3. Iron (III) ion (Fe") reacts with thiocyanate ion (SCN) to form a red complex ion with the formula [FeSCN]. The net ionic equation describing this reaction is given below. Fe" (aq, yellow) + SCN (aq, colorless) → [FeSCN] (aq, red) A student studying this equilibrium begins with an equilibrium mixture that is light pink. (1) What change will the student observe when a solution containing Fe" ion is added to this mixture? (2) Briefly explain how your answer to (1) is consistent with Le Chatelier's principle. (3) Silver ion (Ag) reacts with SCN ion to form silver thiocyanate (AgSCN). What change will the student observe when a solution containing Ag ion is added to the mixture? (4) Briefly explain how your answer to (3) is consistent with Le Chatelier's principle.
3. Iron (III) ion (Fe") reacts with thiocyanate ion (SCN) to form a red complex ion with the formula [FeSCN]. The net ionic equation describing this reaction is given below. Fe" (aq, yellow) + SCN (aq, colorless) → [FeSCN] (aq, red) A student studying this equilibrium begins with an equilibrium mixture that is light pink. (1) What change will the student observe when a solution containing Fe" ion is added to this mixture? (2) Briefly explain how your answer to (1) is consistent with Le Chatelier's principle. (3) Silver ion (Ag) reacts with SCN ion to form silver thiocyanate (AgSCN). What change will the student observe when a solution containing Ag ion is added to the mixture? (4) Briefly explain how your answer to (3) is consistent with Le Chatelier's principle.
Chemistry
10th Edition
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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![3. Iron (III) ion (Fe) reacts with thiocyanate ion (SCN) to
form a red complex ion with the formula [FeSCN]³. The
net ionic equation describing this reaction is given
below.
Fe (aq, yellow) + SCN (aq, colorless) →
[FeSCN] (aq, red)
A student studying this equilibrium begins with an
equilibrium mixture that is light pink.
(1) What change will the student observe when a
solution containing Fe" ion is added to this mixture?
(2) Briefly explain how your answer to (1) is consistent
with Le Chatelier's principle.
(3) Silver ion (Ag) reacts with SCN ion to form silver
thiocyanate (AgSCN). What change will the student
observe when a solution containing Ag ion is added to
the mixture?
(4) Briefly explain how your answer to (3) is consistent
with Le Chatelier's principle.](/v2/_next/image?url=https%3A%2F%2Fcontent.bartleby.com%2Fqna-images%2Fquestion%2F77e8cbf2-54a5-4715-99bb-07885c229395%2F39ae2ec6-9341-42e5-ae28-cc17b5c45fbb%2Fizm2fyg_processed.jpeg&w=3840&q=75)
Transcribed Image Text:3. Iron (III) ion (Fe) reacts with thiocyanate ion (SCN) to
form a red complex ion with the formula [FeSCN]³. The
net ionic equation describing this reaction is given
below.
Fe (aq, yellow) + SCN (aq, colorless) →
[FeSCN] (aq, red)
A student studying this equilibrium begins with an
equilibrium mixture that is light pink.
(1) What change will the student observe when a
solution containing Fe" ion is added to this mixture?
(2) Briefly explain how your answer to (1) is consistent
with Le Chatelier's principle.
(3) Silver ion (Ag) reacts with SCN ion to form silver
thiocyanate (AgSCN). What change will the student
observe when a solution containing Ag ion is added to
the mixture?
(4) Briefly explain how your answer to (3) is consistent
with Le Chatelier's principle.
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