|
HS Code |
842851 |
| Chemical Name | 2-Nitrobenzylamine Hydrochloride |
| Molecular Formula | C7H9ClN2O2 |
| Molecular Weight | 188.62 g/mol |
| Appearance | Off-white to yellow solid |
| Cas Number | 21835-36-9 |
| Purity | Typically ≥98% |
| Melting Point | 190-194°C (decomposes) |
| Solubility | Soluble in water |
| Storage Temperature | 2-8°C |
| Synonyms | o-Nitrobenzylamine hydrochloride |
As an accredited 2-Nitrobenzylamine Hydrochloride factory, we enforce strict quality protocols—every batch undergoes rigorous testing to ensure consistent efficacy and safety standards.
| Packing | The packaging is a sealed amber glass bottle containing 25 grams of 2-Nitrobenzylamine Hydrochloride, labeled with hazard warnings and product details. |
| Shipping | 2-Nitrobenzylamine Hydrochloride is shipped in tightly sealed, chemical-resistant containers to prevent moisture absorption and contamination. The package is clearly labeled according to regulatory standards and cushioned to minimize breakage during transit. It is transported under ambient conditions, with all safety data and handling instructions included for responsible and compliant delivery. |
| Storage | **2-Nitrobenzylamine Hydrochloride** should be stored in a tightly sealed container, away from light and moisture, in a cool, dry, and well-ventilated area. The storage temperature is typically between 2–8°C (refrigerator). Keep it clear of incompatible substances such as strong oxidizers or bases, and ensure proper labeling to avoid accidental misuse or contamination. |
Applications of 2-Nitrobenzylamine Hydrochloride in Industrial ManufacturingAs a core material produced in-house to meet strict industry benchmarks, 2-Nitrobenzylamine Hydrochloride is utilized in select downstream manufacturing segments. Our continuous process control and raw material traceability ensure compliance with sector-specific regulatory, formulation, and performance requirements. Below, we have detailed key application scenarios where our product delivers quantifiable value to industrial producers. 1. Pharmaceutical API Synthesis: Photolabile Protecting Group IntermediateLarge-scale pharmaceutical manufacturers leverage 2-Nitrobenzylamine Hydrochloride to introduce temporary, photolabile protecting groups during the multi-stage synthesis of complex small molecule APIs. The raw material enters the workflow specifically at the protection/deprotection phase, allowing selective masking of amine or hydroxyl functional groups and minimizing side reactions during elongation or cyclization steps. Its compatibility with light-induced cleavage supports high-purity intermediate recovery, which is essential for regulated drug production lines. Industry compliance standards
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2. Photocleavable Crosslinker Production for Bioconjugation ReagentsSpecialty chemical producers and suppliers of advanced bioconjugation kits rely on this raw material as a precursor for synthesizing photocleavable crosslinkers. The compound introduces light-sensitive linkages allowing controlled bond cleavage in functionalized proteins or oligonucleotides. Our facility customizes batch oxidation and reduction parameters to match downstream needs for photolysis rates and residue profiles in high-value diagnostics and targeted drug delivery systems. Industry compliance standards
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3. Fine Chemical Intermediates for Agrochemical R&DResearch divisions in the agrochemical sector use 2-Nitrobenzylamine Hydrochloride for pilot-scale synthesis of pre-commercial crop protection compounds. By serving as a nucleophilic amine source, it facilitates the assembly of benzylamine-based intermediates through substitution or condensation reactions. This integration streamlines structure–activity relationship (SAR) exploration in herbicide and fungicide development pipelines. Industry compliance standards
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4. Synthesis of UV-Degradable Polymer AdditivesPolymer materials developers and specialty additive formulators incorporate this compound to produce UV-degradable chain transfer agents and light-responsive plastic modifiers. By introducing photolabile sites, it enables controlled breakdown and recycling of plastics exposed to specified UV wavelengths. Our advanced purification ensures compatibility with melt processing and extrusion operations. Industry compliance standards
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Walking through the production area, every chemist experiences how quality comes down to choices in raw materials, process controls, and years of know-how. In the case of 2-Nitrobenzylamine Hydrochloride, the outcome of thoughtful synthesis and vigilant analytics stands on every pallet. We don’t merely ship another chemical. Each drum contains a story of refinement—one tied to real-world needs.
