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4-Fluoroacetophenone

Updated: 2026-07-15

Overview

4-Fluoroacetophenone is a fluorinated aromatic compound where a fluorine atom is para-substituted on the benzene ring of acetophenone. This strategic positioning enhances its reactivity as a building block in organic synthesis. The compound was first synthesized in the early 20th century and gained industrial significance with the growth of fluorochemical applications. Its production typically involves Friedel-Crafts acylation of fluorobenzene, with modern manufacturers optimizing yield and purity through advanced catalysis and purification techniques. The global market for 4-fluoroacetophenone is primarily driven by pharmaceutical demand, particularly in Asia-Pacific and North America. Major producers include specialty chemical companies with capabilities in fluorine chemistry, often supplying it in 25kg drums or custom packaging for industrial users. Regulatory status varies by region, with most countries classifying it as an irritant requiring standard hazard communication.

Physical and Chemical Properties

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As a crystalline solid at room temperature, 4-fluoroacetophenone exhibits characteristic ketone reactivity while benefiting from fluorine's electron-withdrawing effects. The fluorine substitution lowers the electron density on the aromatic ring, making the carbonyl carbon more electrophilic in nucleophilic addition reactions compared to non-fluorinated analogs. This property is exploited in Grignard reactions and condensations where enhanced reactivity is desired. Its IR spectrum shows strong C=O stretching at ~1685 cm⁻¹ and aromatic C-F absorption at ~1220 cm⁻¹. The compound demonstrates good thermal stability below 150°C but may decompose at higher temperatures, releasing hydrogen fluoride. UV-Vis analysis reveals absorption maxima at 260-280 nm, requiring light-protected storage for sensitive applications. The fluorine atom creates a strong dipole moment (≈2.5 D) that influences solubility parameters and crystallinity.

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Main Applications

Approximately 70% of 4-fluoroacetophenone production is consumed by the pharmaceutical industry as a key intermediate for antidepressants (e.g., fluoxetine analogs), anti-inflammatory drugs, and CNS-active compounds. The fluorine moiety often enhances drug bioavailability and metabolic stability. In agrochemicals, it serves as a precursor for fluorinated pesticides and herbicides where the fluorine atom improves target binding and environmental persistence. Emerging applications include liquid crystal displays (LCDs), where its derivatives act as alignment layers, and organic electronics as a dopant or building block for charge-transport materials. Some fragrance manufacturers utilize it in restricted quantities for musk-like notes, though this application is limited by regulatory constraints. Research continues into its use in metal-organic frameworks (MOFs) and as a ligand in catalytic systems.

Safety and Storage

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4-Fluoroacetophenone requires careful handling as it may cause skin irritation (Category 2, GHS) and serious eye damage (Category 1). Appropriate PPE includes nitrile gloves, chemical goggles, and flame-retardant lab coats. Spills should be contained with inert absorbents like vermiculite, avoiding water spray that could spread contamination. Firefighting requires alcohol-resistant foam due to its combustible nature. For storage, maintain temperatures below 30°C in original tightly sealed containers, separated from strong oxidizers and bases. Shelf life typically exceeds 2 years when properly stored, though discoloration may indicate degradation. Transportation follows UN 1325 (Flammable Solid) regulations for smaller quantities, with larger shipments requiring proper hazard documentation. Waste disposal should comply with local regulations, often involving licensed hazardous waste contractors for incineration.

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B2B Procurement Guide

Industrial buyers should prioritize suppliers with ISO 9001 certification and documented fluorine chemistry expertise. Key specifications to verify include minimum 98% purity (HPLC), residual solvent levels (especially benzene), and heavy metal content (<10 ppm). Request batch-specific certificates of analysis (CoA) with NMR/HPLC-MS data for critical applications. For pharmaceutical use, ensure the supplier can provide DMF filings or equivalent regulatory support. Bulk pricing typically becomes competitive at 500kg+ quantities, with some manufacturers offering toll synthesis options for custom derivatives. Logistics planning should account for its classification as a flammable solid - preferred shipping methods include temperature-controlled UN-certified containers. Consider regional alternatives like 4-chloroacetophenone if regulatory constraints exist, though reactivity profiles differ. Audit potential suppliers for waste handling practices and byproduct recovery systems to ensure environmental compliance.

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