foams.


A major application of Dimethylcyclohexylamine (DMCHA) is insulation foams, including spray, slabstock, board laminate and refrigeration formulations.
Dimethylcyclohexylamine (DMCHA) is also used in rigid foam furniture frame and decorative parts manufacturing.


Dimethylcyclohexylamine (DMCHA) can be batched with the polyol or metered as a separate stream.
Dimethylcyclohexylamine (DMCHA) can be used in a wide range of rigid foams.
One of the main applications of Dimethylcyclohexylamine (DMCHA) is insulation foam, including formulations for sprays, plates, laminates and cold storage.


Dimethylcyclohexylamine (DMCHA) is also suitable for the manufacture of rigid foam furniture frames and decorative parts.
Dimethylcyclohexylamine (DMCHA) used in rigid foam products can be used as the main catalyst alone without adding organotin.
Dimethylcyclohexylamine (DMCHA) is also used as an intermediate for rubber accelerators and synthetic fibers.


Dimethylcyclohexylamine (DMCHA) is used in polyurethane plastics and textiles and as a chemical intermediate.
Dimethylcyclohexylamine (DMCHA) is used as a switchable hydrophilicity solvent (SHS) for the extraction of lipids from freeze-dried samples of Botryococcus braunii microalgae for biofuel production.


Dimethylcyclohexylamine (DMCHA) is used as catalyst in three-component organocatalyzed Strecker reaction on water.
Dimethylcyclohexylamine (DMCHA) is used for refrigerator, freezer, continuous panel, discontinuous panel, block foam, pour foam etc.
Dimethylcyclohexylamine (DMCHA) is a standard catalyst for a broad range of rigid foams.


Major applications of Dimethylcyclohexylamine (DMCHA) include all continuous and discontinuous applications such as rigid slabstock, board laminate and refrigeration formulations.
Dimethylcyclohexylamine (DMCHA) can be batched with polyols or metered as a separate stream.


As Dimethylcyclohexylamine (DMCHA) has low water solubility, pre-blends containing high water levels must be checked for phase stability.
Dimethylcyclohexylamine (DMCHA) and potassium/metal catalyst should not be pre-blended as it might lead to incompatibilities.
Dimethylcyclohexylamine (DMCHA) is used in rigid foams, leading to a well-balanced proportion of gelling and blowing reactions


Dimethylcyclohexylamine (DMCHA) is an intermediate used in the production of agricultural chemicals.
Dimethylcyclohexylamine (DMCHA) is an intermediate used in the production of rubber chemicals.
Dimethylcyclohexylamine (DMCHA) is an intermediate used in the production of corrosion inhibitors.


Dimethylcyclohexylamine (DMCHA) is an intermediate used in the production of petroleum additives.
Dimethylcyclohexylamine (DMCHA) is used mainly as a polyurethane catalyst.
Dimethylcyclohexylamine (DMCHA)'s main application is rigid foam (insulation).


Dimethylcyclohexylamine (DMCHA) acts as powerful gel catalyst.
Other fields of use of Dimethylcyclohexylamine (DMCHA) are as catalyst for rubber (NBS, natural rubber, latex) and as fuel additive.
Polyurethane Industry: Dimethylcyclohexylamine (DMCHA) is widely used as a catalyst in the production of polyurethane foams, elastomers, and coatings.


Chemical Intermediate: Dimethylcyclohexylamine (DMCHA) serves as a building block in the synthesis of various chemicals, including pharmaceuticals and agrochemicals.
Solvent: Dimethylcyclohexylamine (DMCHA) is utilized in certain extraction processes due to its amine functionality.


-Versatile Applications of Dimethylcyclohexylamine (DMCHA):
Dimethylcyclohexylamine (DMCHA) is designed for use in a variety of applications, including refrigerator and freezer insulation, continuous and discontinuous panels, block foam, and pour foam.

Its adaptability makes Dimethylcyclohexylamine (DMCHA) suitable for a wide range of industries, from construction to automotive, where rigid packaging foam is essential.


