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HS Code |
789011 |
| Chemical Name | Aluminum Diacetate Hydroxide |
| Chemical Formula | C4H7AlO5 |
| Molar Mass | 166.08 g/mol |
| Appearance | White powder |
| Solubility In Water | Soluble |
| Density | Approx. 1.5 g/cm3 |
| Melting Point | Decomposes before melting |
| Cas Number | 142-03-0 |
| Ph | Slightly acidic to neutral in solution |
| Odor | Odorless |
As an accredited Aluminum Diacetate Hydroxide factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | 500g of Aluminum Diacetate Hydroxide is securely packed in a sealed, labeled HDPE bottle with tamper-evident cap for safe handling. |
| Shipping | Aluminum Diacetate Hydroxide is shipped in tightly sealed containers to prevent moisture absorption and contamination. Containers are labeled according to regulatory requirements and handled with care to avoid spills. The material is stored and transported in cool, dry conditions away from incompatible substances, following all relevant safety and environmental guidelines. |
| Storage | Aluminum Diacetate Hydroxide should be stored in a tightly sealed container, away from moisture, heat, and direct sunlight. Keep it in a cool, dry, and well-ventilated area, separate from incompatible substances such as strong acids and bases. Ensure proper labeling and prevent access by unauthorized personnel. Use appropriate personal protective equipment when handling and observe safety guidelines to prevent contamination or decomposition. |
Applications of Aluminum Diacetate Hydroxide in Industrial ManufacturingAluminum diacetate hydroxide serves as a functional specialty raw material across multiple process-intensive industries, including coatings, ceramics, pharmaceuticals, water treatment, and catalyst preparation. As an experienced manufacturer, we supply this compound to downstream partners requiring precise quality control, compliance documentation, and technical support for regulated production environments. 1. High-Performance Anticorrosive Coating FormulationsAluminum diacetate hydroxide supports the fabrication of anticorrosive coatings for industrial-grade metals, including marine, automotive chassis, and structural steel segments. The compound acts as a crosslinking booster and pigment dispersing aid. Its controlled reactivity with binder resins helps develop dense, weather- and acid-resistant film layers. We adapt product specifications for multi-stage production: dispersing premixes, main paint blending, and stability boosters for extended shelf-life in both aqueous and solvent-based systems. Industry compliance standards
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2. Technical Ceramics and Electronic Substrate ManufacturingAluminum diacetate hydroxide is a key precursor for high-purity alumina sources in technical ceramics. The material enables tight shaping and sintering control for electronic substrates, insulators, and high-frequency components. Its decomposition profile, releasing only volatile acetate groups under controlled firing, allows the production of uniform, fine-grain ceramic structures needed for low dielectric loss and impedance-matched electronic device bases. Industry compliance standards
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3. Active Pharmaceutical Ingredient (API) SynthesisPharmaceutical manufacturers use aluminum diacetate hydroxide as an intermediate or auxiliary in bulk API production, especially for antacid and external astringent preparations. It works as a stable source of bioavailable aluminum ions and acetate buffering during synthesis or final formulation. We ensure compliance with pharmacopoeial monographs and produce documentation for validated manufacturing processes, addressing trace impurity risk assessments and batch reproducibility. Industry compliance standards
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4. Water Treatment Chemical Synthesis and Flocculant ManufacturingAluminum diacetate hydroxide forms an integral raw material for specialty water treatment chemicals, especially as a precursor for polymeric aluminum flocculants and controlled-release coagulants. Its acetate content improves initial dissolution and aids in the formation of polyaluminum clusters, which optimize particle removal and sludge minimization in municipal and industrial wastewater. Clients utilize technical grade product with trace contaminant control for sensitive downstream environments, including food processing and semiconductor plants. Industry compliance standards
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5. Catalyst Precursor For Petrochemical and Fine Chemical ProductionOur material functions as a stable aluminum source for the in situ generation of alumina supports in petrochemical catalyst production, including Ziegler–Natta polymerization, alkylation processes, and selective hydrogenation. The compound’s decomposition kinetics and acetate group behavior tailor the acidity and surface texture of finished catalysts. Customers select this input for pilot and commercial scale-up projects, requiring consistent performance in continuous and batch reactor systems. Industry compliance standards
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Aluminum diacetate hydroxide stands out as a specialty chemical with a specific role in a tightly defined set of chemical and industrial tasks. As a manufacturer, we approach each production batch with an understanding rooted in decades of hands-on formulation experience. Our model, ADH-18, represents a commitment to purity and reaction consistency, both of which are foundational for end users who count on reproducible performance.
