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HS Code |
599091 |
| Chemical Name | 2-[(Diphenylmethyl)Thio]acetic acid |
| Synonyms | Diphenylmethylthioacetic acid |
| Molecular Formula | C15H14O2S |
| Molecular Weight | 258.34 g/mol |
| Cas Number | 20720-40-3 |
| Appearance | White to off-white solid |
| Melting Point | 96-99°C |
| Solubility | Slightly soluble in water, soluble in organic solvents |
| Storage Conditions | Store at room temperature, tightly closed container |
| Purity | Typically ≥98% |
| Smiles | C1=CC=C(C=C1)C(SCC(=O)O)C2=CC=CC=C2 |
| Inchi | InChI=1S/C15H14O2S/c16-15(17)11-18-12(13-7-3-1-4-8-13)14-9-5-2-6-10-14/h1-10,12H,11H2,(H,16,17) |
As an accredited 2-[(Diphenylmethyl)Thio]Acetic Acid factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The packaging contains 25 grams of 2-[(Diphenylmethyl)thio]acetic acid in a sealed amber glass bottle with a tamper-evident cap. |
| Shipping | 2-[(Diphenylmethyl)Thio]Acetic Acid is shipped in tightly sealed containers, protected from moisture and direct sunlight. Packaging complies with chemical safety regulations, utilizing appropriate cushioning to prevent breakage. Shipping labels include hazard identification, and all handling follows standard procedures for non-flammable organic acids. Expedite delivery to minimize temperature fluctuations and ensure product integrity. |
| Storage | Store **2-[(Diphenylmethyl)thio]acetic acid** in a tightly sealed container, protected from light and moisture, in a cool, dry, well-ventilated area away from incompatible substances (such as strong oxidizers and bases). Ensure the storage area is equipped with spill containment. Label the container clearly and follow standard laboratory safety procedures for handling organic acids and sulfur-containing chemicals. |
Applications of 2-[(Diphenylmethyl)Thio]Acetic Acid in Industrial Manufacturing2-[(Diphenylmethyl)Thio]acetic acid serves as a crucial intermediate in multiple industrial fields. Its defined reactivity supports downstream synthesis workflows in pharmaceutical, agrochemical, and specialty chemical production. As a direct manufacturing source, we support integration at scale according to each sector’s regulatory and technical requirements. 1. Pharmaceutical Intermediate for Anticonvulsant APIsThis compound is widely used in the synthesis of pharmaceutical intermediates, particularly in the preparation of active pharmaceutical ingredients for anticonvulsant drugs. Production lines rely on stringent process controls during multi-step synthesis, focusing on purity and stereochemical fidelity throughout each transformation. Downstream manufacturers incorporate this acid in controlled batch reactions, where it functions as a key precursor in the assembly of complex thioether or phenylalkyl-type pharmacophores. Industry compliance standards
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2. Key Precursor in Custom Agrochemical SynthesisAgricultural chemical producers use 2-[(Diphenylmethyl)Thio]acetic acid for synthesizing sulfur-bridged diphenylmethane derivatives, which enhance pest control and crop yield protection formulations. In these applications, the compound enters multi-step synthetic schemes where its thioether functionality provides selective reactivity for downstream acylation or chlorination. Final actives require strict analytical validation to ensure regulatory discharge and bioactivity targets. Industry compliance standards
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3. Intermediate for Specialty Polymer AdditivesManufacturers of specialty plastics and elastomers leverage this acid to produce polymer additives that modify mechanical properties and oxidative stability. The thioether group, once introduced via grafting or copolymerization, acts at the molecular level to enhance the resistance of polymers to UV and thermal degradation. Batch records and QC data validate both additive incorporation and performance attributes in the final resin. Industry compliance standards
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4. Synthesis Aid in Custom Fragrance IngredientsProducers of fragrance ingredients deploy this chemical as a starter unit for building thioether-bridged aromatic compounds with unique olfactory characteristics. Precision in reactant charge and control of side reactions is vital for isolating high-value intermediates. Product must comply with international fragrance regulations, with analytical control over trace impurities intended for human contact applications. Industry compliance standards
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Making specialty chemicals involves much more than mixing ingredients. In our production of 2-[(Diphenylmethyl)Thio]Acetic Acid, we see every stage as a responsibility—from selecting key raw materials to fine-tuning process steps for purity and consistency. Over the years, improvements in batch design and filtration have pushed quality standards higher and shortened lead times. Operators in our plant understand that small deviations in synthesis can show up later in reactivity, so both our lab and process staff remain committed to documentation and transparency. Uninterrupted process monitoring, robust impurity profiles, and actual hands-on time with active reactions give us signals about how this compound performs, not just data points. Chemists, product managers, and plant operators regularly meet to review runs, samples, and customer case studies—this gives us practical, updated feedback instead of relying on outdated opinions. This process isn’t flashy, but it creates consistency in the finished product and it gives downstream users material they can trust.
