Arsenate
Overview
Arsenate refers to compounds containing the arsenate ion (AsO₄³⁻), a derivative of arsenic acid. It is structurally analogous to phosphate but exhibits higher toxicity. Historically used in agriculture and industry, its applications have declined due to environmental and health concerns. Modern usage is heavily regulated, with alternatives preferred where feasible. Despite risks, arsenates remain critical in niche applications like wood preservation (e.g., chromated copper arsenate) and specialty glass production.
Physical and Chemical Properties
Arsenates are typically crystalline solids, with solubility varying by cation (e.g., sodium arsenate is water-soluble, while lead arsenate is insoluble). They act as oxidizing agents and react with acids to release toxic arsenic compounds. Thermal stability is low; most decompose upon heating, releasing arsenic oxides. The arsenate ion’s tetrahedral geometry allows it to mimic phosphate in biochemical systems, contributing to its toxicity by disrupting metabolic pathways.
Main Applications
In agriculture, arsenates like lead arsenate were once common insecticides but are now banned in many regions. Current use is limited to non-food applications, such as pressure-treated lumber (CCA) for termite resistance. Industrial roles include glass manufacturing (as a decolorizer) and metallurgy (e.g., arsenic removal from ores). Research explores arsenate’s potential in semiconductor doping, though alternatives are sought due to handling challenges.
Safety and Storage
Arsenates are classified as carcinogens and acute toxins. Exposure routes include inhalation, ingestion, and skin contact. Storage requires sealed containers in ventilated areas, segregated from acids and reducers to prevent toxic gas release. Spill protocols mandate PPE (gloves, respirators) and containment with inert absorbents. Disposal must follow hazardous waste regulations, often involving licensed facilities for arsenic recovery or immobilization.
B2B Procurement Guide
Buyers should prioritize suppliers with ISO 9001 or equivalent certifications, ensuring product consistency and regulatory compliance (e.g., REACH, TSCA). Testing for purity and contaminants (e.g., heavy metals) is critical. Contracts should specify SDS documentation and transportation safeguards (e.g., UN packaging codes). For large orders, consider regional stockpiling to minimize logistics risks, given stringent transport regulations for toxic substances.
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