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HS Code |
373070 |
| Product Name | (2-Benzimidazolylthio)Acetic Acid Hydrazide |
| Cas Number | 34662-73-6 |
| Molecular Formula | C9H10N4OS |
| Molecular Weight | 222.27 |
| Appearance | White to off-white powder |
| Melting Point | 190-192°C |
| Solubility | Soluble in DMSO, slightly soluble in water |
| Purity | Typically ≥98% |
| Storage Condition | Store at 2-8°C, protected from light |
| Synonyms | 2-(Benzimidazol-2-ylthio)acetohydrazide |
| Structure | Contains benzimidazole ring, thioether linkage, and hydrazide group |
| Uses | Intermediate in organic synthesis and pharmaceuticals |
| Hs Code | 29349990 |
As an accredited (2-Benzimidazolylthio)Acetic Acid Hydrazide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | A white, sealed 10g plastic bottle labeled “(2-Benzimidazolylthio)Acetic Acid Hydrazide,” including hazard warnings and batch information. |
| Shipping | (2-Benzimidazolylthio)Acetic Acid Hydrazide is shipped in compliance with standard chemical handling protocols. It is securely packaged in airtight containers to prevent contamination and degradation. The package is clearly labeled with hazard information and shipped via approved carriers specializing in chemical transport, ensuring safe and timely delivery to the customer’s specified address. |
| Storage | (2-Benzimidazolylthio)acetic acid hydrazide should be stored in a tightly closed container, protected from light and moisture. Keep the substance in a cool, dry, and well-ventilated area, away from incompatible materials such as oxidizing agents. Store at room temperature and avoid exposure to excessive heat. Always follow appropriate laboratory safety protocols when handling and storing this compound. |
Applications of (2-Benzimidazolylthio)Acetic Acid Hydrazide in Industrial ManufacturingOur (2-Benzimidazolylthio)Acetic Acid Hydrazide serves as a reliable intermediate across multiple specialized industrial value chains. This section details distinct and validated downstream use cases focusing on sector-specific integration parameters, compliance demands, typical incorporation ratios, production process ingress points, and real market end goods. Every scenario reflects deployment routines confirmed by applied chemical manufacturing practice. 1. Pharmaceutical Active Ingredient IntermediateIn pharmaceutical synthesis, this material acts as a key building block for constructing benzimidazole-based pharmacophores used in the development of anti-infective and anticancer APIs. Production sites must stringently control in-process quality profiles to ensure downstream product purity and safety. Manufacturers carefully adjust raw material input based on the final API target and batch yield requirements, while maintaining documentation to satisfy increasing global regulatory oversight. Industry compliance standards
Typical usage ratio
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2. Agricultural Fungicide SynthesisLeading agrochemical formulators employ this compound as a critical intermediate in the synthesis of benzimidazole-based fungicidal actives, delivering selective toxicity profiles needed for commercial crop protection agents. Formulation chemists optimize inclusion rates to minimize residual reactants in the end fungicide, with real-time monitoring for traceability and regulatory conformity throughout each production campaign. Industry compliance standards
Typical usage ratio
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3. Dye and Pigment Intermediate for Specialty ColorantsManufacturers of performance dyes and pigments utilize this molecule within multi-stage synthetic routes to produce benzimidazole-derived chromophores. The unique reactivity imparts lightfastness and enhanced substrate affinity, supporting textile, inkjet, and plastic coloration systems. The ratio of addition directly ties to shade intensity and fastness property targets subject to client specification. Industry compliance standards
Typical usage ratio
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4. Analytical Reagent Precursor for Laboratory UseThis compound contributes as a foundational reagent in the synthesis of speciality benzimidazole markers and standards for analytical laboratories, particularly in chromatographic or spectrophotometric methods. Quality control protocols at the manufacturing stage focus on impurity profiling and batch-to-batch reproducibility to support trace-level detection applications, with supply concentrations matched to the precise specification of the downstream analytical tool. Industry compliance standards
Typical usage ratio
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5. Custom Polymer Modifier for Engineering PlasticsThe benzimidazolylthioacetohydrazide motif supports select specialty polymer modification routines to introduce heterocyclic functionality into engineering resins. High-performance materials manufacturers apply this raw material to enhance chemical resistance and thermal stability profiles, with process engineers overseeing melt mixing or solution copolymerization in precisely regulated environments. Industry compliance standards
Typical usage ratio
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Over the years, the chemical industry has bred its share of essential reagents, but not all molecules pull their own weight in research, synthesis, or specialty applications. Among the workhorses stands (2-Benzimidazolylthio)Acetic Acid Hydrazide, which has earned a spot in chemical manufacturing and R&D settings for a good reason. While scientific names might tangle the tongue, what makes this hydrazide stand out is a reliable, adaptive chemical backbone that combines the benzimidazole moiety and the thioacetic acid hydrazide group. The result is a compound that shows up repeatedly in synthesis of biologically relevant derivatives, ligand systems, and even exploratory pharmaceutical intermediates.
