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HS Code |
605642 |
| Product Name | 1-(4-Bromophenyl)piperazine Hydrochloride |
| Cas Number | 57801-95-3 |
| Molecular Formula | C10H13BrN2·HCl |
| Molecular Weight | 293.59 g/mol |
| Appearance | White to off-white crystalline powder |
| Melting Point | 240-242°C (dec.) |
| Solubility | Soluble in water and alcohol |
| Purity | Typically ≥98% |
| Storage Condition | Store at 2-8°C, protected from light and moisture |
| Synonyms | 4-Bromo-1-phenylpiperazine hydrochloride |
| Smiles | C1CN(CCN1)C2=CC=C(C=C2)Br.Cl |
| Inchi Key | IPOCZXVTKJMQDG-UHFFFAOYSA-N |
| Hazard Statement | Irritant; handle with care |
As an accredited 1-(4-Bromophenyl)Piperazine Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | A 25g amber glass bottle labeled “1-(4-Bromophenyl)piperazine Hydrochloride,” tightly sealed with a screw cap, includes hazard symbols. |
| Shipping | 1-(4-Bromophenyl)piperazine Hydrochloride is shipped in secure, airtight containers to prevent moisture absorption and contamination. Packaging complies with chemical safety regulations, including proper labeling and hazard documentation. During transit, the substance is handled as a non-flammable, hazardous item, ensuring temperature stability and protection from light or physical damage. |
| Storage | Store 1-(4-Bromophenyl)piperazine hydrochloride in a tightly sealed container, protected from light and moisture, in a cool, dry, and well-ventilated area. Keep away from incompatible substances such as strong oxidizers or acids. Ensure proper labeling and avoid prolonged exposure to air. Store at room temperature unless otherwise specified by the manufacturer or material safety data sheet (MSDS). |
Applications of 1-(4-Bromophenyl)Piperazine Hydrochloride in Industrial ManufacturingAs a specialty manufacturer, we supply 1-(4-Bromophenyl)Piperazine Hydrochloride directly to regulated sectors where advanced intermediates play a critical role in enabling complex molecule synthesis. Our material meets strict industrial demands for purity, traceability, and application performance within highly targeted downstream fields. 1. Active Pharmaceutical Ingredient (API) Intermediate for CNS Drug SynthesisPharmaceutical manufacturers use this compound as an essential intermediate in multi-step syntheses of central nervous system (CNS) drugs, particularly in the production of emerging piperazine-based antipsychotics and antidepressants. The hydrochloride salt ensures controlled reactivity and ease of isolation during batch and continuous flow processes, facilitating stringent impurity control for API manufacturing under global standards. Industry compliance standards
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2. Agrochemical Intermediate for Piperazine Fungicide SynthesisAgrochemical producers employ the material as a key advanced intermediate in processes producing piperazine-derivative crop protection agents. Its brominated aromatic ring enables specific substitutions for downstream fungicide scaffolds, with tight material balance and low impurity requirements aligning with eco-toxicological regulations. Industry compliance standards
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3. Specialty Chemical Synthesis for Dyes and Pigment IntermediatesIn the colorants industry, manufacturers integrate this piperazine derivative as a precursor in the synthesis of functional dyes and specialty pigments requiring the 4-bromophenyl motif. Its controlled salt form supports consistent reactivity during diazotization, coupling, or further halogenation steps, which demand strict process monitoring for end-use application safety and shade quality stability. Industry compliance standards
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4. Advanced Intermediate for Chemical Probes and Fine Chemical Building BlocksChemical research and diagnostics manufacturers select 1-(4-Bromophenyl)Piperazine Hydrochloride as a building block for small-molecule probes and specialty fine chemicals, capitalizing on its halogenated aromatic structure and piperazine nitrogen reactivity in functionalization schemes. Strict quality is essential for reproducibility in downstream product testing and analytical applications. Industry compliance standards
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Inside our plant, we know 1-(4-Bromophenyl)Piperazine Hydrochloride by its distinct crystalline look and reliable batch-to-batch nature. Every shipment carries the signature of careful synthesis and routine testing, but the real story comes from the chemists on the ground. Synthetic routes that work for more common piperazine derivatives sometimes struggle to accommodate the brominated aromatic system—yet over the years, we’ve tailored our process until this hydrochloride appears as a white to slightly off-white powder, free-flowing and stable under ordinary storage. Unlike generic, off-brand intermediates, this one stands up to the standards of advanced research and industrial utility.
