|
HS Code |
520136 |
| Productname | 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone |
| Molecularformula | C25H27N3O2 |
| Molecularweight | 401.50 g/mol |
| Casnumber | 569-58-4 |
| Appearance | Dark green crystalline solid |
| Meltingpoint | 230-235°C |
| Solubility | Soluble in ethanol, methanol, and DMSO |
| Synonyms | Malachite Green Base |
| Boilingpoint | Decomposes before boiling |
| Chemicalclass | Triarylmethane Dye |
| Iupacname | 6-(Dimethylamino)-3,3-bis[4-(dimethylamino)phenyl]-3H-isobenzofuran-1-one |
| Pubchemcid | 65035 |
As an accredited 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | Amber glass bottle with secure screw cap, labeled with chemical name and hazard symbols, containing 25 grams of 6-(Dimethylamino)-3,3-bis(4-(dimethylamino)phenyl)-1(3H)-isobenzofuranone. |
| Shipping | **Shipping Description:** 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone should be shipped in tightly sealed containers, protected from light and moisture, at ambient temperature. Proper labeling and documentation are required. Follow all applicable chemical transportation regulations and ensure packaging prevents leaks or contamination during transit. Handle as a laboratory chemical with care. |
| Storage | 6-(Dimethylamino)-3,3-bis(4-(dimethylamino)phenyl)-1(3H)-isobenzofuranone should be stored in a tightly sealed container, protected from light and moisture, in a cool, dry, and well-ventilated area. Keep away from sources of ignition, heat, and incompatible materials such as strong oxidizers. Label the container clearly, and ensure storage in accordance with local chemical safety regulations. |
|
Purity 98%: 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone with a purity of 98% is used in organic photovoltaic devices, where it ensures high charge mobility and conversion efficiency. Molecular Weight 441.57 g/mol: 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone with a molecular weight of 441.57 g/mol is used in OLED manufacturing, where it delivers uniform light emission and color stability. Melting Point 245°C: 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone with a melting point of 245°C is used in dye-laser applications, where it withstands thermal cycling and maintains lasing efficiency. Particle Size <10 µm: 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone with a particle size less than 10 µm is used in inkjet ink formulations, where it provides excellent dispersion and printing resolution. Stability Temperature up to 200°C: 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone with stability up to 200°C is used in high-temperature sensor coating, where it retains photostability and functional integrity. Absorption Maximum 548 nm: 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone with an absorption maximum at 548 nm is used in fluorescent probes, where it enables sensitive bioimaging and analytical detection. Solubility in Ethanol >50 mg/mL: 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone with solubility in ethanol over 50 mg/mL is used in solution-processed thin films, where it allows uniform layer formation and optimal device performance. |
Competitive 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone prices that fit your budget—flexible terms and customized quotes for every order.
For samples, pricing, or more information, please contact us at +8615365186327 or mail to admin@ascent-chem.com.
We will respond to you as soon as possible.
Tel: +8615365186327
Email: admin@ascent-chem.com
Flexible payment, competitive price, premium service - Inquire now!
Every compound in synthesis tells its own story. Years in chemical manufacturing have shown how materials shape industries far beyond the laboratory. That proves true for 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone—a name that might sound complex but plays a familiar role to those of us who bring life to colors. As a manufacturer, we see not just the formula, but the value this compound delivers when purity and consistency matter.
Anyone who has blended pigments knows the frustration of irregular batch performance or off-spec hue. We face these issues directly in the reactor room, not in a warehouse or on a reseller’s datasheet. Our entire approach to producing 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone starts with understanding how subtle changes in molecular architecture shift optical properties that designers, formulators, and engineers rely on. We realize at the glassware that the bis(dimethylamino) substitution on the phthalide core gives this molecule the ability to generate vibrant fluorescence—a reason it sees so much activity as a dye intermediate, especially for applications needing bright, long-lasting coloration.
Manufacturing such a molecule requires more than textbook chemistry. Experienced synthetic chemists recognize that small impurities, residual solvent, and even the way the final crystallization proceeds all interact with the product’s end-use performance. Our bench-scale and production-scale teams monitor these details in real time. This is not outsourced QC or checklist-driven approval. If a batch looks uneven or crystallizes unexpectedly, operators know that this can mean a client’s finished product will behave unpredictably under UV light or fade more quickly under sunlight.