This compound brings together aluminum’s affinity for stability and the dual role played by acetic acid groups, which influence solubility and reactivity. We synthesize aluminum diacetate hydroxide through a controlled interaction of aluminum compounds with acetic acid under strictly managed conditions. Each batch is monitored to ensure the correct ratio of acetate to hydroxide groups is reached, because deviations here affect physical behavior and downstream application results.
Some background on its structure helps clarify its importance. Aluminum diacetate hydroxide forms by partially replacing hydroxide groups on an aluminum hydroxide backbone with acetate ions. The resulting chemical reacts differently compared to simple aluminum acetate or aluminum hydroxide. You get unique solubility properties and a distinct reactivity profile, essential for demanding end-use applications, especially where precise chemical transformation is required.
Manufacturing a specialty product like this means accepting that chemical purity is non-negotiable, especially since our clients use it for everything from catalyst precursors to specialty ceramic binders. Each raw material feed comes with its own set of batch-to-batch variations. As a producer, we select inputs only after verifying trace impurities fall below acceptable limits. This ties directly to both safety and application performance. For benchmark reasons, our ADH-18 routinely achieves a minimum assay of 98% active component, with loss on ignition, heavy metal content, and moisture all tightly controlled by our in-house lab.
Our product is white to off-white powder, typically showing fine particulate form with moderate bulk density. We avoid unnecessary fillers or anti-caking agents because we know many users demand a single-component raw material, especially those working in sensitive environments such as advanced ceramics. Solubility stands as one of the top differentiators—aluminum diacetate hydroxide exhibits partial solubility in warm water and interacts actively in the presence of mild acids or certain salts. Compared to aluminum acetate, it bears slightly lower solubility but better hydrolytic stability. This feature lets formulators push processes with fewer concerns about premature breakdown or unwanted byproducts.
Process consistency is always a challenge. Years ago, early batches suffered from occasional clumping due to trace moisture variances. We installed inline dryers and adjusted the sequence of acetate addition, so each unit of product now avoids these old pitfalls. Handling and reactivity are not just about published numbers; they’re about real shop floor results and what happens under commercial-scale conditions. Customers in the catalysis sector reported smoother dispersion once we reduced the trace metal content—a reminder that off-the-shelf standards only tell part of the story.
From synthesis to storage, our crew pays close attention to packaging integrity. Moisture absorption degrades not just visual appeal, but also subsequent chemical function. Double‐layer polyethylene bags, lined with desiccant packets, help maintain the state of the product through long shipments. Technical teams e-mail feedback directly to our floor staff after every delivery, leading us to re-tool our filling lines and traceability workflow. Over time, layer upon layer of incremental improvement has grown out of direct communication with end-users. We credit clients for flagging anomalies, and we take every suggestion as a call to action.
Our production of aluminum diacetate hydroxide primarily serves formulators and researchers looking for fine-tuned control at the molecular level. Typical usage includes serving as a precursor in sol-gel chemistry for producing specialty ceramics and hybrid organic-inorganic materials. In these settings, consistency in hydrolysis and polymerization reactions matters. Compared to other aluminum compounds, the presence of acetate groups can accelerate or moderate gel formation depending on reaction setup, impacting resulting porosity and strength. Some technical ceramics require a particular shrinkage pattern or surface finish, which only this specific blend of acetate and hydroxide delivers.
