Lead(II) oxide, also called lead monoxide, is the inorganic compound with the molecular formula PbO. It is insoluble in water. It occurs in two polymorphs: litharge having a tetragonal crystal structure, and massicot having an orthorhombic crystal structure. Modern applications for PbO are mostly in lead-based industrial glass and industrial ceramics, including computer components.
Types Lead oxide exists in two polymorphs:
Red tetragonal (α-PbO), obtained at temperatures below 486 °C (907 °F) Yellow orthorhombic (β-PbO), obtained at temperatures above 486 °C (907 °F)
Synthesis PbO may be prepared by heating lead metal in air at approximately 600 °C (1,100 °F). At this temperature it is also the end product of decomposition of other oxides of lead in air:
PbO 2 → 293 ° C Pb 12 O 19 → 351 ° C Pb 12 O 17 → 375 ° C Pb 3 O 4 → 605 ° C PbO {\displaystyle {\ce {PbO2->[{293 °C}] Pb12O19 ->[{351 °C}] Pb12O17 ->[{375 °C}] Pb3O4 ->[{605 °C}] PbO}}}
Thermal decomposition of lead(II) nitrate or lead(II) carbonate also results in the formation of PbO:
2 Pb(NO3)2 → 2 PbO + 4 NO2 + O2 PbCO3 → PbO + CO2 PbO is produced on a large scale as an intermediate product in refining raw lead ores into metallic lead. The usual lead ore is galena (lead(II) sulfide). At a temperature of around 1,000 °C (1,800 °F) in air, the sulfide converted to the oxide:
2 PbS + 3 O2 → 2 PbO + 2 SO2
From lead Lead combusts at high temperature. According to the Barton pot method, refined molten lead droplets are oxidized under a forced air flow which carries them out to the separation system (e.g. cyclonic separators) for further processing. Oxides produced by this method are mostly a mixture of α-PbO and β-PbO. The overall reaction, which is conducted at 450 °C is:
Pb + O2 → 2 PbO Using a Ball mill, lead balls are oxidized in a cooled rotating drum. The oxidation is achieved by collisions of the balls. Just like in Barton pot method, the supply of air and separators may also be used.
Structure As determined by X-ray crystallography, both polymorphs, tetragonal and orthorhombic feature a pyramidal four-coordinate lead center. In the tetragonal form the four lead–oxygen bonds have the same length, but in the orthorhombic two are shorter and two longer. The pyramidal nature indicates the presence of a stereochemically active lone pair of electrons. When PbO occurs in tetragonal lattice structure it is called litharge, and when the PbO has orthorhombic lattice structure it is called massicot. The PbO can be changed from massicot to litharge or vice versa by controlled heating and cooling. The tetragonal form is usually red or orange color, while the orthorhombic is usually yellow or orange, but the color is not a very reliable indicator of the structure. The tetragonal and orthorhombic forms of PbO occur naturally as rare minerals.
Reactions PbO is reduced to elemental lead when heated under carbon monoxide at around 1,200 °C (2,200 °F):
PbO + CO → Pb + CO2 The red and yellow forms of this material are related by a small change in enthalpy:
PbO(red) → PbO(yellow) ΔH = 1.6 kJ/mol PbO is amphoteric, which means that it reacts with both acids and with bases. With acids, it forms salts of Pb2+ via the intermediacy of oxo clusters such as [Pb6O(OH)6]4+. With strong bases, PbO dissolves to form plumbite (also called plumbate(II)) salts:
PbO + H2O + OH− → [Pb(OH)3]−
Applications PbO is used extensively in making glass. Depending on the glass formula, the effect of PbO can be one or more of:
increasing the refractive index, increasing the dispersion (i. e. reducing the Abbe number), decreasing the viscosity, increasing the electrical resistivity, increasing the absorption of X-ray radiation. Historically, PbO was used extensively in ceramic glazes for household ceramics. Technical ceramics also make use of PbO, including ferroelectric and piezoelectric materials, used in capacitors, actuators and electrooptic devices. Other less dominant applications include the vulcanization of rubber and the production of certain pigments and paints. PbO is used in cathode-ray tube glass to block X-ray emission, but mainly in the neck and funnel of the tube, because it can cause discoloration when used in the faceplate. Strontium oxide and Barium oxide are preferred for the faceplate. The consumption of lead, and hence the processing of PbO, correlates with the number of automobiles, because lead remains the key component of automotive lead–acid batteries.
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