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HS Code |
472738 |
| Productname | 1,2,4-Triazole-1-Acetic Acid |
| Casnumber | 4003-08-9 |
| Molecularformula | C4H5N3O2 |
| Molecularweight | 127.10 g/mol |
| Appearance | White to off-white powder |
| Meltingpoint | 144-147°C |
| Solubility | Slightly soluble in water |
| Purity | Typically ≥98% |
| Boilingpoint | Decomposes before boiling |
| Density | 1.52 g/cm³ (estimated) |
| Ph | Acidic |
| Storageconditions | Store at 2-8°C, dry place |
| Synonyms | Triazolylacetic acid |
| Smiles | C1=NN=CN1CC(=O)O |
As an accredited 1,2,4-Triazole-1-Acetic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The packaging is a 100g amber glass bottle, securely sealed, featuring a printed chemical label for 1,2,4-Triazole-1-Acetic Acid. |
| Shipping | 1,2,4-Triazole-1-Acetic Acid is shipped in tightly sealed containers to prevent moisture absorption and contamination. Transport is conducted in accordance with relevant chemical regulations, ensuring safety and stability. Proper labeling, documentation, and appropriate hazard warnings are included, and the package is handled to avoid physical damage or exposure during transit. |
| Storage | 1,2,4-Triazole-1-acetic acid should be stored in a tightly closed container, in a cool, dry, and well-ventilated area away from incompatible substances such as strong oxidizers and bases. Protect the container from moisture and direct sunlight. Use appropriate secondary containment to prevent leaks or spills, and clearly label storage containers to avoid accidental misuse or mixing. |
Applications of 1,2,4-Triazole-1-Acetic Acid in Industrial Manufacturing1,2,4-Triazole-1-acetic acid serves as a specialized intermediate in key chemical manufacturing sectors, valued for its stable ring structure and acetic acid functional group. As an experienced producer, we focus on supplying this intermediate to established downstream markets, where its role is critical for product quality and compliance with international industry requirements. The following application sections detail specific manufacturing uses, highlighting relevant compliance benchmarks, integration points, recommended formulation levels, and resulting finished products. 1. Active Pharmaceutical Ingredient (API) Synthesis for Plant Growth RegulatorsThis compound is a core intermediate in the synthesis of plant growth regulators, specifically triazole-type active ingredients used in agrochemical formulations. Downstream producers incorporate it in the multi-step manufacturing of compounds that control plant development and disease resistance. Production must meet strict regulations, particularly in the context of global agrochemical registration and export controls. Industry compliance standards
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2. Pharmaceutical Intermediates for Triazole-based Drug SynthesisAs a structurally-functional intermediate, 1,2,4-Triazole-1-acetic acid finds specialized use in the synthesis pathways of triazole-based pharmaceutical compounds, including antifungal agents and experimental therapeutics. Downstream manufacturers incorporate it in multi-step chemical transformations requiring precise stoichiometry and traceability, especially for export markets governed by high regulatory oversight. Industry compliance standards
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3. Synthesis of Specialty Agrochemicals for Horticulture Solutions1,2,4-Triazole-1-acetic acid acts as a functional intermediate in the development of specialty agrochemicals targeting controlled plant growth, flowering, or disease mitigation in high-value horticulture crops. These production lines are governed by quality and environmental compliance, particularly for products destined for premium export markets. Industry compliance standards
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4. Fine Chemical Synthesis: Building Block for High-Performance MaterialsDownstream fine chemical manufacturers incorporate 1,2,4-Triazole-1-acetic acid as a key heterocyclic building block for the elaboration of polymers and resins requiring enhanced thermal or chemical stability. Production relies on advanced process controls and documentation to satisfy customer technical requirements and end-use specifications for industrial applications. Industry compliance standards
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5. Synthesis of Research Reagents and Analytical StandardsLeading chemical laboratories and reagent suppliers use 1,2,4-Triazole-1-acetic acid to prepare analytical standards and specialty research chemicals required for method validation, environmental testing, and structure-activity relationship studies. Downstream users demand purity, batch consistency, and comprehensive certificates of analysis, making compliance and traceability paramount in this segment. Industry compliance standards
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Competitive 1,2,4-Triazole-1-Acetic Acid prices that fit your budget—flexible terms and customized quotes for every order.
