Cas no 4239-24-1 (1,6-Bis(mesyloxy)hexane)
1,6-Bis(mesyloxy)hexane Chemical and Physical Properties
Names and Identifiers
-
- Hexasulfan
- 1,6-Hexanediol dimethanesulfonate
- 1,6-Bis(mesyloxy)hexane
- 6-methylsulfonyloxyhexyl methanesulfonate
- 6-(METHANESULFONYLOXY)HEXYL METHANESULFONATE
- 16-Bismesyloxyhexane
- BRN 1796026
- AKOS025311615
- Methanesulfonic acid, hexamethylene ester
- 1,6-Hexanediol, dimethanesulfonate
- 1,6-bis(methanesulfonyloxy)hexane
- DTXSID50195197
- AI3-61596
- CS-0147897
- HY-138327
- Hexane dimethanesulphonate
- 1,6-hexanediyl dimethanesulfonate
- starbld0009330
- 1,6-Hexanediol, bis(methanesulphonate)
- SCHEMBL1931795
- Hexasulphan
- 6-methylsulfonyloxyhexyl methylsulfonate
- 4239-24-1
- STL490607
- 6-[(Methylsulfonyl)oxy]hexyl methanesulfonate #
- 1,6-Hexanediol, dimethanesulphonate
- hexane-1,6-diyl dimethanesulfonate
- DA-69409
-
- Inchi: 1S/C8H18O6S2/c1-15(9,10)13-7-5-3-4-6-8-14-16(2,11)12/h3-8H2,1-2H3
- InChI Key: WZOJEWBBWCYINS-UHFFFAOYSA-N
- SMILES: S(C)(=O)(=O)OCCCCCCOS(C)(=O)=O
Computed Properties
- Exact Mass: 274.05454
- Monoisotopic Mass: 274.05448064g/mol
- Isotope Atom Count: 0
- Hydrogen Bond Donor Count: 0
- Hydrogen Bond Acceptor Count: 6
- Heavy Atom Count: 16
- Rotatable Bond Count: 9
- Complexity: 320
- Covalently-Bonded Unit Count: 1
- Defined Atom Stereocenter Count: 0
- Undefined Atom Stereocenter Count : 0
- Defined Bond Stereocenter Count: 0
- Undefined Bond Stereocenter Count: 0
- XLogP3: 0.2
- Topological Polar Surface Area: 104?2
Experimental Properties
- Melting Point: 56-59°C
- Solubility: Chloroform (Slightly), Methanol (Slightly)
- PSA: 86.74
1,6-Bis(mesyloxy)hexane Pricemore >>
| Related Categories | No. | Product Name | Cas No. | Purity | Specification | Price | update time | Inquiry |
|---|---|---|---|---|---|---|---|---|
| TRC | B311855-500mg |
1,6-Bis(mesyloxy)hexane |
4239-24-1 | 500mg |
$ 266.00 | 2023-04-18 | ||
| TRC | B311855-1g |
1,6-Bis(mesyloxy)hexane |
4239-24-1 | 1g |
$ 569.00 | 2023-04-18 | ||
| TRC | B311855-2.5g |
1,6-Bis(mesyloxy)hexane |
4239-24-1 | 2.5g |
$ 1081.00 | 2023-04-18 | ||
| TRC | B311855-5g |
1,6-Bis(mesyloxy)hexane |
4239-24-1 | 5g |
$ 2036.00 | 2023-04-18 | ||
| ChemScence | CS-0147897-1g |
1,6-Bis(mesyloxy)hexane |
4239-24-1 | 1g |
$1017.0 | 2022-04-27 | ||
| ChemScence | CS-0147897-5g |
1,6-Bis(mesyloxy)hexane |
4239-24-1 | 5g |
$3708.0 | 2022-04-27 | ||
| Biosynth | EAA23924-250 mg |
Hexasulphan |
4239-24-1 | 250MG |
$140.00 | 2023-01-05 | ||
| Biosynth | EAA23924-500 mg |
Hexasulphan |
4239-24-1 | 500MG |
$225.00 | 2023-01-05 | ||
| Biosynth | EAA23924-1000 mg |
Hexasulphan |
4239-24-1 | 1g |
$360.00 | 2023-01-05 | ||
| Biosynth | EAA23924-5000 mg |
Hexasulphan |
4239-24-1 | 5g |
$1,150.00 | 2023-01-05 |
1,6-Bis(mesyloxy)hexane Related Literature
-
Suji Lee,Min Su Han Chem. Commun., 2021,57, 9450-9453
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Quan Xiang,Yiqin Chen,Zhiqin Li,Kaixi Bi,Guanhua Zhang,Huigao Duan Nanoscale, 2016,8, 19541-19550
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Jingquan Liu,Huiyun Liu,Zhongfan Jia,Volga Bulmus,Thomas P. Davis Chem. Commun., 2008, 6582-6584
-
Cheng Fang,Jinjian Wu,Zahra Sobhani,Md. Al Amin,Youhong Tang Anal. Methods, 2019,11, 163-170
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Priyambada Nayak,Tanmaya Badapanda,Anil Kumar Singh,Simanchalo Panigrahi RSC Adv., 2017,7, 16319-16331
