(a) Interpretation: The equation to show the acidic nature of the given species in water according to the Bronsted-Lowry model should be written. Concept introduction: According Bronsted-Lowry acid and base theory, acids are substance which loses protons H + to form conjugate base and bases are substances which accepts protons to from conjugate acid. For example: HA → H + + A − Here, HA is an acid as it donates a proton to form A − a conjugate base. Similarly, A − + H + → HA Here, A − is a base as it accepts a proton to from HA which is a conjugate acid.
(a) Interpretation: The equation to show the acidic nature of the given species in water according to the Bronsted-Lowry model should be written. Concept introduction: According Bronsted-Lowry acid and base theory, acids are substance which loses protons H + to form conjugate base and bases are substances which accepts protons to from conjugate acid. For example: HA → H + + A − Here, HA is an acid as it donates a proton to form A − a conjugate base. Similarly, A − + H + → HA Here, A − is a base as it accepts a proton to from HA which is a conjugate acid.
The equation to show the acidic nature of the given species in water according to the Bronsted-Lowry model should be written.
Concept introduction:
According Bronsted-Lowry acid and base theory, acids are substance which loses protons H+ to form conjugate base and bases are substances which accepts protons to from conjugate acid.
For example:
HA→H++A−
Here, HA is an acid as it donates a proton to form A− a conjugate base.
Similarly,
A−+H+→HA
Here, A− is a base as it accepts a proton to from HA which is a conjugate acid.
Expert Solution
Answer to Problem 10QAP
Zn(H2O)3OH++H2O→Zn(H2O)3O+H3O+
Explanation of Solution
The given species is Zn(H2O)3OH+.
On reaction with water, it can act as an acid by donating hydrogen ion to the water. The reaction is shown as follows:
Zn(H2O)3OH++H2O→Zn(H2O)3O+H3O+
In the above reaction, Zn(H2O)3OH+ acts as an acid, H2O acts as a base, Zn(H2O)3O is a conjugate base and H3O+ is a conjugate acid.
Interpretation Introduction
(b)
Interpretation:
The equation to show the acidic nature of the given species in water according to the Bronsted -Lowry model should be written.
Concept introduction:
According Bronsted-Lowry acid and base theory, acids are substance which loses protons H+ to form conjugate base and bases are substances which accepts protons to from conjugate acid.
For example:
HA→H++A−
Here, HA is an acid as it donates a proton to form A− a conjugate base.
Similarly,
A−+H+→HA
Here, A− is a base as it accepts a proton to from HA which is a conjugate acid.
Expert Solution
Answer to Problem 10QAP
HSO4−+H2O→SO42−+H3O+
Explanation of Solution
The given species is HSO4−.
On reaction with water, it can act as an acid by donating hydrogen ion to the water. The reaction is shown as follows:
HSO4−+H2O→SO42−+H3O+
In the above reaction, HSO4− acts as an acid, H2O acts as a base, SO42− is a conjugate base and H3O+ is a conjugate acid.
Interpretation Introduction
(c)
Interpretation:
The equation to show the acidic nature of the given species in water according to the Bronsted-Lowry model should be written.
Concept introduction:
According Bronsted-Lowry acid and base theory, acids are substance which loses protons H+ to form conjugate base and bases are substances which accepts protons to from conjugate acid.
For example:
HA→H++A−
Here, HA is an acid as it donates a proton to form A− a conjugate base.
Similarly,
A−+H+→HA
Here, A− is a base as it accepts a proton to from HA which is a conjugate acid.
Expert Solution
Answer to Problem 10QAP
HNO2+H2O→NO2−+H3O+
Explanation of Solution
The given species is HNO2.
On reaction with water, it can act as an acid by donating hydrogen ion to the water. The reaction is shown as follows:
HNO2+H2O→NO2−+H3O+
In the above reaction, HNO2 acts as an acid, H2O acts as a base, NO2− is a conjugate base and H3O+ is a conjugate acid.
Interpretation Introduction
(d)
Interpretation:
The equation to show the acidic nature of the given species in water according to the Bronsted -Lowry model should be written.
Concept introduction:
According Bronsted-Lowry acid and base theory, acids are substance which loses protons H+ to form conjugate base and bases are substances which accepts protons to from conjugate acid.
For example:
HA→H++A−
Here, HA is an acid as it donates a proton to form A− a conjugate base.
Similarly,
A−+H+→HA
Here, A− is a base as it accepts a proton to from HA which is a conjugate acid.
Expert Solution
Answer to Problem 10QAP
Fe(H2O)62++H2O→Fe(H2O)5+(OH)+H3O+
Explanation of Solution
The given species is as follows:
Fe(H2O)62+
On reaction with water, it can act as an acid by donating hydrogen ion to the water. The reaction is shown as follows:
Fe(H2O)62++H2O→Fe(H2O)5+(OH)+H3O+
In the above reaction, Fe(H2O)62+ acts as an acid, H2O acts as a base, Fe(H2O)5+(OH) is a conjugate base and H3O+ is a conjugate acid.
Interpretation Introduction
(e)
Interpretation:
The equation to show the acidic nature of the given species in water according to the Bronsted -Lowry model should be written.
Concept introduction:
According Bronsted-Lowry acid and base theory, acids are substance which loses protons H+ to form conjugate base and bases are substances which accepts protons to from conjugate acid.
For example:
HA→H++A−
Here, HA is an acid as it donates a proton to form A− a conjugate base.
Similarly,
A−+H+→HA
Here, A− is a base as it accepts a proton to from HA which is a conjugate acid.
Expert Solution
Answer to Problem 10QAP
H2C2H3O2+H2O→HC2H3O2−+H3O+
Explanation of Solution
The given species is as follows:
H2C2H3O2
On reaction with water, it can act as an acid by donating hydrogen ion to the water. The reaction is shown as follows:
H2C2H3O2+H2O→HC2H3O2−+H3O+
In the above reaction, H2C2H3O2 acts as an acid, H2O acts as a base, HC2H3O2− is a conjugate base and H3O+ is a conjugate acid.
Interpretation Introduction
(f)
Interpretation:
The equation to show the acidic nature of the given species in water according to the Bronsted-Lowry model should be written.
Concept introduction:
According Bronsted-Lowry acid and base theory, acids are substance which loses protons H+ to form conjugate base and bases are substances which accepts protons to from conjugate acid.
For example:
HA→H++A−
Here, HA is an acid as it donates a proton to form A− a conjugate base.
Similarly,
A−+H+→HA
Here, A− is a base as it accepts a proton to from HA which is a conjugate acid.
Expert Solution
Answer to Problem 10QAP
H2PO4−+H2O→HPO42−+H3O+
Explanation of Solution
The given species is as follows:
H2PO4−
On reaction with water, it can act as an acid by donating hydrogen ion to the water. The reaction is shown as follows:
H2PO4−+H2O→HPO42−+H3O+
In the above reaction, H2PO4− acts as an acid, H2O acts as a base, HPO42− is a conjugate base and H3O+ is a conjugate acid.
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[In this question, there are multiple answers to type in a "fill-in-the-blank" fashion - in each case, type in a whole number.] Consider using Slater's Rules to calculate the shielding factor (S) for the last electron in silicon (Si). There will be
electrons with a 0.35 S-multiplier,
electrons with a 0.85 S-multiplier, and
electrons with a 1.00 S-multiplier.
Provide the unknown for the given data.
Draw the Lewis structures of two methanol (CH3OH) molecules and depict hydrogenbonding between them with dashed lines. Show all lone pairs. Provide a thorough analysis to apply concept idea into other problems.
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