Years on the production floor taught us that the purity and form of a compound determine whether a batch runs smoothly or stalls with troubleshooting. Targeting a specification like >98% purity is not a marketing headline; it determines both downstream performance and customer satisfaction. While labs occasionally wish to optimize conditions with mixed grades, most industrial researchers working with (2-Benzimidazolylthio)Acetic Acid Hydrazide look for reliable, repeatable output. This means we constantly review the solvent system for recrystallization, keeping water content in check and monitoring residual solvents after every drying cycle.
Where some compounds resist easy drying or present with persistent colored impurities, this hydrazide allows filtration and drying without the drama. We favor solid, off-white crystalline batches, though even small color shifts signal us to tweak the purification. The lesson learned is simple: in chemical manufacturing, attention paid at this step saves headaches later.
Specifications for (2-Benzimidazolylthio)Acetic Acid Hydrazide go far beyond the CAS number or a listed melting point. Chemists care about what travels with the main component. A few tenths of a percent impurity might not alarm a spreadsheet, but those who run pilot reactions know how isolating trace byproducts complicate purification. We check for key contaminants from precursor steps, such as unreacted benzimidazole or acid chloride residue, and document the result for every lot.
Particle size distribution rarely gets the attention it deserves, but it influences everything from solubility in a reaction flask to safe handling. We pay close attention during milling and sieving, looking to avoid fine dust or hard aggregates. These seemingly small production choices separate a smooth lab day from an unexpected clog or sample loss. In environments where lab techs transfer powder dozens of times a week, flow properties and dust behavior end up more than minor details—they define lab safety and efficiency.
As a manufacturer rooted deeply in the benzimidazole derivatives space, we constantly evaluate not just our own product, but how it sits relative to alternatives in synthesis and application. (2-Benzimidazolylthio)Acetic Acid Hydrazide holds a particular edge when paired against standard thioacetic acid hydrazides or simpler benzimidazole carboxylic acids. The attached thio function combined with the hydrazide group enables further derivatization at two active sites, expanding the variety of final products.
Compounds lacking the benzimidazole core often fall short when structure-activity relationships matter in pharmaceutical or agrochemical studies. Benzimidazole units frequently contribute to biological activity—something research partners look for during lead optimization rounds. By contrast, generic hydrazides or simpler thioacetic analogs can act as intermediates, but don’t offer this dual reactivity and rich foundation for modification.
We have watched customers run side-by-side tests, and time after time, the benzimidazole-based hydrazide produced higher yields of target derivatives, plus a cleaner reaction profile when introducing additional functional groups. While some manufacturers are tempted to cut steps by blending related compounds with less structure in place, our approach has stayed the same: stick with pure, well-characterized hydrazides and let the benzimidazole chemistry do the heavy lifting.
