A student mixes 4.00 mL of 2.00 x 10-3 M Fe(NO3)3, 4.00 mL of 2.00 x 10-3 M KSCN, and 2.00 mL of 1.40 x 10-4 M FeSCN2+. a. Calculate the initial concentrations of ions.  b. Determine if the equilibrium will shift towards the product or the reactants. c. Using your experimental Kc value, calculate the equilibrium concentrations of Fe3+, SCN-, and FeSCN2+.

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A student mixes 4.00 mL of 2.00 x 10-3 M Fe(NO3)3, 4.00 mL of 2.00 x 10-3 M KSCN,
and 2.00 mL of 1.40 x 10-4 M FeSCN2+.
a. Calculate the initial concentrations of ions. 
b. Determine if the equilibrium will shift towards the product or the reactants.
c. Using your experimental Kc value, calculate the equilibrium concentrations of Fe3+,
SCN-, and FeSCN2+.

 

 

Procedure steps:
# 27
# 27
# 28
# 29
# 29
# 30
# 31
# 32
Table 5- Unknown Concentration Answers
Unk #3
0-001
Unk #1
0.001
0.0002
0-1006
4-38 X 10-8 9-51x10-1-28 X 10-4
2-10 X10 2-09 X10-9
9.56 X10
9.05 x 104 8-72 X10-4 7-90 X10-9 7-91 x 10-4
1-86x104 3.05 x 10-9 4.72 x 10-4 5-90x/04 7-9/X10-9
Ke
2-93x10²
3.45 X1023-11 X 10²
4.50x 10²3-34X10²
K. Discarded by Q-test (if any)
Average Ke
347
[Fe3+] initial
[SCN] initial
[FeSCN²*] equilib
[Fe³+] equilib
[SCN-] equilib
Unk #2
0-001
0.0004
Kc Std Dev
Unk #4
8-001
0.0008
Unk #5
√5.0
Transcribed Image Text:Procedure steps: # 27 # 27 # 28 # 29 # 29 # 30 # 31 # 32 Table 5- Unknown Concentration Answers Unk #3 0-001 Unk #1 0.001 0.0002 0-1006 4-38 X 10-8 9-51x10-1-28 X 10-4 2-10 X10 2-09 X10-9 9.56 X10 9.05 x 104 8-72 X10-4 7-90 X10-9 7-91 x 10-4 1-86x104 3.05 x 10-9 4.72 x 10-4 5-90x/04 7-9/X10-9 Ke 2-93x10² 3.45 X1023-11 X 10² 4.50x 10²3-34X10² K. Discarded by Q-test (if any) Average Ke 347 [Fe3+] initial [SCN] initial [FeSCN²*] equilib [Fe³+] equilib [SCN-] equilib Unk #2 0-001 0.0004 Kc Std Dev Unk #4 8-001 0.0008 Unk #5 √5.0
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