Cas no 1652-63-7 (Trimethyl-1-propanaminium iodide)
Trimethyl-1-propanaminium iodide Chemical and Physical Properties
Names and Identifiers
-
- Trimethyl-1-propanaminium iodide
- FC-134
- 1-Propanaminium,3-[[(heptadecafluorooctyl)sulfonyl]amino]-N,N,N-trimethyl-,iodide
- 3-[[(heptadecafluorooctyl)sulfonyl]amino]-n,n,n-trimethyl-1-propanaminiuio
- 3-[[(heptadecafluorooctyl)sulfonyl]amino]-n,n,n-trimethyl-1-propanaminiuiodide
- 3-[[(Heptadecafluorooctyl)sulfonyl]amino]-N,N,N-trimethyl-1-propanaminiumiodide
- fluoro surfactant fc-134
- [3-(1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8,8-HEPTADECAFLUORO-1-OCTANESULFONAMIDE)PROPYL]TRIMETHYLAMMONIUM IODIDE [3-((((HEPTADECAFLUOROOCTYL)SULFONYL)AMINO)PROPY)]TRIMETHYLAMMONIUM IODIDE
- Perfluoroalkylsulfonyl quaternary ammonium iodides
- Perfluoroalkyl ammonium salt iodide
- (HEPTADECAFLUOFOOCTYLSULFONYLAMINOPROPYL)TRIMETHYLAMMONIUM IDIOE
- PerfluoroalkylsulfonylquaternaryammoniumSaltIodides
- Perfluoroalkylsulfonyl quaternary ammonium iodide
- 3-(((HEPTADECAFLUOROOCTYL)SULFONYL)AMINO)PROPYL)]TRIMETHYLAMMONIUMIODIDE) 1-Propanaminium, 3-[[(heptadecafluorooctyl)sulfonyl]amino]-N,N,N-trimethyl-, iodide 3-[[(Heptadecafluorooctyl)sulfonyl]amino]-N,N,N-trimethyl-1-propanaminium iodide 3-[[(heptadecafl
- FC-135
- fluoroalkyl quaternary ammonium iodide (C8)
- N,N-dimethyl,3-perfluorooctylsulfonylpropyl-aminium,iodide
- Perfluoroalkylsulfonyl quaternary ammonium salt iodide
- Trimethyl-1-propaminium iodide
- Perfluoroalkylsulfonyl Quaternary AMMoniuM Salt
- 3-[[(Heptadecafluorooctyl)sulfonyl]amino]-N,N,N-trimethyl-1-propanaminium iodide
- (3-(((Heptadecafluorooctyl)sulphonyl)amino)propyl)trimethylammonium iodide
- 1-Propanaminium, 3-(((heptadecafluorooctyl)sulfonyl)amino)-N,N,N-trimethyl-, iodide
- SCHEMBL4168238
- 3-(1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8,8-heptadecafluorooctylsulfonylamino)propyl-trimethylazanium;iodide
- MLIMEVJPZQAQQE-UHFFFAOYSA-M
- DTXSID8051419
- D87961
- 3-(1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8,8-heptadecafluorooctylsulfonylamino)propyl-trimethylazanium iodide
- 1652-63-7
- EINECS 216-716-3
- [3-((((heptadecafluorooctyl)sulfonyl)amino)propy)]trimethylammonium iodide
- N,N,N-trimethyl-3-(perfluorooctylsulfonamido)propan-1-aminium iodide
- AKOS015833290
- NS00111593
- 1-Propanaminium, 3-(((1,1,2,2,3,3,4,4,5,5,6,6,7,7,8,8,8-heptadecafluorooctyl)sulfonyl)amino)-N,N,N-trimethyl-, iodide (1:1)
- N-[(Perfluorooctylsulfonamido)propyl]-N,N,N-trimethylammonium iodide
- 3-(((Heptadecafluorooctyl)sulfonyl)amino)-N,N,N-trimethyl-1-propanaminium iodide
- 1-Propanaminium, 3-[[(heptadecafluorooctyl) sulfonyl]amino]-N,N,N-trimethyl-, iodide
-
- MDL: MFCD01321252
- Inchi: 1S/C14H16F17N2O2S.HI/c1-33(2,3)6-4-5-32-36(34,35)14(30,31)12(25,26)10(21,22)8(17,18)7(15,16)9(19,20)11(23,24)13(27,28)29;/h32H,4-6H2,1-3H3;1H/q+1;/p-1
- InChI Key: MLIMEVJPZQAQQE-UHFFFAOYSA-M
- SMILES: [I-].S(C(C(C(C(C(C(C(C(F)(F)F)(F)F)(F)F)(F)F)(F)F)(F)F)(F)F)(F)F)(NCCC[N+](C)(C)C)(=O)=O
Computed Properties
- Exact Mass: 725.97100
- Monoisotopic Mass: 725.970571
- Isotope Atom Count: 0
- Hydrogen Bond Donor Count: 1
- Hydrogen Bond Acceptor Count: 21
- Heavy Atom Count: 37
- Rotatable Bond Count: 12
- Complexity: 885
- Covalently-Bonded Unit Count: 2
- Defined Atom Stereocenter Count: 0
- Undefined Atom Stereocenter Count : 0
- Defined Bond Stereocenter Count: 0
- Undefined Bond Stereocenter Count: 0
- Surface Charge: 0
- Topological Polar Surface Area: 46.2
Experimental Properties
- Color/Form: Not determined
- Density: 1,6 g/cm3
- PSA: 54.55000
- LogP: 3.44470
- Solubility: Not determined
Trimethyl-1-propanaminium iodide Security Information
- WGK Germany:1
- Safety Instruction: S26; S37/39; S36
- RTECS:FJ5950000
-
Hazardous Material Identification:
- Risk Phrases:R36/37/38
Trimethyl-1-propanaminium iodide Customs Data
- HS CODE:2942000000
- Customs Data:
China Customs Code:
2942000000
Trimethyl-1-propanaminium iodide Pricemore >>
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| 1PlusChem | 1P007BEJ-5g |
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Trimethyl-1-propanaminium iodide Suppliers
Trimethyl-1-propanaminium iodide Related Literature
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Juliane Glüge,Martin Scheringer,Ian T. Cousins,Jamie C. DeWitt,Gretta Goldenman,Dorte Herzke,Rainer Lohmann,Carla A. Ng,Xenia Trier,Zhanyun Wang Environ. Sci.: Processes Impacts 2020 22 2345