-Enhanced Performance uses of Dimethylcyclohexylamine (DMCHA):
By acting as a catalyst in the two-component system, Dimethylcyclohexylamine (DMCHA) accelerates the curing process, leading to faster production times and improved throughput.
This efficiency not only boosts productivity but also contributes to cost savings for manufacturers.


-Industrial Uses of Dimethylcyclohexylamine (DMCHA):
Dimethylcyclohexylamine (DMCHA) is used as a catalyst in the production of polyurethane foams.
Dimethylcyclohexylamine (DMCHA) is also used as an intermediate for rubber accelerators and dyes and in the treatment of textiles.

CHARACTERISTICS AND APPLICATIONS OF DIMETHYLCYCLOHEXYLAMINE (DMCHA):
Dimethylcyclohexylamine (DMCHA) is a colorless to yellowish transparent liquid.
Dimethylcyclohexylamine (DMCHA) is soluble in water and alcohol solvents.

Dimethylcyclohexylamine (DMCHA) can absorb water and carbon dioxide in the air.
Dimethylcyclohexylamine (DMCHA) is an efficient catalyst for polyurethane soft foam.

Dimethylcyclohexylamine (DMCHA) is mainly used in the formulation of soft foam products.
Dimethylcyclohexylamine (DMCHA) can also be an auxiliary catalyst for hard foam to improve the fluidity of PU foam in large-capacity refrigerators.

Dimethylcyclohexylamine (DMCHA) has high catalytic activity.
Dimethylcyclohexylamine (DMCHA) has a fast foaming speed.
Dimethylcyclohexylamine (DMCHA) has high toughness and high bearing capacity.

In the soft bubble to 100 parts of polyether, adding 0.1–0.5 parts of Dimethylcyclohexylamine (DMCHA) can yield a better effect.
The smell of Dimethylcyclohexylamine (DMCHA) is low.
Dimethylcyclohexylamine (DMCHA)'s application range is wide.

APPLICATIONS OF DIMETHYLCYCLOHEXYLAMINE (DMCHA) IN GREEN CHEMISTRY:
Dimethylcyclohexylamine (DMCHA) finds extensive application across various sectors within green chemistry, showcasing its versatility and efficiency.
In the realm of polymer synthesis, Dimethylcyclohexylamine (DMCHA) acts as a catalyst, significantly accelerating the formation of polyurethanes.

Polyurethanes are widely used in foam, coatings, adhesives, and elastomers, underscoring the importance of Dimethylcyclohexylamine (DMCHA) in producing materials essential for daily life.

The catalytic action of Dimethylcyclohexylamine (DMCHA) not only enhances the speed of polymerization but also improves the mechanical properties of the final product, such as flexibility and durability.

In the pharmaceutical industry, DMCHA plays a pivotal role in the synthesis of active pharmaceutical ingredients (APIs).
Its ability to mediate complex organic transformations makes it invaluable for synthesizing drugs that require high purity and specificity.

For example, DMCHA is employed in the production of antihistamines and antibiotics, contributing to the development of safer and more effective medications.

Moreover, DMCHA is utilized in the formulation of personal care products, where it aids in the stabilization of emulsions and enhances the efficacy of formulations.
This application is particularly significant in the creation of moisturizers and sunscreens, where the stability and performance of the product are paramount.

In agricultural chemicals, Dimethylcyclohexylamine (DMCHA) serves as a key intermediate in the synthesis of pesticides and herbicides.
By ensuring precise control over chemical reactions, Dimethylcyclohexylamine (DMCHA) helps in developing products that are both effective and environmentally safe, thereby supporting sustainable agriculture.

Finally, in the coatings and paints sector, Dimethylcyclohexylamine (DMCHA) enhances the drying time and improves the adhesion properties of coatings.
This leads to more durable finishes that require less frequent application, thus reducing resource consumption and environmental impact.

BENEFITS OF DIMETHYLCYCLOHEXYLAMINE (DMCHA):
*Efficient Catalyst: 
Dimethylcyclohexylamine (DMCHA) enhances reaction rates in polyurethane synthesis, leading to improved production efficiency.

*Versatility: 
Applicable in multiple industrial processes due to its chemical reactivity and solvent properties.

*Stability: 
Dimethylcyclohexylamine (DMCHA) exhibits good thermal and chemical stability under standard processing conditions.