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Manufacturing chemicals is a process that brings together accuracy, consistent batch control, and a constant eye on real-world results. At our plant, 1,2,4-Triazole-1-Acetic Acid has emerged as one of the products we take great pride in. Our journey with this compound extends well beyond simply fine-tuning reaction processes or achieving high-purity benchmarks. Every ton that rolls out isn't just about numbers or purity percentages, but about how it stands up to scrutiny in actual use.
We produce 1,2,4-Triazole-1-Acetic Acid under strictly regulated conditions, ensuring minimal impurity carryover. Consistent crystalline structure, stable melting point, and reliable assay results are not just technical requirements for us; they represent the backbone of daily operations. Our lot numbers trace all the way back to raw material batches, enabling checks and repeatability at any scale. When talking about model, the standard type most often ordered features assay levels above 98%, with moisture controlled well below 0.5%. A precise molecular weight of 127.1 ensures compatibility with synthesis protocols, and no batch leaves unless the melting range rests between 180°C and 182°C. These aren’t arbitrary thresholds — these are hard-earned data points, set and verified because of the work required to support industrial users.
For those unfamiliar with 1,2,4-Triazole-1-Acetic Acid, its significance often lies in the realm of plant growth regulators and advanced intermediates. Hands-on experience tells us this molecule’s appeal isn’t simply theoretical. Plant research teams, process chemists, and agrochemical manufacturers trust this material because it brings reliable activity for developing innovative growth regulation technologies. End-users repeatedly cite sharper root development and more regulated plant physiology when formulating with high-grade 1,2,4-Triazole-1-Acetic Acid. Where it’s deployed in synthetic transformations, both the yield and selectivity often see tangible improvement — provided the input quality is stable and impurities like chlorinated side products or heavy metal residues remain below industry-recognized limits.
We’ve engaged with research institutions working on cytokinin analogs who require consistent input so experimental variability remains tied to their test factors, not to upstream materials. Some clients center their entire crop bioenhancer platform on this molecule, building protocols that ride on its batch-to-batch uniformity and absence of side contaminants. These inputs shape protocols and results down the chain, giving us direct feedback on what strict quality management delivers in the real world.
During our years in production and quality assurance, we’ve been asked countless times about the differences between various triazole acetic acids. 1,2,4-Triazole-1-Acetic Acid distinguishes itself sharply from its 1,2,3- and 1,2,5- analogs in several important ways. Synthesis routes dictate impurity profiles: 1,2,4 orientation offers fewer isomerization byproducts, which translates into less time spent troubleshooting downstream. This matters in scale-ups or in regulated environments — if you have ever run a chromatography on a poorly controlled batch, the headache speaks for itself.
Another concrete difference revolves around the compound’s biological activity. Research and field feedback have demonstrated that 1,2,4-Triazole-1-Acetic Acid delivers a more robust regulator effect on plant physiology at lower concentrations. This translates into real savings for bulk users, who need efficacy at benchmarked application rates. By comparison, some close relatives in the triazole family may require higher doses, potentially risking unwanted side effects or environmental loading.
Among synthetic intermediates, purity often deceives on the surface. Two samples may read similar by HPLC, yet performance drops if the impurity package veers off spec. That’s why we keep IR and NMR on hand for every lot, and our technical team runs pilot tests for high-value customers who need proof of reactivity prior to large-scale contracts. Not every vendor offers this level of integration — and mistakes from traders or poorly equipped resellers cost process chemists dearly when yield loss or reactor fouling interrupts their operation.
Years of serving plant science teams and process developers taught us that the value of a raw material only truly emerges once it interacts with other process steps. We regularly receive feedback after 1,2,4-Triazole-1-Acetic Acid has moved through pilot lots, into kilogram or tonne-scale trials. Reports from the field underline that stability, solubility, and controlled release properties don’t just arise from textbook values, but from disciplined manufacturing and customer engagement. One industrial seed treatment client, after switching to our grade, documented fewer clogging problems in precision application equipment, due to reduced dust fines and tighter particle size control — direct evidence that investment in product handling pays off for both plant operators and growers alike.