2-[(Diphenylmethyl)Thio]Acetic Acid has the structure C15H14OS2. It incorporates a diphenylmethyl thioether side chain attached to acetic acid, yielding a unique combination of hydrophobic aromatic moieties with a carboxylic acid functionality. In physical form, our material presents as a crystalline solid—typically white to off-white, sometimes showing light yellow tones if exposure to air occurs through shipment or repackaging. By selecting optimal solvents and kinetic conditions, we control for color and avoid polymeric side products. Moisture and pH both impact granule stability, so our team carefully adjusts storage and packaging to minimize atmospheric exposure. Each batch is assayed for purity and only released after review of its HPLC, NMR, and IR data, which we openly discuss with clients as needed.
Chemists often use 2-[(Diphenylmethyl)Thio]Acetic Acid as a synthetic intermediate, especially for active pharmaceutical ingredient (API) precursors and some specialty catalysts. Nucleophilic sites and aromatic rings enable selective modifications, while the thioether linkage opens the door for various coupling strategies. Many research teams depend on this compound in asymmetric synthesis, sulfur transfer, or constructing custom ligands, thanks to its robust framework. The acid group not only increases solubility in polar media, but also simplifies downstream separation by crystallization or salt formation. Over years of supplying smaller academic labs to large-scale producers, we’ve seen that consistency batch-to-batch matters far more than anything else—so our staff keep close tabs on lot-to-lot differences and provide samples to returning customers, building confidence through actual results instead of speculation.
We don’t just follow the standard protocol for 2-[(Diphenylmethyl)Thio]Acetic Acid. Our plant layout lets us control time, temperature, and mixing through every step, reducing byproducts and improving isolation yields. Continuous investment in hands-on training gives operators confidence to identify subtle changes early in a run, preventing loss and saving both time and raw material. For example, we periodically adjust reflux timing or actively monitor thermal profiles, since these small shifts lead to higher purity and lower hazard profiles. Problems solved on the shop floor—clogged filters, vapor loss, malfunctions—teach us about the practical handling requirements that don’t show up in research papers. When customers give feedback on unexpected behavior during synthesis or formulation, we use those reports to rethink not just the process conditions but also packaging and transport. Long-term stability studies let us spot possible degradation well before it could affect your result, and we offer tailored solutions based on climate, warehouse conditions, and shipping route.
Specifications form the foundation of chemical supply. For 2-[(Diphenylmethyl)Thio]Acetic Acid, purity thresholds, moisture limits, and residual solvent guidelines reflect our commitment to supporting users in both regulated and exploratory projects. Analytical methods such as high-performance liquid chromatography, gas chromatography, and multi-nuclei NMR serve as the backbone of our internal release procedures. We run duplicate tests with control standards, documenting all outcomes and reporting any deviations openly. Each metric, from melting range to particle size, gets tied back to actual performance in downstream application—whether it’s reactivity in a Grignard coupling or shelf life for long-term storage. Our experience tells us: clarity in documentation and willingness to answer follow-up questions matter more than a “perfect number” on a certificate.
Some users ask if closely related thioacetic acids or aryl-thio compounds could serve the same functions as 2-[(Diphenylmethyl)Thio]Acetic Acid. Our customers have tested multiple structures and observed differences in reaction kinetics, byproduct formation, and ease of purification. The bulky diphenyl group affects both solubility and selectivity, slowing down unwanted side reactions without hindering the desired transformations. Thioacetic acid on its own, or less substituted thioether analogs, don’t show the same control over mechanism or finished material. Aromaticity, electron donor-acceptor behaviors, and steric protection together define the way this molecule fits into larger syntheses. During custom projects, researchers looking for orthogonal functionalization realize that less-substituted compounds bring greater unpredictability or force them to add more control steps. As a result, 2-[(Diphenylmethyl)Thio]Acetic Acid strikes a balance between reactive flexibility and practical handling.
Receiving product inquiries from pharmaceutical R&D teams, flavor and fragrance specialists, and advanced materials groups, we regularly witness compound applications far beyond the standard textbooks. In one story, an industrial research team discovered that switching to our high-purity 2-[(Diphenylmethyl)Thio]Acetic Acid reduced purification time during a multi-step synthesis that had previously required column chromatography on every batch. Thanks to reduced impurities and uniform particle size, the crystallization step improved, and a month-long project cut down to just three weeks.
Another example: at a pilot plant making sulfur-rich intermediates, a senior chemist reported lower side-chain oxidation when switching to our compound, even though storage conditions remained constant. In each of these cases, it’s not only about a number on a report, but how real-world handling and feedback push both us and our customers forward. Our technical team works with customers throughout their projects, suggesting solutions for mixing, dispensing, and recovery. Regular conversations, review meetings, and technical troubleshooting help us improve both our own processes and our customers’ long-term results, often leading to process innovation on both sides.
Like many specialized organosulfur compounds, 2-[(Diphenylmethyl)Thio]Acetic Acid brings challenges from synthesis to delivery. Maintaining consistent reaction conditions calls for tight management over temperature profiles, addition rates, and solvent quality. Minor temperature drifts—or technical problems with mixing—can cause unexpected reactions and byproduct formation. Our team mitigates these risks by assigning dedicated operators to each reaction, monitoring pH and conductivity throughout. We also review storage stability with both accelerated and ambient aging studies, translating those into recommendations for customers in various geographies.