Over many years scaling the synthesis of 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone, our plant teams have favored a multi-stage process combining robust precursor purification with sensitive downstream control. Beyond basic yield optimization, we track reaction by-products, color luminescence across different solvents, and melting behavior against specification. This is not a process that lends itself to “good enough” at any step. Users downstream—whether in specialty printing inks, security dyes, or advanced plastics—call us directly over single-digit consistency in molar absorption or trace by-products that CSA testing might overlook.
Our model for this product has been guided by hard-earned process data rather than by generic industry standards. Batch sizes range to meet typical demand for both specialty research and large-volume production; but regardless of output needed, our plant maintains the same solvent grades, residual amine checks, and post-synthesis characterization. Our analysts learned years ago that a shortcut at any of these points costs far more in returned product and lost trust than a slight uptick in purification time.
Every chemist who uses dye intermediates reviews purity and identity data closely, but onsite handling has taught us that bulk buyers care equally about flow, storage stability, and ease of dissolution. We target a fine, free-flowing powder with a bright, deep hue—even in its unmixed form. Moisture pickup, electrostatic charge, and filtration fines can all trip up ink and coating lines. We’ve worked with more than a dozen end users over the years to tailor physical state and particle size based on their real-world feedback, not just lab metrics.
The color characteristics—a strong blue to violet fluorescence under UV, depending on solvent and application—trace directly back to the precise positioning of dimethylamino groups within the isobenzofuranone core. Unlike more basic phthalide derivatives, these groups boost electron donation, yielding increased color purity, brightness, and wavelength specificity. Plant staff often run parallel batches, sometimes changing aminating agents or time profiles, to pull final product closer to a customer’s preferred chromatic coordinates or to pursue greater photo-stability. Our experience shows that controlling these details upstream saves dozens of downstream complications.
Users know this compound is a backbone for modern color chemistry. For our largest clients, most of the output ends up in thermally sensitive reactive dyes, security inks, and specialty plastic colorants. The isobenzofuranone framework carries more than just color—its reactivity profile also allows for versatile functionalization. We routinely supply research-grade material to academic labs exploring new sensor or imaging probes, and at scale for manufacturers using it as a precursor in toner and high-lightfastness pigment lines.
Our insight comes mostly from problem-solving alongside customers as they expand their own synthetic capabilities. One plastics formulator called to report static charging issues during mixing, which risked uneven dyeing; we adjusted particle surface characteristics batch-to-batch, eliminating downtime and color banding on their extruder. A security inks manufacturer flagged concerns about rapid fading due to trace photolytic byproducts. We ramped up batch controls and added a careful hydrolysis step, slashing their returns over six months.
There are always limits. No matter how well we control synthesis, the subtle differences in raw material lots—p-aminodimethylaniline purity, minor solvent composition swings—require tight process observation. Experience in plant troubleshooting confirms that dye intermediate stability favors consistent, high-purity grades with low residual water and sectioned packaging to prevent exposure and contamination.
As a chemical manufacturer, we see apples and oranges every week. Some products overlap in function but never in how they perform in a real plant or a customer’s line. Compared to close relatives—say, simpler phthalides or phthalocyanines—the key difference for 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone lies in the fine-tuned absorption/emission ratio and resistance to environmental fading. Brighter color and longevity sound easy to market, but actually involve tough choices in reagent handling, temperature profiling, and especially in post-purification.
We established early on that quick swaps or “equivalent” lots almost always throw off process balance. Some distributors talk interchangeability across intermediates, but when you’re managing a high-speed coating line, even sub-1% variances in pigment content or purity start to create defects. Unlike bulk commodity pigments, every batch of this isobenzofuranone derivative comes with unique spectral analysis traced directly to raw material lots and operator records. That transparency matters to factory managers who call us out of hours, looking for both data and someone to walk the plant floor with.
A related point centers on formulation flexibility. In practice, our compound offers improved compatibility with resin systems, especially those used in challenging environments—like flexible electronics or UV-cured films—where minor instability can propagate as panel defects. We have watched customers using more basic analogs labor for months over cracked coatings or misprinted security labels, problems that faded once the switch to our process-specific grade was made. The support comes from our own incident logbooks, not just commercial claims.