Our model, produced with consistent analytical parameters, holds firm at a recognized minimum purity of 98%. In practice, our team’s attention to reaction conditions and purification methods pushes that even higher. The pale yellow to beige solid many laboratories receive results from this careful handling. Over the years, trace moisture and organic impurity control have pushed our average batch above published thresholds.
Handling tonnage volumes and gram-scale requests side-by-side for this compound grants perspective you won’t find from an item catalog. Buyers, whether in pharmaceuticals, specialty synthesis, or research, receive the same technical grade product. Our specifications reflect what works on the bench and in larger reactors: low chloride content, tightly monitored moisture, and comprehensive impurity profiling using HPLC and NMR methods.
Some chemicals enter the mainstream conversation, others quietly serve as the backbone of advanced chemical transformations. 2-Nitrobenzylamine Hydrochloride sits among intermediates known for enabling tough conversions. Its nitrobenzyl group readily participates as a photolabile protecting group in organic synthesis, freeing chemists to selectively deprotect amines or carboxylic acids with UV irradiation. Teams working in medicinal chemistry depend on that property when developing small-molecule leads, as do those building photoactive polymers.
Direct feedback from our buyers often focuses on reliability. Error-prone lots cause delays—failed couplings, excessive byproducts, unexpected side reactions. With our experience, even minor batch inconsistencies rarely escape attention. Specialist clients—those optimizing peptide or oligonucleotide synthesis—demand absolute predictability. In response, our plant maintains records tracing every supply source for nitrobenzaldehydes and every step in the amidation and hydrochloride addition sequences. This isn’t busywork; it’s how we keep downtime to a minimum for our partners.
We’ve watched a steady transition in demand. Over the last decade, the number of researchers using 2-Nitrobenzylamine Hydrochloride as a building block for custom linkers and conjugates has climbed, matched by an uptick in orders linked to photochemistry start-ups or contract development manufacturing organizations (CDMOs). Given this shift, we’ve scaled our multi-ton line without sacrificing the traceability smaller users expect. Unlike resellers with little facility oversight, the people making the compound are the same ones answering application questions and recalibrating procedures based on customer reports.
Peer review and internal audits drive every improvement. Having handled complaints from underperforming lots sourced externally, our staff recognized early where less rigorous manufacturing tools break down. Most vendors treat 2-Nitrobenzylamine Hydrochloride as a bulk commodity, with few opportunities to adapt. Our approach remains different.
Our stock features low ash and metal ion content—verified through each synthetic run and validated by third-party labs on a scheduled basis. This matters where cross-coupling yields or downstream protective group strategies depend on unobstructed reaction kinetics. Contaminants may not appear in standard COAs from distributors, but in the real world, the resulting side reactions add up to lost time and wasted resources.
The packing process makes a difference, too. Orders as small as 25 grams or as large as a 20 kg drum undergo the same nitrogen-flushed sealing protocol, minimizing hydrolysis and atmospheric uptake. Customers using the material in photolytic deprotection rarely request stabilizers; our process already delivers stability clear through the stated shelf life when stored in properly sealed containers. We learned the value of this firsthand—early batches, exposed to humid storage, sometimes failed key tests after only weeks on the shelf. Since overhauling environmental controls and retraining staff, complaint rates have dropped to less than 1% over five years.
We encounter end-users from research chemists developing next-generation materials to process engineers refining light-triggered drug delivery platforms. Many prioritize cost alone, so they weigh our product against those sourced from global traders. Over time, a repeat pattern emerges: robust traceability and lot-to-lot documentation gain value the moment a project scales, or a single failure stalls weeks of progress.
During one recent collaboration with a leading photopharmaceutical lab, their researchers traced an unexpected side reaction back to residual nitration byproducts in a competitor’s batch. With our higher-purity material, their subsequent runs delivered the intended cleavage reactions at reproducible rates. No spike in labor, no extra purification steps—just predictable outcomes. Scenarios like this do more than build trust; they shape our focus on everything from reagent pre-wash to solvent selection.