Formulation chemists often call out the product’s compatibility with a range of solvents and adjuvants. The difference doesn’t revolve only around solubility — consistent pKa value and minimal residual organics mean formulation stability, fewer separation layers, and simplified revalidation cycles. These are the facts that matter in a development timeline where missed milestones set back not just product launches, but entire budgets.
On the biological side, agronomists and researchers have stressed the dose-dependent control that this molecule offers for plant height, tillering, and stress resistance. Trials confirm benefit margins at both low and high application frequencies, leaving room for adaptive usage planning across varying environmental conditions. For those optimizing resource use, knowing that the same batch of 1,2,4-Triazole-1-Acetic Acid supports consistent activity across years is more than reassuring — it’s proof that the right manufacturing choices create broader project stability.
Guaranteeing a reliable stream of 1,2,4-Triazole-1-Acetic Acid involves far more than standard chemical synthesis. Years of investment in process controls underpin our workflow: closed nitrogen environments, rigorous water content management, and real-time monitoring of crystal formation. This level of care doesn't simply keep the product inside a tight technical spec — it demonstrates to users that their downstream results will reflect their own expertise, not inconsistency in the baseline material.
We placed a strong focus on solvent recycling and waste minimization, both for cost control and environmental stewardship. Robust in-plant recycling keeps impurities out and purity in, and aligns with audited sustainability targets being adopted by leading multinationals and government agencies. Elimination of organochlorine residues below 50 ppm is not the industry minimum; it’s our company-wide target, driven by direct experience supporting green chemistry efforts worldwide.
Our technical service lab keeps up with changing application demands, stress-testing new supply chain routes and examining the effect of packaging and shipping on the compound’s integrity. Moisture pickup, for example, might seem minor in a datasheet, but over a two-month ocean voyage it can mean real performance differences for shipment partners in humid regions. Field sampling and retention policy ensure every batch spent in the supply chain can be traced. Any complaints or feedback return directly to the production team for root cause analysis, without the information loss that comes from third-party resellers.
Markets for triazole-based acetic acids have shifted with time, shaped by commodity prices, regulatory policy, and the increasing sophistication of end user demands. There’s no room for laziness in sourcing or in downstream sales pitches: users demand specifics — IR scan overlays, residual solvent levels, recommendations based on actual use cases, not just textbook citations. The most successful real-world uses we’ve seen often come from growers or process development teams who appreciate ongoing feedback, willing to experiment on small lots and report outcomes directly. On our end, these partnerships forge new insight, sometimes leading to changes in our own process or packaging.
Raw material pricing shifts and supply chain volatility have challenged our team to continuously adapt. Spot shortages in core triazole precursors, for example, drive rapid price swings. Each crisis demonstrated the real advantage of manufacturing depth: controlling both primary and secondary synthetic steps internally, and never relying on opaque intermediaries. This practice translates into on-time delivery, even when global supply lines face stress.
Feedback from industrial clients led to practical adjustments. When clients struggled with settling in solution, we developed finer, yet non-dusting grades. Technical specialists reported occasional aromatic side products affecting certain catalytic conversions, prompting us to refine purification steps, reducing both UV-absorbing and non-volatile residues by an additional 10%. These lessons don’t arise from reading regulatory bulletins, but from real feedback, real usage, real manufacturing response.
The scientific community’s understanding of 1,2,4-Triazole-1-Acetic Acid’s biological properties continues to grow. From the start, we’ve participated in joint field trials, sending our technical staff out with plant breeders and experimentalists to directly observe results. Plant morphology, root activity, and stress response assessments aren’t abstract numbers for us — these are fields walked, growth cycles monitored, and unexpected anomalies spotted early. Reporting a problem isn’t a paperwork exercise. We respond by looking at the full production pathway, examining whether changes in water supply, process heat, or even packaging may have influenced outcomes.