Coating manufacturers value ADH-18 because it helps stabilize pH and contributes to film formation without introducing excessive residual salts. We have watched lab teams run comparative trials between our material and traditional aluminum hydroxide; in every round, our product produced more uniform coatings and smoother viscosity profiles, especially in water-based systems.
Many users approach us after working with aluminum acetate or pure aluminum hydroxide. The main distinction isn’t just about chemical formula. Aluminum acetate dissolves faster but lacks the hydrolytic stability needed for high-temperature or long residence time processes. It also tends to bring in extra acetate, here and there leading to off-odor issues. Pure aluminum hydroxide, in contrast, is less reactive and difficult to disperse without aggressive mixing or acid addition. Our ADH-18 bridges this gap by striking a balance. It enables slower, more predictable dissolution and maintains structural integrity in complex mixtures.
Some chemical suppliers introduce blends or generic grades of aluminum salts as substitutes. Generic blends lack the batch-specific monitoring tailored to the acetate/hydroxide ratio. We see this play out directly; customers attempting to substitute often return after facing irregular performance or filtration issues. Our approach to manufacturing sticks strictly to the syntheses which maximize consistency—not just for immediate usability but for long-term stability.
A large portion of our supply goes to research groups exploring material science boundaries. ADH-18’s ability to act as a finely tunable aluminum source supports teams working on advanced composites, catalyst substrates, and even new pharmaceutical delivery systems. One client, working on a next-generation sustained-release drug form, ran parallel batches with several aluminum sources. The batches using our ADH-18 gave them consistent compaction and tablet integrity, a small advantage that made scale-up possible. We learned from their feedback, using it to tighten particle size controls and screen for rare contaminants.
Interaction with professional R&D teams challenges production routines, pushing us to new purity and documentation standards. Regular external audits from university partners have shown that nothing substitutes for open access to analytical results. The chemical industry’s movement towards greater transparency benefits everyone. Over the last three years, we have overhauled our data logs and made historical batch outcomes part of our everyday quality review. Without the pressure brought by discerning scientists, we might never have pushed our methods this far.
Chemical manufacturing doesn’t operate in a vacuum, and responsibility demands attention to both worker safety and environmental impact. Regulations in many markets limit permissible levels of trace metals, acetic acid vapor, and fine airborne particulates. Our plant includes real-time emission meters, and our effluent is neutralized before final release. Internal safety briefings stress the need to handle even seemingly benign products, like this one, with vigilance. Accidental ingestion or high-concentration exposure to dust remains a health hazard, and we train all line staff accordingly. As policies shift worldwide, our compliance approach stays nimble, relying on continual training and upgrading of plant equipment. There is always a balance between production efficiency and operating responsibly, and this product’s low environmental persistence works in its favor. We supply comprehensive documentation reflecting hazard analyses and real-world exposure studies, and we revise these in step with field updates and customer questions.
Every batch generates its own set of questions. Our sales engineers field calls about solubility profiles, mixing instructions, and reactive compatibility with other chemicals. We view these queries not as interruptions, but as opportunities to extend technical insight. Batch-specific differences sometimes surface in end-use, and we keep a running log of repeat issues. For instance, some clients using older mixers noticed slow incorporation, so we ran a series of blending trials using standard equipment from various decades. The outcome produced a set of modified granulation tips, distributed as technical notes to clients in the field.
Direct engagement helps us prevent downstream failures. Several years back, clients in the water-treatment sector reported an uptick in filter blockages correlated with a minor particle size drift in our output. This feedback loop cut our response time in half and led to a process upgrade with better particle size monitoring. As a result, we catch minor variations before they reach the warehouse. Our field service engineers stay in direct touch with partners, often troubleshooting on-site in tandem with their technical staff.
