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2-Aminoethylmethylsulfone Hydrochloride

    • Product Name 2-Aminoethylmethylsulfone Hydrochloride
    • Alias Memantic
    • Einecs 629-671-5
    • Mininmum Order 1 g
    • Factory Site Tengfei Creation Center,55 Jiangjun Avenue, Jiangning District,Nanjing
    • Price Inquiry admin@sinochem-nanjing.com
    • Manufacturer Sinochem Nanjing Corporation
    • CONTACT NOW
    VTB
    Specifications

    HS Code

    872122

    Chemical Name 2-Aminoethylmethylsulfone Hydrochloride
    Cas Number 52555-90-5
    Molecular Formula C3H10ClNOS
    Molecular Weight 143.64 g/mol
    Appearance White to off-white crystalline powder
    Solubility Soluble in water
    Melting Point 169-173°C
    Purity Typically ≥98%
    Ph Of 1 Solution 4.0 - 6.0
    Storage Temperature 2-8°C
    Synonyms MESNA hydrochloride intermediate
    Iupac Name 2-(methylsulfonyl)ethan-1-amine hydrochloride
    Hazard Statements May cause skin and eye irritation

    As an accredited 2-Aminoethylmethylsulfone Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.

    Packing & Storage
    Packing 500g of 2-Aminoethylmethylsulfone Hydrochloride is supplied in a sealed, labeled HDPE bottle with tamper-evident cap for protection.
    Shipping 2-Aminoethylmethylsulfone Hydrochloride is shipped in tightly sealed containers, protected from moisture and direct sunlight. The packaging complies with chemical safety regulations, ensuring secure transport. It is shipped at ambient temperature, unless otherwise specified, and accompanied by appropriate labeling and documentation for safe handling and regulatory compliance during transit.
    Storage 2-Aminoethylmethylsulfone Hydrochloride should be stored in a tightly sealed container, protected from light, moisture, and incompatible substances. Keep it in a cool, dry, well-ventilated area, ideally at room temperature (20–25°C). Avoid sources of ignition and strong oxidizers. Proper labeling and safety precautions are essential to prevent accidental exposure or contamination.
    Application of 2-Aminoethylmethylsulfone Hydrochloride
    Purity 99%: 2-Aminoethylmethylsulfone Hydrochloride with a purity of 99% is used in pharmaceutical intermediate synthesis, where it ensures high reaction yield and minimal byproduct formation. Melting Point 222°C: 2-Aminoethylmethylsulfone Hydrochloride with a melting point of 222°C is used in solid formulation development, where it provides thermal stability during processing. Molecular Weight 147.62 g/mol: 2-Aminoethylmethylsulfone Hydrochloride at a molecular weight of 147.62 g/mol is used in biochemical research, where its defined mass supports accurate stoichiometric calculations. Stability Temperature 80°C: 2-Aminoethylmethylsulfone Hydrochloride stable up to 80°C is used in enzyme reaction buffers, where it maintains integrity in elevated-temperature applications. Particle Size <50 microns: 2-Aminoethylmethylsulfone Hydrochloride with particle size less than 50 microns is used in tablet manufacturing, where fine granularity ensures uniform blending and compressibility. Hydrochloride Salt Form: 2-Aminoethylmethylsulfone Hydrochloride in its hydrochloride salt form is used in drug substance solubilization, where it increases aqueous solubility and bioavailability. Water Content ≤0.5%: 2-Aminoethylmethylsulfone Hydrochloride with water content ≤0.5% is used in moisture-sensitive synthesis, where it reduces hydrolytic degradation risk. Assay ≥98%: 2-Aminoethylmethylsulfone Hydrochloride with assay not less than 98% is used in analytical reference standards, where it delivers consistent quantitative results in HPLC analysis. Storage Condition 2-8°C: 2-Aminoethylmethylsulfone Hydrochloride stored at 2-8°C is used in long-term reagent storage, where it preserves chemical stability and shelf-life. pH 4.0-5.5: 2-Aminoethylmethylsulfone Hydrochloride with pH 4.0-5.5 in solution is used in buffer systems preparation, where it ensures optimal reaction conditions for sensitive assays.
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    Certification & Compliance
    More Introduction

    2-Aminoethylmethylsulfone Hydrochloride: A Closer Look from Our Lab Benches

    Understanding the Product

    Daily work in our manufacturing plant turns theory into tangible materials—there’s always a new compound, but some stand apart for their reliability and versatility. 2-Aminoethylmethylsulfone Hydrochloride belongs to that group. When we scale batches, it's the consistency that technicians notice. Quality hinges on each reaction running true and the substance coming off the line as expected, and this hydrochloride salt form delivers time after time.

