For each of the given mass of reactant HgO the mass of product O 2 should be determined. Concept introduction: When mass of one reactant is given and the mass of product is to be determined, then follow the following solution map: mass of reactant → moles of reactant → By using conversion factor moles of product → mass of product The conversion factor used to convert the moles of reactant into the moles of product is basically the stoichiometric relationship between moles of reactant and moles of product. The conversion factor is obtained from the balanced chemical equation. The mass of reactant or product is converted into their corresponding moles by the use of their corresponding molar masses. In this given problem, the reactant is HgO and product is O 2 . To calculate the mass of oxygen formed in grams by the complete reaction of given mass of HgO , follow the following solution map: mass of HgO → moles of HgO → By using conversion factor moles of O 2 → mass of O 2
For each of the given mass of reactant HgO the mass of product O 2 should be determined. Concept introduction: When mass of one reactant is given and the mass of product is to be determined, then follow the following solution map: mass of reactant → moles of reactant → By using conversion factor moles of product → mass of product The conversion factor used to convert the moles of reactant into the moles of product is basically the stoichiometric relationship between moles of reactant and moles of product. The conversion factor is obtained from the balanced chemical equation. The mass of reactant or product is converted into their corresponding moles by the use of their corresponding molar masses. In this given problem, the reactant is HgO and product is O 2 . To calculate the mass of oxygen formed in grams by the complete reaction of given mass of HgO , follow the following solution map: mass of HgO → moles of HgO → By using conversion factor moles of O 2 → mass of O 2
Solution Summary: The author explains the stoichiometric relationship between the moles of reactant and their corresponding molar masses to determine the mass of oxygen formed in grams.
For each of the given mass of reactant HgO the mass of product O2 should be determined.
Concept introduction:
When mass of one reactant is given and the mass of product is to be determined, then follow the following solution map:
massofreactant→moles of reactant→Byusingconversionfactormolesofproduct→massofproduct
The conversion factor used to convert the moles of reactant into the moles of product is basically the stoichiometric relationship between moles of reactant and moles of product. The conversion factor is obtained from the balanced chemical equation. The mass of reactant or product is converted into their corresponding moles by the use of their corresponding molar masses.
In this given problem, the reactant is HgO and product is O2. To calculate the mass of oxygen formed in grams by the complete reaction of given mass of HgO, follow the following solution map:
massofHgO→moles of HgO→ByusingconversionfactormolesofO2→massofO2
(c) The following data have been obtained for the hydrolysis of sucrose, C12H22O11, to
glucose, C6H12O6, and fructose C6H12O6, in acidic solution:
C12H22O11 + H2O → C6H12O6 + C6H12O6
[sucrose]/mol dm³
t/min
0
0.316
14
0.300
39
0.274
60
0.256
80
0.238
110
0.211
(i) Graphically prove the order of the reaction and determine the rate constant of the
reaction.
(ii) Determine the half-life, t½ for the hydrolysis of sucrose.
(III) adsorbent
(b) Adsorption of the hexacyanoferrate (III) ion, [Fe(CN)6] ³, on y-Al2O3 from aqueous
solution was examined. The adsorption was modelled using a modified Langmuir
isotherm, yielding the following values of Kat pH = 6.5:
(ii)
T/K
10-10 K
280
2.505
295
1.819
310
1.364
325
1.050
Determine the enthalpy of adsorption, AadsHⓇ.
If the reported value of entropy of adsorption, Aads Se = 146 J K-1 mol-1 under the above
conditions, determine Aads Gº.
Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell
Author:Steven D. Gammon, Ebbing, Darrell Ebbing, Steven D., Darrell; Gammon, Darrell Ebbing; Steven D. Gammon, Darrell D.; Gammon, Ebbing; Steven D. Gammon; Darrell