✴️ CHARACTERISTICS OF DIMETHYLCYCLOHEXYLAMINE (DMCHA):
*Chemical Nature: 
Tertiary aliphatic amine

*Reactivity: 
Dimethylcyclohexylamine (DMCHA) acts as a nucleophile and base in chemical reactions

*Volatility: 
Moderate; requires controlled handling to minimize exposure

*Storage: 
Should be stored in a cool, well-ventilated area away from sources of ignition

PROPERTIES AND USAGE OF DIMETHYLCYCLOHEXYLAMINE (DMCHA):
Dimethylcyclohexylamine (DMCHA) main purpose is as a catalyst for rigid polyurethane foams.
Dimethylcyclohexylamine (DMCHA) is a low-viscosity and medium-active amine catalyst used for refrigerators, plates, spraying, and on-site infusion of rigid polyurethane foams.

Dimethylcyclohexylamine (DMCHA) has a catalytic effect on gelation and foaming, and provides a more balanced catalytic performance for the foaming reaction and gelation reaction of rigid foam.
Dimethylcyclohexylamine (DMCHA) has a stronger catalyst for the reaction of water and isocyanate (foaming reaction), and at the same time the reaction of polyol and isocyanate also has moderate catalysis.

Dimethylcyclohexylamine (DMCHA) is a strong initial catalyst for foam reaction.
In addition to hard foam, Dimethylcyclohexylamine (DMCHA) can also be used as an auxiliary foaming agent for molding soft foam and semi-rigid foam.
Dimethylcyclohexylamine (DMCHA) has stable performance in combined materials, great adjustability, and long-term storage.

FUTURE PROSPECTS AND INNOVATIONS IN DIMETHYLCYCLOHEXYLAMINE (DMCHA) USAGE:
As we look towards the future, the prospects for dimethylcyclohexylamine (DMCHA) in green chemistry are promising, driven by ongoing research and technological advancements.
Innovations in Dimethylcyclohexylamine (DMCHA)’s synthesis methods aim to reduce costs and improve yield, making it more accessible for widespread use.

Recent studies suggest that novel catalytic processes could enhance the efficiency of Dimethylcyclohexylamine (DMCHA) production, potentially cutting down on energy consumption and waste generation.

Additionally, researchers are exploring new applications for Dimethylcyclohexylamine (DMCHA) beyond traditional uses in polymers and pharmaceuticals.
For instance, Dimethylcyclohexylamine (DMCHA) is being investigated for its potential in bio-based material synthesis, where it could serve as a bridge between renewable resources and high-performance materials.

This shift not only broadens the scope of Dimethylcyclohexylamine (DMCHA)’s utility but also aligns with the growing demand for sustainable products.
Technological innovations are also focusing on improving the recyclability and biodegradability of products containing Dimethylcyclohexylamine (DMCHA).

Advances in nanoengineering have opened doors to creating Dimethylcyclohexylamine (DMCHA)-enhanced materials that decompose naturally after their lifecycle, reducing environmental impact.
Such developments underscore Dimethylcyclohexylamine (DMCHA)’s adaptability to emerging needs in green technology.

Looking ahead, the integration of artificial intelligence (AI) and machine learning in optimizing Dimethylcyclohexylamine (DMCHA)’s application parameters promises to revolutionize its use further.

These technologies can predict optimal conditions for various reactions involving Dimethylcyclohexylamine (DMCHA), leading to more precise and efficient outcomes.
As such, the future of Dimethylcyclohexylamine (DMCHA) in green chemistry is poised to be shaped by continuous innovation and interdisciplinary collaboration.

COMPARATIVE ANALYSIS: DIMETHYLCYCLOHEXYLAMINE (DMCHA) VS OTHER COMPOUNDS
When comparing dimethylcyclohexylamine (DMCHA) with other similar compounds in the context of green chemistry, the advantages of DMCHA become strikingly evident.
Consider, for instance, its counterparts such as diethanolamine (DEA) and triethanolamine (TEA), which are often used in similar applications.

