The given ions are to be placed in decreasing order of size. Concept introduction: The ionic size depends on the number of electrons transferred. The atomic size of cations is smaller than anions. Also the size of ions increases by gaining electrons whereas size decreases by accepting electrons. To determine: The decreasing order of size of ions Cu ,Cu + ,Cu 2 + .
The given ions are to be placed in decreasing order of size. Concept introduction: The ionic size depends on the number of electrons transferred. The atomic size of cations is smaller than anions. Also the size of ions increases by gaining electrons whereas size decreases by accepting electrons. To determine: The decreasing order of size of ions Cu ,Cu + ,Cu 2 + .
Definition Definition Elements containing partially filled d-subshell in their ground state configuration. Elements in the d-block of the periodic table receive the last or valence electron in the d-orbital. The groups from IIIB to VIIIB and IB to IIB comprise the d-block elements.
Chapter 8, Problem 53E
(a)
Interpretation Introduction
Interpretation: The given ions are to be placed in decreasing order of size.
Concept introduction: The ionic size depends on the number of electrons transferred. The atomic size of cations is smaller than anions. Also the size of ions increases by gaining electrons whereas size decreases by accepting electrons.
To determine: The decreasing order of size of ions Cu,Cu+,Cu2+.
(a)
Expert Solution
Answer to Problem 53E
The size of ions Cu,Cu+,Cu2+ decreases in the order Cu>Cu+>Cu2+.
Explanation of Solution
In a periodic table the size of ions depends on the nuclear attraction on the valence electrons. Positive ions are formed by removing electrons from outer shell. Hence, formation of positive ions or cation not only vacant the orbitals but also decrease the electron-electron repulsion. As a result size of cations is smaller than neutral atom.
The ions Cu+andCu2+ are positive ions where Cu2+ is smaller because it contains large positive charge and have high nuclear attraction.
Hence, the decreasing order is Cu>Cu+>Cu2+.
Conclusion
The size of ions depends on the gaining or losing of electrons. The size of ions increases by gaining electrons whereas size decreases by accepting electrons. The decreasing order of ions size is Cu>Cu+>Cu2+.
(b)
Interpretation Introduction
Interpretation: The given ions are to be placed in decreasing order of size.
Concept introduction: The ionic size depends on the number of electrons transferred. The atomic size of cations is smaller than anions. Also the size of ions increases by gaining electrons whereas size decreases by accepting electrons.
To determine: The decreasing order of size of ions Ni2+,Pd2+,Pt2+.
(b)
Expert Solution
Answer to Problem 53E
The size of ions Ni2+,Pd2+,Pt2+ decreases in the order Pt2+>Pd2+>Ni2+.
Explanation of Solution
In a periodic table, the size of elements increases down the group. The elements Ni,PdandPt lie in 10th group. Hence, the increasing order of size is Ni<Pd<Pt.
The size of ions also depends on the nuclear attraction on the valence electrons. Positive ions are formed by removing electrons from outer shell. Hence, formation of positive ions or cation not only vacant the orbitals but also decrease the electron-electron repulsion. As a result size of cations is smaller than neutral atom.
Hence, the decreasing order of ions is Pt2+>Pd2+>Ni2+.
Conclusion
The size of ions depends on the gaining or losing of electrons. The size of ions increases by gaining electrons whereas size decreases by accepting electrons. The decreasing order of ions size is Pt2+>Pd2+>Ni2+.
(c)
Interpretation Introduction
Interpretation: The given ions are to be placed in decreasing order of size.
Concept introduction: The ionic size depends on the number of electrons transferred. The atomic size of cations is smaller than anions. Also the size of ions increases by gaining electrons whereas size decreases by accepting electrons.
To determine: The decreasing order of size of ions O,O−,O2−.
(c)
Expert Solution
Answer to Problem 53E
The size of ions O,O−,O2− decreases in the order O2−>O−>O.
Explanation of Solution
Addition of electrons leads to increase in electron-electron repulsion which causes the electrons to spread out more in space. As a result, size of anion is larger than neutral atom.
Hence, the decreasing order of ions is O2−>O−>O.
(d)
Interpretation Introduction
Interpretation: The given ions are to be placed in decreasing order of size.
Concept introduction: The ionic size depends on the number of electrons transferred. The atomic size of cations is smaller than anions. Also the size of ions increases by gaining electrons whereas size decreases by accepting electrons.
To determine: The decreasing order of size of ions La3+,Eu3+,Gd3+,Yb3+.
(d)
Expert Solution
Answer to Problem 53E
The size of ions La3+,Eu3+,Gd3+,Yb3+ decreases in the order La3+>Eu3+>Gd3+>Yb3+.
Explanation of Solution
The elements La,Eu,Gd,Yb are transition elements. Since the size of atom decreases from left to right of the period, the size of ions also decreases from left to right of the period. In transition elements, electrons are filled in the (n-1)d orbitals. These (n-1)d electrons screen the ns electrons from the nucleus. So the force of attraction between the ns electrons and the nucleus decreases.
Hence, the decreasing order of ions is La3+>Eu3+>Gd3+>Yb3+.
(e)
Interpretation Introduction
Interpretation: The given ions are to be placed in decreasing order of size.
Concept introduction: The ionic size depends on the number of electrons transferred. The atomic size of cations is smaller than anions. Also the size of ions increases by gaining electrons whereas size decreases by accepting electrons.
To determine: The decreasing order of size of ions Te2−,I−,Cs+,Ba2+,La3+.
(e)
Expert Solution
Answer to Problem 53E
The size of ions Te2−,I−,Cs+,Ba2+,La3+ decreases in the order Te2−>I−>Cs+>Ba2+>La3+.
Explanation of Solution
In a periodic table, the size of elements decreases from left to right along the period. Also if the periodic number is increases then atomic size also increases. The elements Cs,BaandLa lie in 6th period and elements TeandI lie in 5th period. Hence, the decreasing order of atomic size is Cs>Ba>La>Te>I.
The electronic configuration of ions Te2−,I−,Cs+,Ba2+,La3+ is,
Te2−:1s22s22p63s23p63d104s24p64d105s25p6
I−:1s22s22p63s23p63d104s24p64d105s25p6
Cs+:1s22s22p63s23p63d104s24p64d105s25p6
Ba2+:1s22s22p63s23p63d104s24p64d105s25p6
La3+:1s22s22p63s23p63d104s24p64d105s25p6
The number of electrons present in Te2−,I−,Cs+,Ba2+,La3+ ions is 54. Hence these ions are isoelectronic. Since the atomic size is increased with increase of anion charge and decrease with increase of cation charge. For isoelectronic configuration, the order of decreasing size of ions is Te2−>I−>Cs+>Ba2+>La3+.
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this is an organic chemistry question please answer accordindly!!
please post the solution draw the figures and post, answer the question in a very simple and straight forward manner thanks!!!!! please answer EACH part till the end and dont just provide wordy explanations wherever asked for structures or diagrams, please draw them on a paper and post clearly!! answer the full question with all details EACH PART CLEARLY please thanks!!
im reposting this kindly solve all parts and draw it not just word explanations!!
Please correct answer and don't used hand raiting
Curved arrows are used to illustrate the flow of electrons. Using the provided
starting and product structures, draw the curved electron-pushing arrows for
the following reaction or mechanistic step(s).
Be sure to account for all bond-breaking and bond-making steps.
Select to Edit Arrows
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Select to Add Arrows
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H
CFCI:
Select to Edit Arrows
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Select to Edit Arrows
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