The mass of KO 2 is to be determined, which can produce enough amount of oxygen for the users present in mine. Concept introduction: When mass of product is given and the mass of reactant is to be determined, then follow the following solution map: given mass of product → moles of product → By using conversion factor moles of reactant → mass of reactant The conversion factor used to convert the moles of product into the moles of reactant is basically the stoichiometric relationship between moles of product and moles of reactant. 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 KO 2 and product is O 2 . To calculate the mass of KO 2 required in grams for the production of given mass of O 2 , follow the following solution map: mass of O 2 → moles of O 2 → By using conversion factor moles of KO 2 → mass of KO 2
The mass of KO 2 is to be determined, which can produce enough amount of oxygen for the users present in mine. Concept introduction: When mass of product is given and the mass of reactant is to be determined, then follow the following solution map: given mass of product → moles of product → By using conversion factor moles of reactant → mass of reactant The conversion factor used to convert the moles of product into the moles of reactant is basically the stoichiometric relationship between moles of product and moles of reactant. 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 KO 2 and product is O 2 . To calculate the mass of KO 2 required in grams for the production of given mass of O 2 , follow the following solution map: mass of O 2 → moles of O 2 → By using conversion factor moles of KO 2 → mass of KO 2
Solution Summary: The author explains that the mass of KO_2 is to be determined, which can produce enough amount of oxygen for the users present in mine.
The mass of KO2 is to be determined, which can produce enough amount of oxygen for the users present in mine.
Concept introduction:
When mass of product is given and the mass of reactant is to be determined, then follow the following solution map:
givenmassofproduct→moles of product→Byusingconversionfactormolesofreactant→massofreactant
The conversion factor used to convert the moles of product into the moles of reactant is basically the stoichiometric relationship between moles of product and moles of reactant. 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 KO2 and product is O2. To calculate the mass of KO2 required in grams for the production of given mass of O2, follow the following solution map:
massofO2→moles of O2→ByusingconversionfactormolesofKO2→massofKO2
5. Propose a Synthesis for the molecule below. You may use any starting materials containing 6
carbons or less (reagents that aren't incorporated into the final molecule such as PhзP do not
count towards this total, and the starting material can have whatever non-carbon functional
groups you want), and any of the reactions you have learned so far in organic chemistry I, II, and
III. Your final answer should show each step separately, with intermediates and conditions clearly
drawn.
H3C
CH3
State the name and condensed formula of isooxazole obtained by reacting acetylacetone and hydroxylamine.
State the name and condensed formula of the isothiazole obtained by reacting acetylacetone and thiosemicarbazide.
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