Table of Content
2Al | + | 3SnO | → | Al2O3 | + | 3Sn | |
aluminium | Stannous oxide; Tin(II) oxide; SnO; Tin oxide | aluminium oxide | C.I.77860; C.I.Pigment Metal 5; Sn; Tin | ||||
(rắn) | (rắn) | (rắn) | (rắn) | ||||
(trắng xám) | |||||||
2 | 3 | 1 | 3 | Hệ số | |||
Nguyên - Phân tử khối (g/mol) | |||||||
Số mol | |||||||
Khối lượng (g) |
Temperature: high t0
Explanation: The ideal environmental conditions for a reaction, such as temperature, pressure, catalysts, and solvent. Catalysts are substances that speed up the pace (velocity) of a chemical reaction without being consumed or becoming part of the end product. Catalysts have no effect on equilibrium situations.
SnO is reduced by Al at high temperature
In a full sentence, you can also say Al (aluminium) reacts with SnO (Stannous oxide; Tin(II) oxide; SnO; Tin oxide) and produce Al2O3 (aluminium oxide) and Sn (C.I.77860; C.I.Pigment Metal 5; Sn; Tin)
This equation does not have any specific information about phenomenon.
In this case, you just need to observe to see if product substance Sn (C.I.77860; C.I.Pigment Metal 5; Sn; Tin), appearing at the end of the reaction.
Or if any of the following reactant substances SnO (Stannous oxide; Tin(II) oxide; SnO; Tin oxide), disappearing
We no further information about this chemical reactions.
aluminium
4Al + 3O2 → 2Al2O3 2Al + 3Zn(NO3)2 → 3Zn + 2Al(NO3)3 2Al + Fe2O3 → Al2O3 + 2Fe View all equations with Al as reactantStannous oxide; Tin(II) oxide; SnO; Tin oxide
2Al + 3SnO → Al2O3 + 3Sn O2 + 2SnO → 2SnO2 2NaOH + SnO → H2O + Na2SnO2 View all equations with SnO as reactantStannous oxide; Tin(II) oxide; SnO; Tin oxide
Sn(OH)2 → H2O + SnO Na[Sn(OH)3] → H2O + NaOH + SnO SnO2 + Sn → 2SnO View all equations with SnO as productStannous oxide; Tin(II) oxide; SnO; Tin oxide
Sn(OH)2 → H2O + SnO Na[Sn(OH)3] → H2O + NaOH + SnO SnO2 + Sn → 2SnO View all equations with SnO as productInteresting Information Only Few People Knows
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