Zinc phosphate
| Names | |
|---|---|
| IUPAC name
Zinc phosphate | |
| Identifiers | |
3D model (JSmol) |
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| ChemSpider | |
| ECHA InfoCard | 100.029.040 |
PubChem CID |
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| RTECS number |
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| UNII | |
CompTox Dashboard (EPA) |
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| Properties[1] | |
| |
| Molar mass |
|
| Appearance |
|
| Density | 4.0 g/cm3 |
| Melting point | 900 °C (1,650 °F; 1,170 K) |
| insoluble | |
| −141.0×10−6 cm3/mol | |
Refractive index (nD) |
1.595 |
| Structure | |
| monoclinic | |
| Thermochemistry | |
Std enthalpy of formation (ΔfH⦵298) |
−2891.2 ± 3.3 |
| Hazards | |
| NFPA 704 (fire diamond) | |
| Flash point | Non-flammable |
Except where otherwise noted, data are given for materials in their standard state (at 25 °C [77 °F], 100 kPa).
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Zinc phosphate is an inorganic compound with the formula Zn3(PO4)2. This white powder is widely used as a corrosion resistant coating on metal surfaces either as part of an electroplating process or applied as a primer pigment (see also red lead). It has largely displaced toxic materials based on lead or chromium, and by 2006 it had become the most commonly used corrosion inhibitor.[2][3] Zinc phosphate coats better on a crystalline structure than bare metal, so a seeding agent is often used as a pre-treatment. One common pre-treatment agent is sodium pyrophosphate.[4]
Minerals
[edit]Natural forms of zinc phosphate include minerals hopeite[5] and parahopeite[6]. A somewhat similar mineral is natural hydrous zinc phosphate called tarbuttite[7], Zn2(PO4)(OH). Both are known from oxidation zones of Zn ore beds and were formed through oxidation of sphalerite by the presence of phosphate-rich solutions[citation needed]. The anhydrous form has not yet been found naturally.
Use
[edit]Dentistry
[edit]Zinc phosphate cement is the classically used dental cement.[8] It is commonly used for luting permanent metal and zirconium dioxide restorations and as a base for other dental restorations. Zinc phosphate cement is used for cementation of inlays, crowns, bridges, and other orthodontic appliances and occasionally as a temporary restoration.
References
[edit]- ↑ Haynes, William M., ed. (2016). CRC Handbook of Chemistry and Physics (97th ed.). Boca Raton, Florida: CRC Press. pp. 4–96, 4–131. ISBN 9781498754293.
- ↑ Kalendov´a, A.; Kalenda, P.; Vesel´y, D. (2006). "Comparison of the Efficiency of Inorganic Nonmetal Pigments with Zinc Powder in Anticorrosion Paints". Progress in Organic Coatings. 57. Elsevier: 1–10. doi:10.1016/j.porgcoat.2006.05.015.
- ↑ Etzrodt, G. (2012). "Pigments, Inorganic 5. Anticorrosive Pigments". Ullmann's Encyclopedia of Industrial Chemistry. Weinheim: Wiley-VCH. doi:10.1002/14356007.n20_n04. ISBN 978-3-527-30673-2.
- ↑ Menke, Joseph T. "Zinc Phosphate Coatings on NonFerrous Substrates -- Part I". PFOnline. Archived from the original on 2009-05-02. Retrieved 2006-08-07.
- ↑ "Hopeite Mineral Data". webmineral.com. Retrieved 2026-07-03.
- ↑ "Parahopeite Mineral Data". webmineral.com. Retrieved 2026-07-03.
- ↑ "Tarbuttite Mineral Data". webmineral.com. Retrieved 2026-07-03.
- ↑ Hill, Edward E. (2007-07-01). "Dental Cements for Definitive Luting: A Review and Practical Clinical Considerations". Dental Clinics of North America. Dental Materials. 51 (3): 643–658. doi:10.1016/j.cden.2007.04.002. ISSN 0011-8532.
External links
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