Packaging and distribution present their own hurdles. Moisture ingress and exposure to air threaten product longevity. Our plant uses sealed containers, moisture absorbers, and inert gas blanketing when needed for larger shipments. Team members review every shipment’s transit plan to avoid damage, prolonged exposure, or customs hold-ups. We design packaging based on real experience: rugged drums for plant use and smaller high-barrier bottles for lab-scale R&D. Direct relationships with carriers enable transparent tracking and quick resolution should a problem arise. Customers value open lines of communication, so we keep shipping teams and technical advisors available to provide real-time support from our production facility onwards.
Users should take typical precautions when handling organosulfur acids, including ventilation, protective clothing, and avoidance of open flames or static discharge. Our team monitors exposure, reviews MSDS data, and regularly updates onsite safety training based on real incident reports and regulatory changes. Waste management runs through a closed-loop recovery process, capturing solvent for reuse and separating byproducts for proper disposal according to regulatory guidelines. Environmental considerations keep evolving as both local and global standards rise, and our plant commits resources to incremental improvements every year. By investing in energy-efficient reactors, solvent recovery systems, and ongoing training, we reduce both production cost and waste output. Open collaboration with customers pushing for green chemistry allows us to adapt formulations and suggest more sustainable workflow changes, supporting the broader move toward responsible manufacturing.
Requests for tailored grades, custom packaging, or lot-specific analysis come up regularly. Our production team reviews every inquiry, weighing technical feasibility, time, and cost. A collaborative approach—both in our internal process development and in external customer relationships—forms the base of successful supply. We share test data, run joint pilot batches, and provide samples to ensure what leaves our plant genuinely works in your process. This approach builds lasting trust and lets us gather insights not found in technical literature or datasheets.
Some customers co-develop new purification or isolation steps, bringing unexpected improvements to yield or safety. Others initiate periodic audits, which we welcome, since transparent operations and honest dialogues help root out weaknesses before they turn into serious problems. Many changes in our process trace back to these business partnerships. It’s not only a technical relationship, but one of shared improvement and risk mitigation.
Pharmaceutical and specialty chemical customers expect not just high purity, but a documented commitment to quality. Our quality team maintains comprehensive batch records, full analytical archives, and thorough inspection reports from each run. Regulatory factors—ranging from hazard labeling to export-import law—require ongoing adaptation, pushing us to update SOPs and train staff every quarter. In some cases, global agency requirements ask for revalidation of syntheses or more detailed traceability, which we accommodate through diligent recordkeeping and close cooperation with all departments.
By aligning production with evolving quality expectations, our facility builds both trust and safety into each delivery, protecting both our staff and yours. This system of conservative oversight isn’t just about compliance—customers regularly comment that our willingness to update reports and release supplementary data builds a bank of knowledge that guides both troubleshooting and long-term planning. We see transparency and learning as integral to both good science and business relationships.
We keep in regular contact with research groups testing uses for 2-[(Diphenylmethyl)Thio]Acetic Acid across medicinal chemistry, advanced polymers, and specialty intermediate manufacturing. By working directly with their technical teams, we help design and deliver compounds to exacting project standards. Some customers require unusual grades for photochemical or catalytic screening, so our R&D group works to adapt purification and crystallization methods to meet their evolving requirements. This environment of open exchange means we gain insight into new fields such as biodegradable materials or microreactor-scale conversions. The best learning comes not from a manual, but from listening to real-world trial results and thinking through the unexpected.
Looking forward, our team sees the boundaries of thioether and carboxylate chemistry as fields of opportunity. We share advancements in knowledge and process with those who rely on materials that meet real, challenging standards—because we’ve seen that both lab-scale innovation and large-scale production draw from the same root: steadfast commitment to continual improvement, backed by a production team willing to learn and adapt.
In everyday practice, it’s direct experience that teaches the most. Operators learn to sense changes through smell, color, and viscosity, responding early to deviations. Chemists in quality control get to know the quirks of each batch, letting them spot and correct issues before material reaches the warehouse. Tight connections between production, QC, and logistics staff mean small problems are caught and handled quickly—and lessons from any mistake lead to process upgrades and new safeguards. We foster a culture where people stay curious, document findings, and act quickly, because real quality grows from this sort of active engagement.
Time and again, we see customers return not just for the compound itself, but for the assurance born of these daily choices and small victories across our whole team.
Supplying 2-[(Diphenylmethyl)Thio]Acetic Acid takes more than meeting technical specifications—it demands a deep commitment to process, feedback, and partnership. As manufacturers, our objective stays clear: provide stable, trustworthy material and help drive innovation in every field touched by this specialty compound. Every batch, every customer inquiry, and every case study expands what we know and what we offer. By nurturing direct relationships, learning from challenges, and keeping technology up to date, we supply more than just a product—we deliver the result of accumulated experience and dedication to quality.