(a)
Interpretation:
The electronic configuration of
Concept introduction:
The electron configuration tells us in which orbitals the electrons for an element are located. Three rules are,
- Electrons fill orbitals staring with lowest n and moving upwards(Aufbau principle)
- No two electrons can fill one orbital with the same spin(Pauli Exclusion Principle)
- For orbitals within the same subshell, the electrons fill each orbital singly before any orbital gets a second electron (Hund’s rule).
Para magnetism refers to the magnetic state of an atom with one or more unpaired electrons.
Diamagnetism has no unpaired electrons (electrons are paired).
(a)
Answer to Problem 1PS
The electronic configuration of
Explanation of Solution
The electronic configuration of chromium is
(b)
Interpretation:
The electronic configuration of
Concept introduction:
The electron configuration tells us in which orbitals the electrons for an element are located. Three rules are,
- Electrons fill orbitals staring with lowest n and moving upwards(Aufbau principle)
- No two electrons can fill one orbital with the same spin(Pauli Exclusion Principle)
- For orbitals within the same subshell, the electrons fill each orbital singly before any orbital gets a second electron (Hund’s rule).
Para magnetism refers to the magnetic state of an atom with one or more unpaired electrons.
Diamagnetism has no unpaired electrons (electrons are paired).
(b)
Answer to Problem 1PS
The electronic configuration of
Explanation of Solution
The electronic configuration of vanadium is
(c)
Interpretation:
The electronic configuration of
Concept introduction:
The electron configuration tells us in which orbitals the electrons for an element are located. Three rules are,
- Electrons fill orbitals staring with lowest n and moving upwards(Aufbau principle)
- No two electrons can fill one orbital with the same spin(Pauli Exclusion Principle)
- For orbitals within the same subshell, the electrons fill each orbital singly before any orbital gets a second electron (Hund’s rule).
Para magnetism refers to the magnetic state of an atom with one or more unpaired electrons.
Diamagnetism has no unpaired electrons (electrons are paired).
(c)
Answer to Problem 1PS
The electronic configuration of
Explanation of Solution
The electronic configuration of nickel is
(d)
Interpretation:
The electronic configuration of
Concept introduction:
The electron configuration tells us in which orbitals the electrons for an element are located. Three rules are,
- Electrons fill orbitals staring with lowest n and moving upwards(Aufbau principle)
- No two electrons can fill one orbital with the same spin(Pauli Exclusion Principle)
- For orbitals within the same subshell, the electrons fill each orbital singly before any orbital gets a second electron (Hund’s rule).
Para magnetism refers to the magnetic state of an atom with one or more unpaired electrons.
Diamagnetism has no unpaired electrons (electrons are paired).
(d)
Answer to Problem 1PS
The electronic configuration of
Explanation of Solution
The electronic configuration of copper is
Want to see more full solutions like this?
Chapter 22 Solutions
Chemistry & Chemical Reactivity
- Identify, based on the position in the periodic table, the actinide elements among those in the following list: Co, Cm, Cd, Ce, Cf.arrow_forwardGive the electron configuration of (a) Ti3+. (b) V2+. (c) Ni3+. (d) Cu+.arrow_forwardWrite the electron configuration for each of the following ions:(a) As3–(b) I–(c) Be2+(d) Cd2+(e) O2–(f) Ga3+(g) Li+(h) N3–(i) Sn2+(j) Co2+(k) Fe2+(l) As3+arrow_forward
- The orbital occupancies for the d orbitals of several com-plex ions are diagrammed below. (a) Which diagram corresponds to the orbital occupancy of thecobalt ion in [Co(CN)₆]³⁻? (b) If diagram D depicts the orbital occupancy of the cobalt ionin [CoF₆]ⁿ, what is the value of n? (c) [NiCl₄]²⁻ is paramagnetic and [Ni(CN)₄]²⁻ is diamagnetic.Which diagrams correspond to the orbital occupancies of thenickel ions in these species? (d) Diagram C shows the orbital occupancy of V²⁺ in the octa-hedral complex VL₆. Can you determine whether L is a strong-or weak-field ligand? Explain.arrow_forwardAssign reason for each of the following :(i) Transition elements exhibit paramagnetic behaviour.(ii) Co2+. is easily oxidised in the presence of a strong ligand.arrow_forward3arrow_forward
- One of the steps for refining silver involves converting silver into dicyanoargenate(I) ions: 4Ag(s) + 8CN−(aq) + O2(g) + 2H2O(l) ⟶ 4[Ag(CN)2]−(aq) + 4OH−(aq)Explain why oxygen must be present to carry out the reaction. Why does the reaction not occur as: 4Ag(s) + 8CN−(aq) ⟶ 4[Ag(CN)2−(aq)?arrow_forwardFor each of the following ions, draw diagrams (on a piece of paper), like the one to the right below, to show orbital occupancies for both weak and strong octahedral fields. Indicate (on the table below) the total number of unpaired electrons in each case. Ion # Unpaired Weak field # Unpaired Strong field (a) Pd4+ (b) Cr3+ (c) Cd 2(d) Ni2 + (e) Co2 +arrow_forwardGive reasons :(i) Zn is not regarded as a transition element.(ii) Cr2+ is a strong reducing agent.arrow_forward
- Predict which member of each pair produces the more acidic aqueous solution: (a) K+ or Cu2+(b) Fe2+ or Fe3+, (c) Ga3+ or Al3+ Explain.arrow_forwardFor each of the following ions, draw diagrams like thosein Figure 8.18 to show orbital occupancies in both weakand strong octahedral fields. Indicate the total number ofunpaired electrons in each case.(a) Mn2+ (c) Cr3+ (e) Fe2+(b) Zn2+ (d) Mn2+arrow_forwardIron(II) forms a complex in hemoglobin. Two of the possibilities are [Fe(H2O)6]2+ and [Fe(CN)6]4– (a) [Fe(H2O)6]2+ and [Fe(CN)6]4– should have the same geometry. What is this coordination environment? Draw it please. (b) For both [Fe(H2O)6]2+ and [Fe(CN)6]4–, draw an energy diagram showing orbital splitting (c) Predict the number of unpaired electrons(d) Identify the ion as low spin or high spin.(e) Is either ion paramagnetic?(f) What would the color of each form of these forms ofhemoglobin?arrow_forward
- Chemistry: The Molecular ScienceChemistryISBN:9781285199047Author:John W. Moore, Conrad L. StanitskiPublisher:Cengage LearningChemistry & Chemical ReactivityChemistryISBN:9781337399074Author:John C. Kotz, Paul M. Treichel, John Townsend, David TreichelPublisher:Cengage LearningChemistry: Principles and PracticeChemistryISBN:9780534420123Author:Daniel L. Reger, Scott R. Goode, David W. Ball, Edward MercerPublisher:Cengage Learning