Manufacturing this compound has changed over the decade. Small-batch, manual processing stood as the norm. Later, the shift toward remote monitoring and scalable reactor technologies gave us more control. Still, every modern innovation relies on insight from routine process checks—checking end-point conversion, managing temperature profiles that prevent thermal decomposition, and maintaining full traceability to raw materials. Each production run brings us a new set of data, and nothing trumps the combined wisdom of skilled chemical operators and robust in-house analytical capabilities.
We adjust reaction conditions to match not just gram- or kilogram-scale, but the quirks of each application. Some users pursue this hydrazide for energetic material research, others design coordination compounds for catalysis studies. Our job is to provide a product that performs out-of-the-box across these settings, informed by real requests and feedback. If a batch comes off even slightly outside typical color, melting point, or solubility range, we adjust instead of pushing a subpar lot downstream. This degree of manufacturer-level oversight stands apart from bulk traders or drop-ship resellers.
Looking at applications, (2-Benzimidazolylthio)Acetic Acid Hydrazide often serves as a starting point for heterocycle formation, especially in synthetic routes aimed at new bioactive compounds. Many chemists working in medicinal chemistry or agricultural chemistry pursue hydrazide derivatives for their versatile reactivity with carbonyls, isocyanates, and aldehydes. Our own production experience cuts through the abstraction—it’s the starting reagent in ligands for metal complexes or frameworks for drug discovery, not a shelf-warmer.
Each time we fill an order for a research group studying antioxidant assay development or pharmaceutical screening, we hear back about the need for lot-to-lot reliability. Consistent product behavior saves them time re-optimizing reactions, cuts down on failed pilot experiments, and helps secure funding renewals. Manufacturing at scale amplifies every small process hiccup, so constant process vigilance is non-negotiable.
In catalytic research, users often report that hydrazide derivatives serve as chelating agents or as intermediates in crafting sensors or dyes. The benzimidazolyl core binds selectively to metals. This advantage distinguishes it from non-heterocyclic hydrazides, which rarely provide the same selectivity or stability during ligand exchange.
Some teams come to us looking for basic building blocks and then shift their focus mid-project, capitalizing on this hydrazide’s modifiability. That flexibility emerges only from a well-prepared, highly pure substrate—a reminder that shortcuts in production lead nowhere good in the hands of skilled molecular designers.
End-use satisfaction traces straight back to raw material handling. All of our (2-Benzimidazolylthio)Acetic Acid Hydrazide batches pass full-spectrum HPLC and NMR screening before shipping. We typically provide not just certificates, but also detailed insights into impurities and storage recommendations. Moisture content, often neglected as a specification, takes center stage for us: certain downstream reactions prove sensitive to water traces, and we dry under vacuum and store with desiccant as a matter of course.
When discussing differences from other suppliers, many third-party resellers rely on original factory batches or mix lots from multiple plants, leading to unpredictable quality. Producing everything under one roof means we know every step, record every deviation, and can clarify technical points quickly without the runaround.
Basic labeling does not capture the commitment invested in each drum or bottle. The visible difference shows up in particle smoothness, lack of caking, and ease in dispensing. Our QC teams keep extensive reference spectra and run spot checks against them for every processed lot, not just batches marked “for analysis.” The accumulation of data over years lets us flag unusual output long before it causes a problem, and sometimes prompts a closer look at trends across lots or raw material batches.
One might assume that such hands-on quality assurance complicates logistics, but keeping batches narrow and records detailed makes recalls or troubleshooting straightforward. Many customers who experienced headaches with unclear documentation or unexplained off-color lots from other suppliers return to us seeking transparency only a direct manufacturer can provide.
Seasoned chemists pay close attention to handling, knowing that fine powders can pose respiratory risks or present flammability if mishandled. We ship this hydrazide in double-sealed, moisture-resistant containers and mark drums clearly. Teams at scale transfer product in well-ventilated areas and weigh under local extraction, which we recommend from our own experience rather than just ticking regulatory boxes.
Cleaning up spills or accidental dust clouds should never be left to chance. Practice and clear communication from day one make a difference, especially as new staff rotate into project teams. As a producer, we see fewer accidents in facilities that combine clear training and manufacturer-provided guidelines with well-chosen safety gear.