While DEA and TEA have their own merits, they do not match Dimethylcyclohexylamine (DMCHA)’s superior performance in terms of efficiency and environmental compatibility.
One of the primary advantages of Dimethylcyclohexylamine (DMCHA) is its enhanced catalytic activity.

In the synthesis of polyurethanes, Dimethylcyclohexylamine (DMCHA) outperforms DEA and TEA by significantly speeding up the reaction without compromising the quality of the final product.
This efficiency translates into reduced energy consumption and shorter processing times, which are crucial factors in lowering the carbon footprint of manufacturing processes.

Another critical aspect where Dimethylcyclohexylamine (DMCHA) excels is its lower toxicity profile compared to other amines.
Unlike some alternatives that may pose health risks due to their volatility and irritant properties, Dimethylcyclohexylamine (DMCHA) is relatively benign, making it safer for both workers and the environment.

This safety advantage is particularly important in industries where human exposure is unavoidable, such as in the formulation of personal care products.
Furthermore, Dimethylcyclohexylamine (DMCHA) boasts excellent thermal stability, allowing it to maintain its effectiveness under a wide range of operating conditions.

This characteristic contrasts sharply with certain other amines that degrade at elevated temperatures, leading to inefficiencies and increased waste.
The robustness of Dimethylcyclohexylamine (DMCHA) ensures consistent performance, even in challenging industrial settings.

PRODUCTION METHODS OF DIMETHYLCYCLOHEXYLAMINE (DMCHA):
Dimethylcyclohexylamine (DMCHA) is manufactured either by the reaction of methyl chloride or formaldehyde and hydrogen with cyclohexylamine.
Dimethylcyclohexylamine (DMCHA) catalyst is a tertiary amine used primarily to promote the urethane (polyol-isocyanate) reaction in a wide range of rigid foam applications.

CHEMICAL PROPERTIES OF DIMETHYLCYCLOHEXYLAMINE (DMCHA):
Dimethylcyclohexylamine (DMCHA) is a strongly basic, colorless liquid tertiary amine.
Dimethylcyclohexylamine (DMCHA) has a strong ammonia smell.

When placed for a long time, the color will gradually become darker.
This discoloration does not affect Dimethylcyclohexylamine (DMCHA)'s chemical activity.
Dimethylcyclohexylamine (DMCHA) is soluble in most polyols and organic solvents.

Dimethylcyclohexylamine (DMCHA) is insoluble in water.
Chemically, Dimethylcyclohexylamine (DMCHA) is known for its basic nature due to the presence of the amine group.
This characteristic enables Dimethylcyclohexylamine (DMCHA) to act as a proton acceptor, participating in acid-base reactions.

The tertiary amine structure provides Dimethylcyclohexylamine (DMCHA) with nucleophilic properties.
Dimethylcyclohexylamine (DMCHA) can engage in substitution and addition reactions.
These chemical attributes make Dimethylcyclohexylamine (DMCHA) suitable for use as a catalyst or reactant in numerous synthetic pathways.

The stability of Dimethylcyclohexylamine (DMCHA) under varying pH levels and temperatures enhances its reliability in diverse chemical environments.
Dimethylcyclohexylamine (DMCHA) remains effective even in slightly acidic or basic media.

This broadens Dimethylcyclohexylamine (DMCHA)'s application scope.
Dimethylcyclohexylamine (DMCHA)’s resistance to oxidation ensures its longevity in storage and usage.
This reduces waste and promotes sustainability.

In summary, the structural composition of Dimethylcyclohexylamine (DMCHA) endows it with a set of physical and chemical properties.
These properties are instrumental in Dimethylcyclohexylamine (DMCHA)'s effectiveness across different chemical processes.

These features position Dimethylcyclohexylamine (DMCHA) as a valuable component in the arsenal of green chemistry.
Dimethylcyclohexylamine (DMCHA) supports efficient and environmentally responsible practices.

STRUCTURE AND PROPERTIES OF DIMETHYLCYCLOHEXYLAMINE (DMCHA):
Dimethylcyclohexylamine (DMCHA), a compound with a molecular formula C8H17N, is characterized by its unique structure that combines cyclohexane ring with two methyl groups attached to the nitrogen atom.
This configuration grants Dimethylcyclohexylamine (DMCHA) several notable physical and chemical properties that make it highly versatile in chemical applications.