    Chemists look for a balance of stability and reactivity in their intermediates. In early days, our team noticed 2-Aminoethylmethylsulfone Hydrochloride held up well through longer storage—hygroscopic issues were far less pronounced compared to the free base or other sulfonyl analogs. We run product through a series of loss-on-drying and purity tests, not just to meet internal standards, but because researchers actually depend on repeat performance. No one wants unexplained side reactions affecting a multi-step synthesis.

    Our Manufacturing Insights

    Scaling up this material took more than just tweaking batch size—we confronted several technical hurdles with crystal growth, purification, and hydrochloride addition. Replicating fine laboratory parameters on several-kilogram runs leads to direct lessons in plant-floor chemistry. We switched from older distillation methods to closed-loop systems for improved yield and cleaner conversion, a move that cut waste significantly. Regular pilot batches let us compare real-world production with earlier analytical results so we keep on track, batch to batch.

    We maintain each drum of 2-Aminoethylmethylsulfone Hydrochloride to a clear, white, flowable consistency. Moisture clumping can compromise accuracy in the lab, so our control teams check this at every point in the process. In our experience, too many chemical manufacturers let QC slip when orders come in hot and fast, so we assign dedicated QC checkpoints beyond the regulatory minimum. Actual chemists—not just line techs—inspect outgoing lots.

    Applications and Daily Lab Observations

    Over years working with this compound, we’ve seen requests come in from R&D teams in pharmaceuticals, biotech, and even fine chemical research. This isn’t a headline material—you won’t find it on warehouse shelves at commodity prices. Instead, 2-Aminoethylmethylsulfone Hydrochloride often supports targeted synthesis, especially when aminoethyl functionalization in a highly polar, water-soluble format is needed.

    Process chemists value its ease of solvation and handle the hydrochloride form more conveniently than the free base. Our own trial reactions and client feedback highlight the improved safety profile versus some older ethylsulfonyl precursors. Fume extraction requirements drop and exposure limits are lower, so our packaging and handling flow reflects that. This has allowed some customers to streamline safety protocols without sacrificing sample integrity.

    Medicinal chemistry teams reach for this product when specificity matters—its electron-withdrawing sulfone group combined with the aminoethyl chain provides a unique anchor point for further derivatization. For peptide conjugations, the hydrochloride salt guarantees amine availability for coupling reactions, while chloride anion presence simplifies buffer control. These practical attributes grow out of real trial and error by the labs who ultimately use our compound.

    Comparative Perspective: Hydrochloride Salt vs. Free Base and Other Sulfone Amines

    The most frequent comparison is between our hydrochloride salt and its free base counterpart. In storage, hydrochloride salts show better shelf life and less tendency toward slow degradation. We see this when opening competitor drums that sat in a warehouse for too long—color change and odor tell the story. In our workflow, that means fewer rejected lots and more predictable results for clients.

    From our own process optimization, adding the hydrochloride step required tighter pH control and attention to downstream filtering, but it paid off in product stability. In mixed organic/aqueous synthesis, this salt dissolves fast, reducing mixer times. Peptide and small-molecule manufacturers often ask why their own in-house preparations fail to match ours for color and clarity. Uniform product outcomes come down to the robustness of the crystallization step—an advantage of routine, measured large-scale production.

    Against other sulfone amines on the market, especially those carrying methyl or ethyl chains but missing the aminoethyl moiety, ours meets a niche need. We hear from specialty drug development groups who require precise chain length and polarity. Having a methylsulfone backbone makes for a more electron-deficient environment, which translates to unique performance in some reductive aminations and cross-linking schedules.

    Real Manufacturing Challenges

    Making 2-Aminoethylmethylsulfone Hydrochloride is not a textbook process. Sourcing starting materials means negotiating vendor schedules and quality consistency, especially since not every sulfone raw material meets trace metal specs or low residual solvent limits. Early on, we saw variable contaminant levels in third-party intermediates, so we built in an extra purification step and rigorous upstream vendor qualification.

