(a)
Interpretation:
The new molarity after the dilution of the solution is to be calculated.
Concept Introduction:
The
The number of moles is calculated by the formula,
The molarity is calculated by the formula,
Answer to Problem 55QAP
The new molarity of the given diluted solution is
Explanation of Solution
The initial volume and molarity of
The conversion of units of
The number of moles of a solute is calculated by the formula,
Substitute the values of initial volume and molarity of
It is given that
The conversion of units of
Thus, the total volume is calculated by the formula,
Substitute the values of initial volume and volume of water added in the equation (2).
The new molarity of the solution is calculated by the formula,
Substitute the values of number of moles of solute and final volume in the equation (3).
Therefore, the new molarity of the given diluted solution is
(b)
Interpretation:
The new molarity after the dilution of the solution is to be calculated.
Concept Introduction:
The atomic mass of an element is defined as the sum of number of protons and number of neutrons. Molar mass of an element is determined from atomic mass of an element.
The number of moles is calculated by the formula,
The molarity is calculated by the formula,
Answer to Problem 55QAP
The new molarity of the given diluted solution is
Explanation of Solution
The initial volume and molarity of
The conversion of units of
The number of moles of a solute is calculated by the formula,
Substitute the values of initial volume and molarity of
It is given that
The conversion of units of
Thus, the total volume is calculated by the formula,
Substitute the values of initial volume and volume of water added in the equation (2).
The new molarity of the solution is calculated by the formula,
Substitute the values of number of moles of solute and final volume in the equation (3).
Therefore, the new molarity of the given diluted solution is
(c)
Interpretation:
The new molarity after the dilution of the solution is to be calculated.
Concept Introduction:
The atomic mass of an element is defined as the sum of number of protons and number of neutrons. Molar mass of an element is determined from atomic mass of an element.
The number of moles is calculated by the formula,
The molarity is calculated by the formula,
Answer to Problem 55QAP
The new molarity of the given diluted solution is
Explanation of Solution
The initial volume and molarity of
The conversion of units of
The number of moles of a solute is calculated by the formula,
Substitute the values of initial volume and molarity of
It is given that
The conversion of units of
Thus, the total volume is calculated by the formula,
Substitute the values of initial volume and volume of water added in the equation (2).
The new molarity of the solution is calculated by the formula,
Substitute the values of number of moles of solute and final volume in the equation (3).
Therefore, the new molarity of the given diluted solution is
(d)
Interpretation:
The new molarity after the dilution of the solution is to be calculated.
Concept Introduction:
The atomic mass of an element is defined as the sum of number of protons and number of neutrons. Molar mass of an element is determined from atomic mass of an element.
The number of moles is calculated by the formula,
The molarity is calculated by the formula,
Answer to Problem 55QAP
The new molarity of the given diluted solution is
Explanation of Solution
The initial volume and molarity of
The conversion of units of
The number of moles of a solute is calculated by the formula,
Substitute the values of initial volume and molarity of
It is given that
The conversion of units of
Thus, the total volume is calculated by the formula,
Substitute the values of initial volume and volume of water added in the equation (2).
The new molarity of the solution is calculated by the formula,
Substitute the values of number of moles of solute and final volume in the equation (3).
Therefore, the new molarity of the given diluted solution is
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Chapter 15 Solutions
EBK INTRODUCTORY CHEMISTRY
- MATERIALS. Differentiate between interstitial position and reticular position.arrow_forwardFor each of the following, indicate whether the arrow pushes are valid. Do we break any rules via the arrows? If not, indicate what is incorrect. Hint: Draw the product of the arrow and see if you still have a valid structure. a. b. N OH C. H N + H d. e. f. مه N COHarrow_forwardDecide which is the most acidic proton (H) in the following compounds. Which one can be removed most easily? a) Ha Нь b) Ha Нь c) CI CI Cl Ha Ньarrow_forward
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- Don't used hand raiting and don't used Ai solutionarrow_forwardDetermine whether the following reaction is an example of a nucleophilic substitution reaction: Br OH HO 2 -- Molecule A Molecule B + Br 义 ollo 18 Is this a nucleophilic substitution reaction? If this is a nucleophilic substitution reaction, answer the remaining questions in this table. Which of the reactants is referred to as the nucleophile in this reaction? Which of the reactants is referred to as the organic substrate in this reaction? Use a ŏ + symbol to label the electrophilic carbon that is attacked during the substitution. Highlight the leaving group on the appropriate reactant. ◇ Yes O No O Molecule A Molecule B Molecule A Molecule B टेarrow_forwardPlease correct answer and don't used hand raitingarrow_forward
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