Structurally, Dimethylcyclohexylamine (DMCHA) consists of a six-carbon cyclohexane ring bonded to a tertiary amine group, where the nitrogen atom is connected to two methyl groups and one carbon from the cyclohexane ring.
This arrangement gives Dimethylcyclohexylamine (DMCHA) a relatively stable structure, enhancing its reactivity and solubility characteristics.

PHYSICAL PROPERTIES OF DIMETHYLCYCLOHEXYLAMINE (DMCHA):
Dimethylcyclohexylamine (DMCHA) exhibits specific physical properties that contribute to its utility in various industrial processes.
Its boiling point is approximately 205°C, allowing Dimethylcyclohexylamine (DMCHA) to remain stable under typical reaction conditions without evaporating prematurely.

Additionally, Dimethylcyclohexylamine (DMCHA) has a density around 0.86 g/cm³, making it lighter than water, which can be advantageous in separation processes.
Dimethylcyclohexylamine (DMCHA)’s viscosity is moderate, facilitating its handling and mixing in chemical reactions.

REACTIVITY PROFILE OF DIMETHYLCYCLOHEXYLAMINE (DMCHA):
Dimethylcyclohexylamine (DMCHA) neutralizes acids in exothermic reactions to form salts plus water.
May be incompatible with isocyanates, halogenated organics, peroxides, phenols (acidic), epoxides, anhydrides, and acid halides.

DIMETHYLCYCLOHEXYLAMINE (DMCHA): THE UNSUNG HERO OF SUSTAINABLE GREEN CHEMISTRY
In the world of green chemistry, where molecules are like characters in a grand theatrical play, dimethylcyclohexylamine (DMCHA) plays an important role as both a catalyst and a key player in sustainable processes.

Often overshadowed by more glamorous compounds, Dimethylcyclohexylamine (DMCHA) quietly performs its duties with remarkable efficiency and versatility.
This unassuming molecule, resembling a molecular Swiss Army knife, finds itself at the heart of numerous eco-friendly chemical reactions.

Dimethylcyclohexylamine (DMCHA)’s importance lies not only in its ability to facilitate crucial chemical transformations but also in its compatibility with environmentally friendly practices.
As we delve deeper into this topic, we will explore how Dimethylcyclohexylamine (DMCHA) serves as a cornerstone in various sustainable chemical processes.

From acting as a catalyst that speeds up reactions without being consumed, to participating directly in reactions that produce valuable products, Dimethylcyclohexylamine (DMCHA) proves itself indispensable.
Moreover, its properties align well with the principles of green chemistry, making Dimethylcyclohexylamine (DMCHA) a preferred choice in industries striving for sustainability.

The journey through the applications and significance of Dimethylcyclohexylamine (DMCHA) is akin to exploring a hidden gem in the vast landscape of chemistry.

Dimethylcyclohexylamine (DMCHA) represents a tangible example of how scientific innovation can marry functionality with environmental responsibility.
So, let us embark on this exploration, uncovering the myriad ways in which Dimethylcyclohexylamine (DMCHA) contributes to advancing green chemistry practices.

PHYSICAL and CHEMICAL PROPERTIES of DIMETHYLCYCLOHEXYLAMINE (DMCHA):
IUPAC Name: N,N-Dimethylcyclohexanamine
Molecular Formula: C₈H₁₇N
Molar Mass: 127.23 g/mol
CAS Number: 98-94-2
EC Number: 202-715-5
PubChem CID: 7415
Appearance: Colorless to pale yellow liquid
Odor: Amine-like
Boiling Point: 158–159 °C
Melting Point: Approximately –60 °C
Density: 0.849 g/mL at 25 °C

Flash Point: 39 °C (closed cup)
Vapor Pressure: 3.6 mmHg at 20 °C
Refractive Index: n²⁰/D 1.454
Solubility: Miscible with most organic solvents; slightly soluble in water
LogP: 2.31 at 25 °C
Dielectric Constant: 2.86
Molecular Weight 127.23 g/mol
XLogP3 1.9
Hydrogen Bond Donor Count 0
Hydrogen Bond Acceptor Count 1