In the laboratory, 1,2,4-Triazole-1-Acetic Acid’s track record as a versatile intermediate means we field requests for custom lots, specific dye-labeled variants, or isotopic tracing batches. Custom synthesis isn’t a paperwork process; it’s one involving clean room scaling, special handling and storage requirements, and direct engagement with customers on timelines, cost projections, and analytical support. The experience gained from this specialization filters back into our standard products, improving them batch by batch.
Pharmaceutical synthesis partners sometimes require unique integration. Meeting those needs — tighter particle size control, even lower metal content, or customized document support for regulatory filings — is a challenge we accept. Working in this regulated arena, process transparency is not simply a best practice: it’s the only way to ensure clients can fulfill their own regulatory burdens, backed by traceable, verifiable proof at every step.
Manufacturing 1,2,4-Triazole-1-Acetic Acid not only requires technical expertise, but also a disciplined approach to troubleshooting. Over the years, supply interruptions have forced our team to push for greater raw material source diversification. We eliminated single-point failures, qualifying secondary and tertiary suppliers, and conducting shadow runs to confirm identical results before scale-up. This means clients never see disruptions, even if a supply lane slows down for factors beyond our control.
Process waste and environmental controls have risen in priority. Importing best practices from other chemical domains, we set up in-house solvent and water recycling loops, reducing both cost and footprint. In every quarterly audit, our team reviews upstream and downstream process control logs. This ongoing cycle of improvement has enabled us to offer product lots with consistently lower levels of residual byproducts, to the benefit of clients working under increasingly strict environmental scrutiny.
Proof of performance beats advertising every time. We frequently run split-batch comparisons — half produced under conventional methods, half with improved work-up or post-treatment. Results get measured in our own test fields, at pilot partner locations, and in client facilities. These real-instrument data build confidence not only internally, but also with those who trust our 1,2,4-Triazole-1-Acetic Acid to perform year after year.
Those operating in the chemical manufacturing industry have witnessed in recent years the rising need for process transparency, environmental awareness, and customer partnership. Manufacturing 1,2,4-Triazole-1-Acetic Acid is not a solitary endeavor. Engagement with stakeholders — from seed companies and research labs to regulatory authorities — rests at the core of both technical and practical success.
We proudly maintain open lines of communication with clients, not out of obligation, but because their direct use cases challenge us to improve. Periodic partner audits, unplanned visits, and collaborative fieldwork foster a culture where feedback isn’t filtered or sanitized by sales teams, but handled directly by the technical staff capable of making improvements on short notice. Our team doesn’t fear hard questions about byproduct handling, waste tracking, or sustainability: these are topics we address head-on.
The regulatory landscape continues to change. Our addiction to transparent record-keeping and documentation is not a matter of compliance, but a strategic asset. Batches remain linked to laboratory notebooks, synthesis records, and digital logs. The result is a chain of evidence that stands up to field audits and satisfies even the most detail-oriented client inspections. For us, keeping a commitment to open data, rapid action, and collaborative progress has made the difference between a transactional sale and an ongoing industrial partnership.
In the years we’ve dedicated to producing 1,2,4-Triazole-1-Acetic Acid, each production run, customer feedback note, and field trial report adds to our cumulative expertise. Chemistry, in the real world, isn’t about perfection on paper; it’s about high standards, active adaptation, and clarity in every interaction, from raw material intake to end-use deployment.
We continue to invest in both equipment and people. On the plant floor, every technician who handles a 1,2,4-Triazole-1-Acetic Acid batch brings hard-earned skill, learned through close calls, scaling efforts, and direct feedback from the field. Each laboratory tech knows that their attention to detail, from melting point calibration to trace impurity assessment, will impact far more than a certificate of analysis.
For us, this product isn’t simply an entry on a catalog. 1,2,4-Triazole-1-Acetic Acid represents what careful manufacturing, honest reporting, and ongoing research collaboration can achieve. In every kilogram we ship, in every new technical partnership, the result stands as a testament to quality born of real, daily practice — not simply words, but measurable, repeatable, field-proven difference.