Shipping can matter as much as synthesis. Far from a simple afterthought, temperature and humidity exposure in transit alter the product’s long-term stability—especially in ocean freight. Every shipment leaves our site in UN-rated containers with custom desiccation packs, minimizing transformation of the hydrochloride salt. This sort of extra work rarely gets airtime in technical specs, yet it eliminates days of worry for end users racing deadlines.
Years spent on the manufacturing side make it clear: innovation doesn’t just come from new reactor technology or digital analytics; it grows from listening to customer setbacks and building actual solutions. Many researchers have told us about the guesswork involved when they source from online aggregators. Their problems range from mismatched MSDS data to isolated incidents of odorous or discolored product. These details might sound small, but they lead to hours spent troubleshooting rather than experimenting.
Direct sourcing provides answers that cut through marketing claims. It’s not uncommon for a customer’s technical team to call with requests for data outside the standard specification—perhaps UV/Vis spectra for new photolysis pathways, or accelerated stability profiles under varied humidity conditions. Our records allow rapid turnaround because we aren’t reliant on third-party reports. Throughout every campaign, teams can call on real-time production logs pulled straight from our shop floor. Our technicians are as responsible for product guidance as they are for production numbers.
The baseline expectation—consistency—often proves the hardest to maintain. As chemists ourselves, we still encounter surprises downstream: temperature spikes that alter crystallinity, transport delays that lead to caking, or shifts in precursor quality that demand process recalibration. The most successful users grasp this reality. By sharing in-process data and post-delivery feedback, they create a feedback loop. This partnership has led to new batch release standards and changes in our QA triggers, directly benefitting our larger community of buyers.
Few topics prompt more discussion in chemical supply than traceability and compliance. As a full-scale manufacturer, every kilo matters. Market claims about purity and identity mean little when researchers need to pass audits or submit regulatory dossiers. We moved early to provide full trace documentation for all incoming starting materials, capturing batch number links from our nitrobenzaldehyde supplies through to packaged 2-Nitrobenzylamine Hydrochloride. This enables not just compliance for ISO or cGMP audits—it gives customers the detail to respond to regulatory reviews with conviction.
Each incoming raw material faces GC-MS screening for trace contaminants. During the main synthesis, our process chemists observe in-line analytics backed with final verification by NMR and HPLC. Beyond numbers, the best results appear in the confidence our customers have responding to regulatory bodies. They know every paper trail is genuine and that granularity in our records can make or break a compliance audit.
Audits have reshaped several processing habits over the years—forcing continuous review of documentation workflows and on-site sign-off. Third parties regularly visit our site, and our team knows from firsthand experience how thorough such reviews become. This transparency, rooted in daily routines, leads to better preparedness and consistent customer satisfaction.
On paper, many benzylic amines and hydrochloride salts appear comparable. The day-to-day work of manufacturing points to overlooked distinctions. Some competitors offer a higher yield by using milder reduction conditions, but we’ve chosen selectivity over sheer throughput. This means fewer aromatic byproducts and a lower risk of nitroso group carryover. Analytics reveal that these small differences translate into more reliable downstream reactions.
Hydrochloride forms hold certain advantages over their free base counterparts, especially regarding solubility and storage. Our product dissolves predictably in standard polar solvents—users see a clear, particle-free solution in water, methanol, or DMF under most conditions. The alternative, 2-Nitrobenzylamine free base, tends to absorb moisture more aggressively and can throw off counts in sensitive gravimetric procedures.
Reliance on hydrochloride salts gained ground due to their practicality in handling and consistent dosing. Process engineers find value in defined molecular weights during scale-ups. Organic chemists appreciate minimized hygroscopicity, which reduces batch variability in water-sensitive environments. Not all lots from third-party networks live up to these standards—samples sometimes arrive partially deliquesced or with off-color, results we rarely see with our full chain-of-custody control.