Rotatable Bond Count 1
Exact Mass 127.136099547 Da
Monoisotopic Mass 127.136099547 Da
Topological Polar Surface Area 3.2 Ų
Heavy Atom Count 9
Formal Charge 0
Complexity 72.6
Isotope Atom Count 0
Defined Atom Stereocenter Count 0
Undefined Atom Stereocenter Count 0
Defined Bond Stereocenter Count 0

Undefined Bond Stereocenter Count 0
Covalently-Bonded Unit Count 1
Compound Is Canonicalized Yes
Linear Formula: C6H11N(CH3)2
CAS Number: 98-94-2
Molecular Weight: 127.23
Beilstein: 1919922
EC Number: 202-715-5
MDL number: MFCD00003844
UNSPSC Code: 12352100

PubChem Substance ID: 24857479
NACRES: NA.22
Physical state: clear, liquid
Color: colorless
Odor: No data available
Melting point/freezing point: Melting point/range: -60 °C
Initial boiling point and boiling range: 158 - 159 °C - lit.
Flammability (solid, gas): No data available

Upper/lower flammability or explosive limits: 
Upper explosion limit: 19 % (V), 
Lower explosion limit: 3.6 % (V)
Flash point: 39 °C - closed cup
Autoignition temperature: No data available
Decomposition temperature: No data available
pH: 12 at 5 g/l at 20 °C
Viscosity: 
Viscosity, kinematic: No data available, 
Viscosity, dynamic: 1.16 mPa.s at 25 °C
Water solubility: No data available

Partition coefficient: n-octanol/water: log Pow: 2.01
Vapor pressure: 3.6 hPa at 20 °C
Density: 0.849 g/cm³ at 25 °C - lit.
Relative density: No data available
Relative vapor density: No data available
Particle characteristics: No data available
Explosive properties: No data available
Oxidizing properties: No data available
Other safety information: No data available

Colour Pt-Co: Light Yellow
Freezing point °C: < -78
Flash Point PMCC, °C: 40
Boiling Point 756 mmHg, °C: 160
Viscosity, cp @20°C: 2.4
Density g/ml; 20/20°C: 0.85
Assay: 95.00 to 100.00
Food Chemicals Codex Listed: No
Specific Gravity: 0.84900 @ 25.00 °C
Refractive Index: 1.45350 @ 20.00 °C
Flash Point: 108.00 °F. TCC (42.22 °C)

Soluble in: water, 1.026e+004 mg/L @ 25 °C (est)
CAS: 98-94-2
MF: C8H17N
MW: 127.23
EINECS: 202-715-5
Product Categories: pharmaceutical
Mol File: 98-94-2.mol
Melting point: -60 °C
Boiling point: 160 °C
Density: 0.849 g/mL at 25 °C (lit.)
Vapor pressure: 3.6 mm Hg (20 °C)
Refractive index: n20/D 1.454 (lit.)

Fp: 108 °F
Storage temp.: Flammables area
Solubility: 10 g/L (20 °C)
Water Solubility: 10 g/L (20 °C)
Freezing Point: <-77 °C
Sensitive: Air Sensitive
BRN: 1919922
CAS DataBase Reference: 98-94-2 (CAS DataBase Reference)
NIST Chemistry Reference: Cyclohexanamine, N,N-dimethyl-(98-94-2)
EPA Substance Registry System: Cyclohexanamine, N,N-dimethyl-(98-94-2)
Melting point: -60 °C

Boiling point: 160 °C
Density: 0.849 g/mL at 25 °C (lit.)
Vapor pressure: 3.6 mm Hg (20 °C)
Refractive index: n20/D 1.454 (lit.)
Fp: 108 °F
Solubility: 10 g/L (20 °C)
Form: Liquid
pKa: pK1: 10.72(+1) (25 °C)
Color: Clear
pH: 12 (5g/l, H2O, 20 °C)
Explosive limit: 3.6-19 % (V)
Water Solubility: 10 g/L (20 °C)