Supply chain reliability for specialty dyes gets discussed in boardrooms but plays out on chemical docks and hot reactors. Any production interruption—raw material hold-ups, delayed shipment on a reagent—translates straight to plant stoppage or recalibration. Since most of our production depends on specialized aromatic amines, we maintain long-term contracts with proven suppliers and, where possible, hold buffer stock locally. Regular testing of incoming amine batches, right down to NMR confirmation, comes from past experience where one off-spec shipment ruined an entire week’s production.
Transportation for this compound, especially in larger volumes, comes with unique hurdles. Photo-reactive intermediates risk slow degradation or clumping, so we engineered packaging with low oxygen permeability, robust light shielding, and tamper-evident seals. Several clients run audits of transit temperature and humidity tracking—our logistics staff took to testing packaging batches in-house, then refining based on real-world feedback. We have found that customer trust grows fastest with data, not with “industry standard” compliance declarations.
Chemical handling in our own plant teaches us prudence—gloves, eye protection, and clean, dry storage areas all matter. During high-volume batch sampling, our team monitors not only for dust but also static discharge, since this type of isobenzofuranone derivative can build up charge on conveyors or during sieving. We install humidity controls around packaging and final product bins, both for worker safety and to preserve downstream utility.
Customers asked about waste byproducts and spent batch management; over years of runs, we adapted solvent recovery loops that reclaim up to 80% of the most expensive reagents. We keep spent filters and washings contained until post-reaction testing checks residual colorant levels, so accidental pollution never leaves our facility unchecked. These steps weren’t regulatory add-ons—they followed from observing waste streams and realizing the compound’s high reactivity profile, even in dilute forms, can challenge municipal wastewater plants.
The QC team doesn’t just sign off; they call up supervisors at odd hours to check melting points, spectra, and batch records against long-term logs. We’ve seen more than one product return traced not to synthetic slip-ups, but to tiny changes in storage or late packing. To tighten controls, we integrated digital traceability linking batch production data down to operator shifts and input lots. The result goes beyond ISO certificates—a transparent log that arms customers with certainty in their own audits.
For this compound, a top area of focus involves luminescent characteristics—a key reason for its popularity in security and fluorescent applications. Our QA system plots excitation and emission readouts on every batch, comparing them both to golden standards in our library and to prior lots shipped to a given customer. No two batches are ever identical, but ongoing spectral trend tracking gives insights into root causes when something shifts, or an in-field test turns up anomaly.
Long-standing partners trust this built-in accountability. When short-term customers need application support, we turn to our storage tank logs, NMR charts, and batch histories, making sure surprises are rare and, when they do occur, fully explainable with hard data.
Sourcing the right precursors for this product made us more careful buyers. Dimethylamino precursors, especially with unpredictable market swings, incentivize some players to cut corners. Direct imports rarely match stable, regionally regulated supply channels. After a raw material shortage caused a week of overtime for our chemists, we evaluated supplier audit procedures and kept only those that align with production integrity. We share these logs with customers facing their own regulatory or compliance reviews.
On the regulatory front, we maintain dossiers tracing not just chemical bonds but also compliance with evolving registration norms, both local and global. This is not only for customs clearance or customer audits, but to catch early warning signs of change in allowed uses or exposure thresholds. That vigilance has spared more than one client from having to reformulate at the last minute.
Years of manufacturing push us to improve both product quality and sustainability. We trial greener reaction media, higher-yield aminating agents, and more robust filtration stages, not for marketing but because they reduce overtime, waste, and energy use. Tracking repeat customer feedback over time, we monitor changes in application fields—like shifts from conventional inks to digital printing—and adapt manufacturing platforms accordingly. Direct dialogue with plant engineers at customer sites, rather than sales channel intermediaries, keeps us focused on real-world needs rather than broad market trends.
Manufacturing chemicals is more than formulas and schedules. For us, 6-(Dimethylamino)-3,3-Bis(4-(Dimethylamino)Phenyl)-1(3H)-Isobenzofuranone brings together years of plant experience, customer troubleshooting, and ongoing technical progress. We see how challenges get solved through direct action, not generic process flowcharts. The stories behind each batch—whether a pigment innovation, a performance snag, or a safety breakthrough—inform how we produce today and how we anticipate tomorrow’s demands.
Performance in the field thrives on decisions made months earlier in synthesis, handling, and shipment. We trust the lessons written in equipment logs, operator notes, and customer calls above one-size-fits-all compliance statements. For those who rely on detail and consistency at every step, this product has grown into a benchmark for specialty dye intermediates—and we keep making it better, one carefully controlled batch at a time.