The model we produce serves labs focusing on pharmaceutical research, CNS agents, and agrochemical discovery. Specifications go beyond basic chemical structure: our QC teams run HPLC for both purity and detection of non-aromatic bromides, and our NMR suites check for structural integrity post-reaction. Water content questions pop up often, so we’ve fine-tuned our final drying stage—our 1-(4-Bromophenyl)Piperazine Hydrochloride keeps moisture well under the accepted 0.5% mark, and we ship every drum with a sealed certificate of analysis. None of these layers are for show. From project lead to floor tech, we’ve seen what inconsistent intermediates do to a downstream route; a single contaminated lot means lost time and burned budgets.
In our experience, requests for this hydrochloride salt reflect researchers’ need for consistent reactivity and safety on the bench. Not all bromophenyl piperazines behave the same. Free base forms are less stable, pick up moisture, and clump together during weighing—a headache for teams who need tight input mass control. Salts like the hydrochloride flow better, with fewer static clumps, and this directly impacts reproducibility in scale-up reactions. We’ve spoken with clients who tried skipping the extra salting step to save money, only to see purity crash and waste spike. For teams running parallel syntheses or sensitive substitutions, our hydrochloride version eliminates issues with atmospheric degradation.
Different piperazine compounds fill different toolkits. Some are geared for rapid structure-activity relationship testing, others for bulk pharmaceutical production. The 1-(4-Bromophenyl)Piperazine Hydrochloride we supply fits best into projects requiring strong electron-withdrawing effects at the para position and robust compatibility with halogen-lithium exchange—something our partnership with several Swiss bioscience institutes proved out during a headache-inducing multi-week synthesis run. Other piperazines in our catalog might offer methyl or chloro substitutions, but they twist reactivity profiles in unpredictable ways. The bromine in this product consistently supports further carbon–halogen bond transformations, while the hydrochloride ensures the molecule’s workability in both aqueous and organic phases.
Our product usually finds its way into processes that focus on CNS drug discovery, pesticide lead development, and advanced material intermediates. Clients use it in Buchwald–Hartwig cross-couplings, Suzuki coupling sequences, and the preparation of piperazine-based heterocycles. The hydrochloride salt format eliminates much of the uncertainty surrounding downstream salt formation, shaving entire days off workflow for pilot labs and large-scale contract manufacturers.
For those concerned about residual solvents or halogen exchange byproducts, our approach combines modular recrystallization and vacuum drying at specified intervals. Analytical data reflects more than textbook thresholds; we review trends among actual QC runs, noting seasonal variations in ambient humidity or reagent batch quirks. We routinely see differences in final product quality between manufacturers who cut corners versus those who maintain aggressive monitoring standards. The drop in false positives and trace decomposition in our lots means we see fewer customer complaints and rare product recalls.
No one in chemical manufacturing can ignore market turbulence or evolving regulatory pressure. Brominated intermediates used to be easy to source on the cheap, with origin and impurity profile rarely scrutinized. Now, stricter customs checks and traceability requirements puzzle even seasoned import teams. Sometimes we see shipment delays due to tightening guidelines on brominated compounds. Our solution—vertical integration of key upstream reactants and transparent documentation—keeps production lines open, but not without cost. We invest more in closed-system handling to prevent fugitive bromine loss and waste streams, a lesson hammered home after early attempts led to unnecessary environmental reporting headaches.
The production of 1-(4-Bromophenyl)Piperazine Hydrochloride requires managing multiple environmental permits and adhering to regional emission limits. Waste doesn’t just leave the plant unnoticed; neutralization steps and solvent recycling become line items on our internal cost sheets. We work with both government agencies and local communities to minimize odor complaints and wastewater issues, and the compound’s predictable reactivity makes these efforts practical. These investments are not only ethical but practical—any shortcut leads to unacceptable batch-to-batch variability or failed compliance audits.
Most feedback comes from teams struggling with reproducibility or chasing new SAR data in medicinal chemistry programs. In R&D runs, a reliable feedstock for piperazine analog synthesis sets the pace for follow-up experiments. Colleagues in scale-up have told us that access to high-purity 1-(4-Bromophenyl)Piperazine Hydrochloride directly influences yield targets and the need for downstream purification, especially where ultra-trace halide contamination can cascade into later process issues.
Whether tackling CNS-active scaffolds or pesticide candidates, researchers report that our material dissolves evenly, reacts predictably, and rarely introduces foreign ions. In multi-step syntheses, each upstream inconsistency expands costs exponentially. The quality of starting materials stays visible all along the value chain, all the way to clinical evaluation or field testing.
Quality management is not paperwork for inspectors, but something we live every day. Long before official bodies ask for records, we track raw material sources, review reaction logs, and audit process parameters during each lot’s conversion. The habits formed during product recalls or permit inspections stay sharp. Every time we consider a new brominating reagent or solvent swap, our R&D chemists run small-batch trials, inspect end-point color, and check trace byproducts by LC-MS. These habits cut down on supply hiccups and guarantee each drum’s consistency, especially when the product ends up in something as unforgiving as a GLP-regulated development program.
