Principles of Instrumental Analysis
7th Edition
ISBN: 9781305577213
Author: Douglas A. Skoog, F. James Holler, Stanley R. Crouch
Publisher: Cengage Learning
expand_more
expand_more
format_list_bulleted
Question
Chapter 22, Problem 22.9QAP
Interpretation Introduction
Interpretation:
The
Concept introduction:
The electrode potential of the cell may be defined as the potential difference produced by the electrode which is made up of a metal and a solution. The calculation of electrode potential is done by the using the Nernst equation.
Expert Solution & Answer
Trending nowThis is a popular solution!
Students have asked these similar questions
For the aqueous [Ag (NH3)2] complex K, =1.12 × 107 at 25 °C.
+
Suppose equal volumes of 0.0072 M AgNO3 solution and 0.72M NH3 solution are mixed. Calculate the equilibrium molarity of aqueous Ag ion.
Round your answer to 2 significant digits.
м
x10
X
For the aqueous [Ag (CN)₂] complex K=1.26 × 10²¹ at 25 °C.
+
Suppose equal volumes of 0.0022M AgNO3 solution and 0.48M KCN solution are mixed. Calculate the equilibrium molarity of aqueous Agion.
Round your answer to 2 significant digits.
M
x10
X Ś
?
For the aqueous [Ag (NH3)₂ complex K₁=1.12 × 107 at 25 °C.
+
Suppose equal volumes of 0.0042M AgNO3 solution and 0.86M NH3 solution are mixed. Calculate the equilibrium molarity of aqueous Ag ion.
Round your answer to 2 significant digits.
M
x10
Times 10 to an exponent
Chapter 22 Solutions
Principles of Instrumental Analysis
Ch. 22 - Calculate the electrode potentials of the...Ch. 22 - Prob. 22.2QAPCh. 22 - For each of the following half-cells, compare...Ch. 22 - For each of the following half-cells, compare...Ch. 22 - Prob. 22.5QAPCh. 22 - Calculate the electrode potentials for the...Ch. 22 - Calculate the theoretical potential of each of the...Ch. 22 - Calculate the theoretical potential of each of the...Ch. 22 - Prob. 22.9QAPCh. 22 - Prob. 22.10QAP
Knowledge Booster
Similar questions
- For the aqueous [Ag (CN)₂] complex K, = 1.26 × 10²¹ at 25 °C. Suppose equal volumes of 0.0040 M AgNO3 solution and 0.60 M KCN solution are mixed. Calculate the equilibrium molarity of aqueous Agion. Round your answer to 2 significant digits. M 0 x10 X Sarrow_forwardFor the aqueous s [Ni(CN)4] complex K₂ = 2.00 × 10³¹ at 25 °C. Suppose equal volumes of 0.0096M Ni(NO3), solution and 0.68M NaCN solution are mixed. Calculate the equilibrium molarity of aqueous Ni²+ ion. Round your answer to 2 significant digits. M x10arrow_forwardFor the aqueous complex at Fe (CN)6]4-complex Kf= 1.0 x 10^35 Suppose equal volumes of 0.0062M Fe(NO2) solution and 0.10M KCN solution are mixed. Calculate the equilibrium molarity of aqueous Fe^2+ ion. Round your answer to 2 significant digits.arrow_forward
- In aqueous solution the Ag ion forms a complex with two cyanide anions. Write the formation constant expression for the equilibrium between the hydrated metal ion and the aqueous complex. Under that, write the balanced chemical equation for the last step in the formation of the complex. K₂ = ☐ Write the Last Step: Last Step: ☑ ロ→ロarrow_forwardThe blue complex Cu(H,O);+ and the yellow complex CuCl- exist in equilibrium. Cu(H, O);+(aq) + 4 CI¯(aq) = CuCl (aq) + 4 H, O(1) Upon addition of LiCl to this equilibrium in solution, which observation would be expected? The solution turns blue. The solution turns yellow. The Cu2+ salts precipitate out of solution. The volume of water decreases. Incorrect O O Oarrow_forwardFor the aqueous [Ag (CN)₂] complex K₁=1.26 × 10²¹ at 25 °C. + Suppose equal volumes of 0.0026M AgNO3 solution and 0.38M KCN solution are mixed. Calculate the equilibrium molarity of aqueous Agion. Round your answer to 2 significant digits. M ? ☐x10 × Śarrow_forward
