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Proxan sodium
[CAS# 140-93-2]

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Complete supplier list of Proxan sodium
Identification
Classification Organic raw materials >> Organic sulfur compound
Name Proxan sodium
Synonyms Sodium o-isopropyl dithiocarbonate; Sodium isopropylxanthate; Isopropylxanthic acid sodium salt
Molecular Structure CAS # 140-93-2, Proxan sodium, Sodium o-isopropyl dithiocarbonate, Sodium isopropylxanthate, Isopropylxanthic acid sodium salt
Molecular Formula C4H7NaOS2
Molecular Weight 158.21
CAS Registry Number 140-93-2
EC Number 205-443-5
SMILES CC(C)OC(=S)[S-].[Na+]
Safety Data
Hazard Symbols symbol symbol symbol symbol symbol   GHS02;GHS05;GHS07;GHS08;GHS09 Danger    Details
Hazard Statements H228-H251-H302-H314-H315-H317-H318-H361d-H373-H411-H412    Details
Precautionary Statements P203-P210-P235-P240-P241-P260-P261-P264-P264+P265-P270-P272-P273-P280-P301+P317-P301+P330+P331-P302+P352-P302+P361+P354-P304+P340-P305+P354+P338-P316-P317-P318-P319-P321-P330-P332+P317-P333+P317-P362+P364-P363-P370+P378-P391-P405-P407-P410-P413-P420-P501    Details
Hazard Classification
up    Details
HazardClassCategory CodeHazard Statement
Acute toxicityAcute Tox.4H302
Chronic hazardous to the aquatic environmentAquatic Chronic2H411
Skin irritationSkin Irrit.2H315
Self-heating substances or mixturesSelf-heat.1H251
Serious eye damageEye Dam.1H318
Skin corrosionSkin Corr.1H314
Flammable solidsFlam. Sol.2H228
Specific target organ toxicity - repeated exposureSTOT RE2H373
Reproductive toxicityRepr.2H361d
Skin sensitizationSkin Sens.1H317
Chronic hazardous to the aquatic environmentAquatic Chronic3H412
Self-heating substances or mixturesSelf-heat.2H252
up Discovory and Applicatios
Proxan sodium, also known as sodium isopropyl xanthate (SIPX), is an organosulfur compound with the chemical formula C₄H₇NaOS₂. It is a pale yellow powder or pellet that is highly soluble in water. citeturn0search0

The compound was developed in the early 20th century as part of the xanthate family, which were introduced as flotation agents in the mining industry. Xanthates, including SIPX, have been instrumental in enhancing the efficiency of mineral extraction processes. citeturn0search2

The primary application of Proxan sodium is in the mining industry, where it serves as a collector in the froth flotation process. In this context, it is used to separate valuable metal sulfide ores, such as copper, lead, and zinc, from their associated gangue materials. By adsorbing onto the surface of sulfide mineral particles, Proxan sodium renders them hydrophobic, allowing them to attach to air bubbles and rise to the surface for collection. This selective affinity significantly improves the efficiency and effectiveness of the flotation process. citeturn0search2

In addition to its role in mineral processing, Proxan sodium has been utilized as a precipitant in hydrometallurgical operations. It reacts with certain metal ions in solution to form insoluble metal xanthate complexes, facilitating the removal of these metals from aqueous environments. This application is particularly valuable in the purification and recovery of metals from leach solutions. citeturn0search8

Furthermore, Proxan sodium has found use as an accelerator in the vulcanization of rubber. In this capacity, it enhances the cross-linking process between sulfur and rubber polymers, resulting in improved elasticity, strength, and durability of the final rubber product. citeturn0search8

Safety considerations are paramount when handling Proxan sodium. The compound can decompose to release carbon disulfide, a flammable and toxic gas. Therefore, appropriate safety measures, including proper storage, handling, and personal protective equipment, are essential to mitigate potential health and environmental risks. citeturn0search8

In summary, Proxan sodium is a versatile chemical agent with well-established applications in mineral processing, hydrometallurgy, and rubber manufacturing. Its development has significantly contributed to advancements in these industries, particularly in the efficient extraction of valuable metals and the production of high-quality rubber products.

References

2024. Beneficiation of Complex Zinc-Lead Ores from G�rg� (Malatya, Turkey) Region by Selective Flotation. Mining, Metallurgy & Exploration, 41(6).
DOI: 10.1007/s42461-024-01156-2

2024. Performance and mechanism of NiO/La-KTaO3 composite photocatalysts for UV degradation of isoamyl xanthate in synthetic flotation wastewater. International Journal of Environmental Science and Technology, 21(17).
DOI: 10.1007/s13762-024-06180-9

2023. The role of temperature on collector adsorption in galena flotation: Implications of seasonal temperature and climate change. MRS Advances, 8(22).
DOI: 10.1557/s43580-023-00751-7
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