    Production staff often point out that each step needs hands-on oversight. Temperatures drift, yields shift with ambient humidity, and filtration rates depend on batch size. We run chemical synthesis in real time, so memory and experience count—there's no substitute for a technician who can smell a reaction offgassing and knows when it's time to start cooling. These details can't get coded into automated protocols.

    Shipping hydrochloride salts adds another dimension. While less prone to hazardous label requirements than free base forms, regulations still demand clear documentation and hazard communication. We've refined our drum and bottle packaging over many iterations—thick bags, easy-pour construction, and clear seals so end users receive the pristine material our team produces. Temperature excursions in transit can spell trouble, so we've joined up with freight partners who can verify chain-of-custody for each lot.

    Large project customers sometimes require custom volume orders or micro-batch grades. This adds up to new paperwork, contestant changes, and one-off analytical methods. The workforce here cuts through that with direct, straightforward communication—skip the perfunctory emails and get chemists on the phone with fellow chemists. That saves time, money, and materials.

    Lessons Learned Partnering with End Users

    After dozens of technical meetings and product validations, working directly with those using our 2-Aminoethylmethylsulfone Hydrochloride has shaped much about how we approach manufacturing. We don’t chase hype or speculative applications, so our feedback loop is tight. Project managers at research institutions give immediate and honest write-ups on what works or doesn’t in their experiments. Some highlight issues we can fix within weeks—like solvent residue limits tighter than typical guidelines, or the need for tamper-evident bags for small-quantity users.

    The divide between bench chemists and plant production narrows when we bring user input into our standard operating procedures. One peptide synthesis team was finding residual color formation in their automated reactors; we re-examined our critical wash steps, tweaked the rota-evap zones, and got to the root in a fortnight. Real-time access to technical support shortens this feedback loop and gets data flowing both ways.

    Armchair theorizing never substitutes for practical partnerships. When customers flag an analytical or functional discrepancy, our in-house team goes into the lab to rerun conditions with their original solvents—not just our own. This keeps us grounded and sharp, and directly impacts future production runs.

    Factual Grounding and Ongoing Quality Targets

    Accurate batch records form the backbone of chemical manufacturing. Regulatory bodies do not accept generalizations, and neither should labs buying 2-Aminoethylmethylsulfone Hydrochloride. Each drum gets full traceability, showing time, lot number, operator, and each QC result—moisture, purity by HPLC, melting point, and total impurities.

    Our staff understands that ongoing reliability wins repeat business, especially with sensitive synthesis intermediates. Auditors and client research teams have full access to our compliance documentation. Meeting target specifications is not just box-ticking—since certificates follow every shipment, we double down on calibration checks. This investment pays back when returning customers cite trouble-free process validation or improved syntheses reproducibility.

    Future Outlook: Addressing Market and Technical Gaps

    Demand for higher purity and lower residual solvent is rising, so we’re investing in next-generation filtration and drying. Glass-lined reactors replace older stainless, especially for small-batch pharma projects. As more users look for sustainability, solvent recovery and waste minimization sit front and center in our research. We explore greener alternatives wherever they work—water-based crystallizations, more efficient neutralization agents, and less energy-intensive drying.

    On the technical side, we document small batch trials for alternative hydrochloride salts—adjusting crystallinity, tapping resistance, and solubility curves. Whether end users want easier handling or tailored physical forms, our pilot line tests those ideas before investing in full production runs. Our policy ensures new modifications get logged, verified, and audited like any mainstream product. All changes start with dialogue, not assumptions.

    The Importance of Transparent, Direct Manufacturing Relationships

    Experience producing 2-Aminoethylmethylsulfone Hydrochloride underscores one reality: chemical manufacturing succeeds on trust and technical balance. Buyers see where their intermediates come from, monitor specifications, and speak directly to those who craft the product. Hiding behind resellers or paper certificates risks missed opportunities and misunderstood requirements. By working transparently, customers ask sharper questions about particle size, batch stability, or physical format. We welcome it.

    Factories grow with honest feedback. We keep technical teams ready—chemist to chemist, manager to manager—so problem-solving never stalls. No hidden layers. This mindset keeps mistakes from compounding and puts trust where it counts: on facts, results, and common goals in real research. Each kilogram of 2-Aminoethylmethylsulfone Hydrochloride shipping out reflects years of learning, swift course correction, and commitment to long-term partnerships. This approach has served us well before, and sets the trajectory for the next round of innovation.