Chemical manufacturing rewards those willing to learn from every setback. Purity, while fundamental, only tells part of the story. Years ago, we received an order for several hundred kilograms designated for early-stage photodrug research. Initial displays of high purity masked tiny traces of dimethylaniline—an upstream contaminant. The client’s purification teams flagged this within days. We revamped the pre-wash protocols and doubled the lot-release checks, ensuring it never recurred. Mistakes carry cost, but they also spark quicker troubleshooting and resilience.
Improvement often begins with discrepancies spotted by diligent customers. In one instance, variations in particle size led to inconsistent dissolution times during automated dosing. Larger granules, generated during warm weather crystallization, caused bottlenecks in downstream operations. We modified the cooling cycle and increased monitoring, transforming the entire bulk prep. These changes outlast the single project—they continue benefiting every subsequent order.
Our technical support bridges the gap between bench and barrel. Chemists gain from decades of shared experience: temperature sensitivity, best practices for weighing and storage, rapid dissolution in critical solvents, and practical advice for minimizing degradation. By passing along the lessons of thousands of handled drums, our team becomes an extension of the research and development departments we serve.
Manufacturing responsibly means facing the realities of chemical waste, resource use, and shipping logistics. Production of 2-Nitrobenzylamine Hydrochloride involves reduction, purification, and salt formation steps, each generating distinct waste streams. We tackled solvent disposal and gas handling by investing in closed-circuit capture and on-site treatment, far beyond regulatory minimums. Every improvement directly impacts site safety, reduces odor, and improves crew morale.
Recent years have brought tighter scrutiny from environmental auditors and public stakeholders—community relations increasingly matter. Site tours have become opportunities to demonstrate our upgraded reactor systems and solvent reclamation modules. By sharing these processes, we hope to influence both the broader industry and new generations of process chemists to aim beyond simple compliance.
Packaging changes have tracked with these efforts. A switch to recyclable drums and reusable packing materials wasn’t simple; shrink-wrapped palettes looked efficient, yet proved ill-equipped for repeated use. Our approach shifted as more customers requested proof of green credentials for their supply chain documents. The combination of small changes—container choice, energy-efficient drying units, batch-level emissions monitoring—directly affects customers whose parent companies now respond to environmental audits as part of global rollouts.
Demand for specialty compounds continues rising. Product managers and R&D leads explore light-triggered chemical transformations, wishing for greater control and gentler protecting group cleavage. 2-Nitrobenzylamine Hydrochloride offers these advantages through a well-characterized photolysis route—one that fewer molecules deliver as cleanly at bench and production scale.
Commercial projects often move rapidly from exploratory reactions to full pilot campaigns. The speed and transparency of a manufacturer make or break these transitions. Drawing on technical dispatches and in-house expertise, our staff provides direct support on trouble-shooting, alternate synthetic pathways, and process optimization. These efforts feed into the collaborative progress pushing the next wave of pharmaceutical and materials science.
We’ve witnessed the pitfalls of inadequate documentation or over-promising. One story stands out—an innovator sought ultra-pure material for a photolithography application, having previously dealt with inconsistent supplier responsiveness. By mapping technical needs and integrating closed-loop feedback into our processing pipeline, we shortened project lead time and eliminated troubleshooting cycles. Years on, that relationship has sparked multiple joint projects.
Chemical manufacturing stands at a crossroads. The old commodity mindset fades as specialized applications and regulatory compliance raise expectations. Every kilogram of 2-Nitrobenzylamine Hydrochloride must prove itself—both in purity and transparency. Sourcing direct from a company grounded in technical expertise and firsthand experience means buyers aren’t left to decipher the story behind a batch.
As demand patterns shift, our commitment stays unchanged. We invest in automation where it best serves quality, not merely output. We train staff to spot flaws invisible to automated sensors. We empower sales and technical support to give honest timelines and clear documentation. In every way that matters, we aim for more than minimal compliance—we aim for a partnership built on practical trust.
No chemical serves every purpose. Yet the reliability and performance of 2-Nitrobenzylamine Hydrochloride—driven by those who make, test, and use it—show what a focused manufacturing approach delivers. The drum may look ordinary. For the users who rely on it, each gram reflects careful choices, shared knowledge, and constant improvement shaped by real-world needs.