Freezing Point: <-77 °C
CBNumber: CB1854754
Molecular Formula: C8H17N
Molecular Weight: 127.23
MDL Number: MFCD00003844
MOL File: 98-94-2.mol
Melting point: -60 °C
Boiling point: 158-159 °C (lit.)
Density: 0.849 g/mL at 25 °C (lit.)
Vapor pressure: 3.6 mm Hg (20 °C)
Refractive index: n20/D 1.454 (lit.)
Flash point: 108 °F

Storage temp.: Store below +30 °C
Solubility: 10 g/L (20 °C)
Form: Liquid
pKa: pK1: 10.72 (+1) (25 °C)
Color: Clear
pH: 12 (5 g/l, H2O, 20 °C)
Explosive limit: 3.6-19 % (V)
Viscosity: 1.49 mm²/s
Water Solubility: 10 g/L (20 °C)
Freezing Point: <-77 °C
Sensitive: Air Sensitive

BRN: 1919922
Dielectric constant: 2.86
InChIKey: SVYKKECYCPFKGB-UHFFFAOYSA-N
LogP: 2.31 at 25 °C
Indirect Additives used in Food Contact Substances: N,N-DIMETHYLCYCLOHEXYLAMINE
CAS DataBase Reference: 98-94-2 (CAS DataBase Reference)
EWG's Food Scores: 1
FDA UNII: N1H19E7HTA
NIST Chemistry Reference: Cyclohexanamine, N,N-dimethyl-(98-94-2)
EPA Substance Registry System: N,N-Dimethylcyclohexylamine (98-94-2)
UNSPSC Code: 12352116
NACRES: NA.22

Odor: amine odour
Density: 0.849 g/mL
Molar volume: 149.9 mL/mol
Refractive index: 1.454
Molecular refractive power: 40.58 mL/mol
Dielectric constant: 2.86
Dipole moment: 0.76 D
Melting point: -60 °C
Boiling point: 160 °C
Vapour pressure: 2 Torr
Critical temperature: 339 °C
Critical pressure: 26.8 atm
Dimroth ET: 37.3
 


FIRST AID MEASURES of DIMETHYLCYCLOHEXYLAMINE (DMCHA):
-Description of first-aid measures:
*If inhaled:
After inhalation: 
Fresh air.
*In case of skin contact:
Wash off with soap and plenty of water.
*In case of eye contact:
Remove contact lenses.
*If swallowed:
Never give anything by mouth to an unconscious person. 
Rinse mouth with water.
-Indication of any immediate medical attention and special treatment needed:
No data available

ACCIDENTAL RELEASE MEASURES of DIMETHYLCYCLOHEXYLAMINE (DMCHA):
-Environmental precautions:
Do not let product enter drains.
-Methods and materials for containment and cleaning up:
Keep in suitable, closed containers for disposal.

FIRE FIGHTING MEASURES of DIMETHYLCYCLOHEXYLAMINE (DMCHA):
-Extinguishing media:
*Suitable extinguishing media:
Use water spray, alcohol-resistant foam, dry chemical or carbon dioxide.
-Further information:
No data available

EXPOSURE CONTROLS/PERSONAL PROTECTION of DIMETHYLCYCLOHEXYLAMINE (DMCHA):
-Control parameters:
--Ingredients with workplace control parameters:
-Exposure controls:
--Personal protective equipment:
*Eye/face protection:
Use equipment for eye protection.
*Skin protection:
Handle with gloves. 
Wash and dry hands.
*Body Protection:
Impervious clothing
*Respiratory protection:
Respiratory protection not required. 
-Control of environmental exposure:
Do not let product enter drains.

HANDLING and STORAGE of DIMETHYLCYCLOHEXYLAMINE (DMCHA):
-Conditions for safe storage, including any incompatibilities:
*Storage conditions:
Store in cool place. 
Keep container tightly closed in a dry and well-ventilated place.
Containers which are opened must be carefully resealed and kept upright to prevent leakage.

STABILITY and REACTIVITY of DIMETHYLCYCLOHEXYLAMINE (DMCHA):
-Reactivity:
No data available
-Chemical stability:
Stable under recommended storage conditions.
-Possibility of hazardous reactions:
No data available
-Conditions to avoid:
No data available

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