Products like aluminum diacetate hydroxide live and die by the depth of collaboration between manufacturer and end user. We see every order as the beginning of a technical dialogue, not a point of transaction. Where most product information ends at a certificate of analysis, we dig further—documenting not just the specifications met, but the choices made during production, and the rationale behind each change. This means cataloging raw material trends, minor changes in crystal morphology, and even seasonal humidity shifts.
We keep samples archived for over five years, often referencing old batches to trace the root of challenging application problems. The investment in this level of backward traceability pays off in credibility and trust, especially when a user proposes a new application or identifies an unusual reaction product downstream. In one case, a multinational developer approached us mid-project to assess the impact of switching carrier solvents. Our joint lab team matched their conditions and identified a minor scaling issue, narrowed down to an interaction with their additives. The ability to reconstruct and verify these effects—across months or even years—means fewer surprises for everyone.
The chemical landscape does not sit still, and specialty aluminum compounds develop right alongside new technologies. Some markets, particularly in specialty electronics, drive requirements for even higher levels of purity or novel reactivity. We engage pilot-scale production ahead of schedule for clients looking to tweak formulation features, often running side-by-side with their teams to dial in outcomes. As regulatory bars rise, documentation and trace controls grow stricter. We’ve adapted by integrating digital batch records and quick-reference QR codes tied directly to our lab database. In the field, clients gain immediate access to batch-level data for compliance audits and internal reviews, streamlining their own production cycles.
Feedback from users never falls on deaf ears. If material characteristics shift, or a formulation trend emerges, production teams loop fresh insights straight into process engineering decisions. The lines between R&D and routine production blur as new requirements come into view. Whether the challenge is lowering minimum detection limits for contaminants or meeting specialized particle size distributions for emerging applications, we align with market motion, not just with internal metrics or the old ways of doing things.
Looking ahead, our development plan follows the needs of both industrial users and the growing research community. Modern methods will keep tightening material controls and expand the envelope for new uses, especially at the interface of organic and inorganic chemistry. We dedicate significant resources to method improvement, including pilot reactors designed specifically for acetate-series aluminum compounds. Process engineers and chemists contribute directly to product evolution, reporting successes and setbacks openly and learning from every project iteration.
In a business shaped by volatile feedstock costs, regulatory scrutiny, and ever-advancing product expectations, unwavering focus matters. We don’t see aluminum diacetate hydroxide as a bulk commodity; we view each batch as a technical building block, supporting complex projects across industries. The lessons gathered during synthesis, handling, and delivery become cumulative knowledge—shared with each shipment and every conversation with those using it in production. Every technical note, customer tip, and internal process audit ultimately shapes what we offer on the market.
Some users, especially in procurement, ask about pricing and value relative to more common aluminum salts. Aluminum diacetate hydroxide costs more than basic hydroxide or acetate because it takes extra steps to control composition and purity. Cutting corners by using technical grade versions from nondescript suppliers can save money up front, but almost always brings hidden costs later—be it higher waste rates, formulation failures, or regulatory headaches.
The data on actual cost-in-use tells a clear story: Formulators relying on consistent batches preserve downstream productivity, reduce the risk of lot rejection, and ensure their own customers receive finished goods that meet expectations every time. Our own experience and return business over years verifies that most users recognize the value in a purpose-made compound over improvised blends or commodity substitutes.
At the end of the day, aluminum diacetate hydroxide remains more than just a catalog entry or chemical formula. It represents years of accumulated know-how, careful material selection, ongoing investment in process discipline, and above all, transparency in customer relationships. The people behind each drum or bag carry a responsibility for not only what leaves the factory, but how it performs in the hands of specialized professionals around the world. That responsibility means welcoming field reports, running extra tests, and constantly refreshing methods whenever a client’s requirements shift.
Every batch signals a handshake between makers and users—a shared commitment to precision, reliability, and progress in specialty chemistry. As manufacturers, we don’t operate in isolation. Our product outcomes build on the honest feedback and demanding questions posed by users in laboratories and plants worldwide. Their challenges keep our operation sharp, focused, and dedicated to setting higher standards with each year.