We prefer full-spectrum fingerprinting—GC, LC, NMR—so that our partners in academia or industry never get surprised by an invisible contaminant. Simple things like color, density, and flow let us spot problems before they ever reach the client. The few times outside labs have uncovered unusual behavior, our collaborative review process nips confusion in the bud, turning single issues into permanent process improvements.
Some customers ask why not use the free base form to save a step. Our plant managers have seen the consequences: volatility climbs, products melt and clump, measuring turns into a hassle. The hydrochloride salt lasts longer, handles easier, and plays nicely with most standard reaction solvents. Stability controls reach out to every link in the chain, not just the one inside our facility.
Why don’t we chase every permutation—fluoro, methyl, or nitro substitutions—at once? While possibilities abound, each tweak starts a whole new validation round. For example, researchers working with fluoro analogs report that minor differences in solubility force major adjustments in reaction workup, while the brominated version brings a good balance of leaving group ability and manageable reactivity. Having walked through these process runs ourselves, we keep production focused, only scaling diversification once pilot partners confirm their synthetic sequence translates as expected.
Our business doesn’t just stop at the batch records. We support custom packing or on-demand synthesis for those with unique purity or impurity requirements—especially when regulatory filings or patent submissions demand product-specific C of A data. Our technical team openly shares analytical results and offers troubleshooting advice when teams hit a wall with a new substitution pattern or coupling challenge.
Working with this hydrochloride salt, we’ve identified key factors that separate robust production from headache-prone operations. The right temperature ramp, precise quench timing, and controlled atmosphere during final drying all count. Each time a customer returns with updated analytical results or reports a downstream anomaly, our plant managers and chemists re-examine workflows and tweak upstream conditions if needed. Feedback cycles aren’t formal exercises—they’re a direct link to performance improvements and trust-building that play out in stronger business relationships and fewer last-minute emergencies.
Over the years, customer feedback has shifted our manufacture more than any internal checklist. Clients hunting for new CNS leads asked us to drop detectable halide residue beneath the industry standard, and our investment in new analytical methods brought sample turnaround down by half. Trial and error, not theory alone, helps us anticipate seasonal issues or batch-to-batch quirks rarely flagged by generic specs. No textbook warned us about the drying complications during monsoon season, but experience did.
Open communication defines how our teams respond to oddities in solubility or unexpected coloration during handling. The regular exchange of samples with partners, especially those struggling with fringe reactions or untested coupling agents, uncovers real-world stress points. Sometimes improvements are as simple as changing the mesh size of our drying screen; other times, a multi-lab review uncovers the benefit of a minor pH tweak during final precipitation. Our customers’ process chemists have caught issues upstream, so we never skip the listening step.
Producing 1-(4-Bromophenyl)Piperazine Hydrochloride to demanding, real-world standards involves more than a textbook approach. Each process tweak, from raw material sourcing to drying protocols and packaging, grows out of chemical know-how earned on the floor. Mistakes—once made—become lessons that improve solvent conservation, reduce offgrade outputs, and knits direct connection between plant, lab, and end user.
Some operators prize record throughput above all else. We’ve seen the troubles this creates: unplanned stops, contaminated lots, wasted time in triage mode. Our shop puts more stock in consistently hitting our analytical targets and communicating early if a batch drifts. Decades in this business proves the value of traceability, collaborative fixes, and continuous learning. Many buyers focus on short-term cost savings, but our regular clients see the payoff in reproducibility, compliance, and minimized product loss.
The real value of our 1-(4-Bromophenyl)Piperazine Hydrochloride comes in its follow-through. Guaranteed lots are a foundation, but shared troubleshooting and long-term engagement provide the resilience labs need in an unpredictable market. As regulatory requirements rise and chemical complexity grows, we strengthen our operations by focusing on incremental improvements grounded in daily experience and two-way discussion.
This approach changes how our clients run their own labs. Early adopters of our hydrochloride salt find faster scale-up, fewer costly process failures, and smoother regulatory submissions. No single molecule guarantees instant success, but reliability and concrete support ease the pressure on discovery timelines and manufacturing KPIs. Our involvement goes deeper than just moving boxes—we stay involved so that the molecule remains a trusted tool in the evolving chemical landscape.
Our process for 1-(4-Bromophenyl)Piperazine Hydrochloride has never stood still. Direct experience—dealing with regulatory audits, process upsets, or last-minute composition adjustments—has built a culture where every batch, every report, and every client call matters. Chemical manufacturing often claims consistency or innovation, but for us, those words only mean something after years on the production line and direct feedback from the working scientists who depend on our product. We meet the needs of today’s researchers by investing in process clarity, sensible monitoring, and relentless improvement—with the knowledge that everything we do will be put to the test in labs and plants around the world.