Customers sometimes request tips on waste treatment or byproduct disposal, especially as local environmental rules tighten. Our production teams treat waste streams through filtration and chemical neutralization—methods we describe to customers developing their own protocols. The real challenge rests less in the headline regulations and more in day-to-day diligence: separating mercury- or chromium-contaminated waste, labeling clearly, and checking disposal routes periodically for efficacy and compliance.
Every chemical’s shelf life depends on storage discipline. (2-Benzimidazolylthio)Acetic Acid Hydrazide remains stable in cool, dry conditions, away from sunlight. Our teams store bulk material in climate-controlled rooms and ship in containers that shield from water and oxygen ingress. Delays in downstream processing rarely affect product performance when stored using these practical safeguards.
We have seen batches stored carelessly—left open to the air, placed near heat or in humid environments—become discolored or clumpy. The result? Lost product and mounting frustration for researchers. Setting up simple protocols—always reseal after use, keep samples away from bench water, label containers by date opened—saves time and avoids spoiled material, especially over longer research projects.
Feedback from return customers shapes our operation. Many pharmacies and research labs started as small-scale buyers, seeking clarity about product origin and quality differences. As we delivered on expectations, partnerships deepened, leading to collaborative pilot-scale validation and the sharing of results and production challenges.
This feedback loop led us to adjust not just technical aspects but our communication style. Requesting batch-specific documents, arranging site visits, or reviewing methods for analytical cross-checks are now standard. Unlike traders, we hold open-book discussions about sources of error, raw material changes, or unplanned deviations. Many long-term clients cite this back-and-forth as the reason they trust our compound for sensitive or regulatory-critical projects.
We’ve joined several multi-year grants with teams developing new drugs, allowing us to align quality upgrades with their evolving project standards. Co-developing test methods for final applications, providing nonstandard lot samples, and even reviewing failed experiments improves both sides of the partnership. What grows from this is more than business; it’s the shared satisfaction of seeing an experiment run smoother because starting materials perform as needed.
Researchers scouring catalogs may see “(2-Benzimidazolylthio)Acetic Acid Hydrazide” listed at widely varying prices with little detail behind the numbers. Often, resellers contract batches from different plants, rebrand, and sell with little grasp of the supply chain’s intricacies. Manufacturer-direct supply narrows the information gap.
We provide batch numbers traceable back to raw materials, a feat not always possible if product changes hands multiple times. The chance to ask for custom analytical tests, documentation for regulatory filings, or trace impurity specification only exists where the manufacturer understands each process step. Our lines remain open to direct discussion, free from layers of generic customer service.
Practical advantages multiply with complex or regulated work: easier recalls, personalized batch documentation, and the ability to plan future orders based on in-process lead times and real production rates. End-users notice when response times drop, and problems are solved on the first call because the team knows its own chemical process inside out.
(2-Benzimidazolylthio)Acetic Acid Hydrazide has no reputation to fall back on except what performance and reliability prove over time. New entrants to the field might weigh specifications and price alone, but veterans place trust in a chain of small decisions: careful process recipes, dependable staff, and the willingness to halt a shipment if something seems off.
Our experience producing this hydrazide reinforced every lesson about traceability, adaptability, and purposeful quality. While industry conversations often drift into promises of “advanced” or “breakthrough” molecules, it’s the behind-the-scenes rigor—lots tested, clean storage, transparent documentation—that keeps our partners returning. Reliable chemistry does not spring from chance, but from daily choices to put the needs and realities of the laboratory and plant first.
The chemical industry rewards those who learn directly from each lot and trust hands-on experience more than speculative claims. By keeping production, quality checks, and customer dialogue under one roof, we continuously improve both the product and its impact on research and manufacturing outcomes. For us, (2-Benzimidazolylthio)Acetic Acid Hydrazide stands as a practical testament to making good on that commitment, batch after batch.