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Dysprosium Fluoride

Updated: 2026-08-03

Overview

Dysprosium fluoride (DyF3) is a rare-earth halide compound primarily used in specialized industrial applications. It is synthesized through the reaction of dysprosium oxide with hydrofluoric acid or ammonium bifluoride. Due to its unique optical and thermal properties, DyF3 is valued in high-tech sectors. As a non-hygroscopic material (when pure), it offers better stability than other dysprosium salts in moisture-sensitive applications. The compound is commercially available in powder form with purities ranging from 99% to 99.999% for different technical requirements.

Physical and Chemical Properties

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Dysprosium fluoride exhibits a hexagonal crystal structure (YF3 type) with high density and thermal stability. Its refractive index (1.53 at 500nm) makes it suitable for optical applications. The material is chemically inert to most solvents but reacts with strong acids. Notably, DyF3 demonstrates exceptional fluorescence properties under UV excitation, emitting in the visible spectrum. Its thermal neutron absorption cross-section (940 barns) is leveraged in nuclear applications. The compound maintains stability up to 1000°C in dry atmospheres but may hydrolyze in moist environments at elevated temperatures.

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Main Applications

In optical industries, DyF3 serves as a coating material for infrared lenses and laser components due to its low refractive index and durability. It's used in multilayer anti-reflection coatings for high-power laser systems. The nuclear industry utilizes DyF3 in control rods and shielding materials because of dysprosium's high neutron absorption capability. Additionally, it acts as a precursor for dysprosium metal production through metallothermic reduction. Emerging applications include doping agent for specialty glasses and scintillation materials in radiation detection.

Safety and Storage

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As a fluoride compound, DyF3 requires careful handling to prevent fluoride ion exposure. Use NIOSH-approved respirators for powders and conduct operations in well-ventilated areas. Skin contact may cause irritation—nitrile gloves are recommended. Store in sealed containers with desiccants to prevent moisture absorption. Incompatible materials include strong acids and alkali metals. For laboratory quantities, maintain in argon-filled glove boxes when ultra-high purity is required. Spills should be contained with inert absorbents and disposed as hazardous fluoride waste.

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B2B Procurement Guide

Industrial buyers should specify: 1) Purity grade (standard 99.9% or high-purity 99.99%-99.999%), 2) Particle size distribution (typically 1-10μm for coatings), and 3) Packaging (moisture-proof bags or argon-filled containers). Lead times can extend to 8-12 weeks for custom purifications. Verify supplier certifications for rare-earth processing and request material safety data sheets (MSDS) with each shipment. For research institutions, small quantities (100g-1kg) are commonly available from specialty chemical distributors with faster delivery.

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