Additional information on Trimethyl-1-propanaminium iodide
Professional Introduction to Trimethyl-1-propanaminium iodide (CAS No: 1652-63-7)
Trimethyl-1-propanaminium iodide, with the chemical formula C?H??IN?, is a quaternary ammonium salt that has garnered significant attention in the field of pharmaceutical chemistry and materials science due to its unique structural and functional properties. This compound, identified by its CAS number 1652-63-7, is widely recognized for its applications in various scientific and industrial domains. Its molecular structure, characterized by a positively charged nitrogen atom surrounded by three methyl groups and an iodide counterion, makes it a versatile intermediate in organic synthesis and a potential candidate for developing novel therapeutic agents.
The significance of Trimethyl-1-propanaminium iodide lies in its ability to act as a building block for more complex molecules. In pharmaceutical research, this compound is often utilized in the synthesis of cationic drugs, which are known for their enhanced bioavailability and targeted delivery systems. Recent studies have highlighted its role in the development of antimicrobial agents, where its cationic nature facilitates interaction with bacterial cell membranes, leading to membrane disruption and subsequent cell death. This mechanism has sparked interest in exploring its efficacy against multidrug-resistant bacteria, a critical challenge in modern medicine.
In addition to its pharmaceutical applications, Trimethyl-1-propanaminium iodide has found utility in the realm of materials science. Its ability to form stable ionic compounds with various anions has been leveraged in the creation of advanced materials such as conductive polymers and liquid crystals. These materials are essential in the development of next-generation electronic devices, including organic light-emitting diodes (OLEDs) and flexible displays. The compound's compatibility with other functional groups allows for the design of hybrid materials that exhibit both mechanical robustness and electronic conductivity, making it a valuable asset in nanotechnology research.
The chemical properties of Trimethyl-1-propanaminium iodide also make it a promising candidate for use in catalysis. Quaternary ammonium salts are known to enhance reaction rates in various organic transformations due to their ability to stabilize reactive intermediates and facilitate ion pair formation. Researchers have recently reported its effectiveness as a phase-transfer catalyst in reactions involving heteroaromatic compounds. This application not only improves yield but also reduces environmental impact by enabling reactions under milder conditions with less waste generation.
From an industrial perspective, the synthesis of Trimethyl-1-propanaminium iodide is relatively straightforward, involving the reaction of 1-propanamine with methylating agents followed by treatment with hydroiodic acid. This simplicity makes it an attractive choice for large-scale production without compromising on purity or yield. The compound's stability under various storage conditions further enhances its practicality, ensuring consistent quality for industrial applications.
The growing body of research on Trimethyl-1-propanaminium iodide underscores its multifaceted potential across different scientific disciplines. As our understanding of its properties continues to evolve, new applications are likely to emerge, further solidifying its importance in both academic and industrial settings. The compound's role as a versatile intermediate underscores the interconnectedness of modern chemistry, where advancements in one area often pave the way for breakthroughs in another.
In conclusion, Trimethyl-1-propanaminium iodide (CAS No: 1652-63-7) represents a fascinating compound with broad applications ranging from pharmaceuticals to advanced materials. Its unique chemical characteristics make it indispensable in synthetic chemistry and open up new avenues for innovation. As research progresses, we can expect to see even more sophisticated uses for this compound, reinforcing its status as a cornerstone of modern chemical science.
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