Additional information on 1,6-Bis(mesyloxy)hexane
1,6-Bis(mesyloxy)hexane (CAS No. 4239-24-1): A Versatile Chemical Intermediate in Modern Applications
1,6-Bis(mesyloxy)hexane (CAS No. 4239-24-1), also known as hexane-1,6-diyl dimethanesulfonate, is a specialized organic compound with significant utility in synthetic chemistry and industrial applications. This mesylate derivative is characterized by its two methanesulfonyloxy (mesyloxy) groups attached to a linear hexane backbone, making it a valuable bifunctional linker in polymer science, pharmaceuticals, and material engineering. Its molecular formula, C8H18O6S2, reflects its role as a cross-linking agent and alkylating reagent, often leveraged for its reactivity in nucleophilic substitution reactions.
In recent years, the demand for 1,6-Bis(mesyloxy)hexane has surged due to its compatibility with green chemistry principles. Researchers prioritize compounds like this for their efficiency in low-waste synthesis, aligning with global trends toward sustainable manufacturing. A common query in AI-driven chemical databases revolves around its use in biodegradable polymers, where it serves as a precursor for eco-friendly materials. This aligns with the broader industry focus on reducing carbon footprints, a topic frequently searched in scientific forums and patent literature.
The compound’s thermal stability and solubility profile (e.g., in polar aprotic solvents like DMF or DMSO) make it a preferred choice for high-performance coatings and adhesive formulations. Notably, its application in click chemistry—a trending topic in drug discovery??has been explored for modular biomolecule conjugation. Users often search for "1,6-Bis(mesyloxy)hexane solubility" or "mesylate reactivity in SN2 reactions," highlighting its relevance in academic and industrial workflows.
From a safety and handling perspective, CAS 4239-24-1 requires standard laboratory precautions, though it is not classified under stringent regulatory lists. Its non-volatile nature and moderate melting point (~80°C) facilitate safe storage and transport, addressing common concerns in chemical procurement discussions. Analytical techniques such as HPLC and NMR spectroscopy are typically employed for purity verification, a detail frequently queried in quality control contexts.
Innovations in catalysis have further expanded the scope of 1,6-Bis(mesyloxy)hexane. For instance, its role in phase-transfer catalysis (PTC) systems is gaining traction, particularly in asymmetric synthesis—a hot topic in organic chemistry research. Searches like "mesylates in PTC" or "hexane-linked catalysts" reflect this niche interest. Additionally, its potential in nanomaterial functionalization is under investigation, catering to the booming field of smart materials.
In summary, 1,6-Bis(mesyloxy)hexane (CAS No. 4239-24-1) exemplifies a multifaceted chemical bridge between traditional synthesis and cutting-edge applications. Its adaptability to sustainable practices, coupled with its utility in high-value industries, ensures its continued prominence in both academic publications and industrial workflows. As AI-assisted molecular design advances, compounds like this will remain pivotal in addressing complex material challenges of the future.
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