- For the aqueous [Hg14] complex K, -6.76 × 1029 at 25 °C. 2+ Suppose equal volumes of 0.0092 M Hg (NO3), solution and 0.80M NaI solution are mixed. Calculate the equilibrium molarity of aqueous Hgion. Round your answer to 2 significant digits. ? 00 Ом x10 × Ararrow_forwardThe formation constant of a silver cyano complex is 5.6 x 1018 Ag+ + 2 CN Ag(CN)," If a certain solution have the equilibrium concentrations of 5.0 x 10-3 M and 0.20 M for Ag+ and CN", respectively, then what is the equilibrium concentration for the silver cyano complex? O1.1 x 1015 O5.6 x 1015 02.8 x 1016 02.4 x 109arrow_forwardFor the aqueous [Hg14] complex K₁=6.76 × 10²⁹ at 25 °C. 2+ Suppose equal volumes of 0.0066M Hg(NO3), solution and 0.78M KI solution are mixed. Calculate the equilibrium molarity of aqueous Hg²+ ion. Round your answer to 2 significant digits. M x10 X ? Śarrow_forward
- 2+ For the aqueous [Ni(NH3) [Ni(NH3)]²+ complex K₁ = 5.50 × 108 at 25 °C. Suppose equal volumes of 0.0078M Ni(NO3), solution and 0.96M NH3 solution are mixed. Calculate the equilibrium molarity of aqueous Ni²+ ion. Round your answer to 2 significant digits. M 0x₁ x10 X ? Śarrow_forwardFor the aqueOuS [Ni(NH3)6] 2+ complex Kf= 5.50 x 10^8 at 25 °C. Suppose equal volumes of 0.0016 M Ni(NO3)2 solution and 0.28 M NH3 solution are mixed. Calculate the equilibrium molarity of aqueous Ni2+ ion. Round your answer to 2 significant digits.arrow_forwardA solution is prepared such that the initial concentration of A2+ is 1.50×10-3 M and the initial concentration of X is 4.60×10-3 M. A2+ and X are allowed to react as shown below to establish equilibrium with the complex AX2+. In a colorimetry experiment, the equilibrium concentration of the complex AX2+ is determined to be 8.9×10-4 M. A2+ (aq) + X (aq) AX2+ (aq) Use your correct answers from #7 to answer this question. What is Kf, the formation constant, for this complex?arrow_forward
arrow_back_ios
SEE MORE QUESTIONS
arrow_forward_ios
Recommended textbooks for you
- Chemistry: The Molecular ScienceChemistryISBN:9781285199047Author:John W. Moore, Conrad L. StanitskiPublisher:Cengage LearningChemistryChemistryISBN:9781305957404Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCostePublisher:Cengage LearningChemistry: An Atoms First ApproachChemistryISBN:9781305079243Author:Steven S. Zumdahl, Susan A. ZumdahlPublisher:Cengage Learning
- Chemistry & Chemical ReactivityChemistryISBN:9781337399074Author:John C. Kotz, Paul M. Treichel, John Townsend, David TreichelPublisher:Cengage Learning
Chemistry: The Molecular Science
Chemistry
ISBN:9781285199047
Author:John W. Moore, Conrad L. Stanitski
Publisher:Cengage Learning
Chemistry
Chemistry
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Cengage Learning
Chemistry: An Atoms First Approach
Chemistry
ISBN:9781305079243
Author:Steven S. Zumdahl, Susan A. Zumdahl
Publisher:Cengage Learning
Chemistry & Chemical Reactivity
Chemistry
ISBN:9781337399074
Author:John C. Kotz, Paul M. Treichel, John Townsend, David Treichel
Publisher:Cengage Learning