(a) Interpretation: The number of atoms present in the sample of gold should be calculated. Concept Introduction: Moles of an element are calculated by dividing the given mass by its molar mass. Moles of an element = Mass MolarMass According to Avogadro’s number , the number of atoms present in one mole of a monoatomic element is 6.023 × 10 23 .
(a) Interpretation: The number of atoms present in the sample of gold should be calculated. Concept Introduction: Moles of an element are calculated by dividing the given mass by its molar mass. Moles of an element = Mass MolarMass According to Avogadro’s number , the number of atoms present in one mole of a monoatomic element is 6.023 × 10 23 .
Definition Definition Number of atoms/molecules present in one mole of any substance. Avogadro's number is a constant. Its value is 6.02214076 × 10 23 per mole.
Chapter 8, Problem 109AP
Interpretation Introduction
(a)
Interpretation:
The number of atoms present in the sample of gold should be calculated.
Concept Introduction:
Moles of an element are calculated by dividing the given mass by its molar mass.
Moles of an element =MassMolarMass
According to Avogadro’s number, the number of atoms present in one mole of a monoatomic element is 6.023×1023.
Expert Solution
Answer to Problem 109AP
9.03×1021 atoms are present in 2.89g of gold.
Explanation of Solution
Mass of gold = 2.89g
Molar mass of gold = 196.96 g/mol
Moles of gold =MassMolarMass=2.89 g196.96 g/mol=0.015 mol
Number of atoms present in 0.015 mole of gold (Au)=(0.015×6.023×1023)=9.03×1021 atoms.
Interpretation Introduction
(b)
Interpretation:
The number of atoms present in the sample of platinum should be calculated.
Concept Introduction:
According to Avogadro’s number, the number of atoms present in one mole of a monoatomic element is 6.023×1023.
Expert Solution
Answer to Problem 109AP
1.56×1020 atoms are present in 0.000259 mole of platinum.
Explanation of Solution
Moles of platinum present in the sample = 0.000259
Number of atoms present in 0.000259 mole of platinum (Pt)=(0.000259×6.023×1023)=1.56×1020.
Interpretation Introduction
(c)
Interpretation:
The number of atoms present in the sample of platinum should be calculated.
Concept Introduction:
Moles of an element are calculated by dividing the given mass by its molar mass.
Moles of an element =MassMolarMass
According to Avogadro’s number, the number of atoms present in one mole of a monoatomic element is 6.023×1023.
Expert Solution
Answer to Problem 109AP
8.01×1017 atoms are present in 0.000259 g of platinum.
Explanation of Solution
Mass of platinum = 0.000259g
Molar mass of platinum = 195.08g/mol
Moles of platinum =MassMolarMass=0.000259 g195.08 g/mol=1.33×10−6 mol
Number of atoms present in 1.33×10−6 mole of platinum (Pt)=(1.33×10−6×6.023×1023)=8.01×1017.
Interpretation Introduction
(d)
Interpretation:
The number of atoms present in the sample of magnesium should be calculated.
Concept Introduction:
Moles of an element are calculated by dividing the given mass by its molar mass.
Moles of an element =MassMolarMass
According to Avogadro’s number, the number of atoms present in one mole of a monoatomic element is 6.023×1023.
Expert Solution
Answer to Problem 109AP
2.25×1025 atoms are present in 2.0lb of platinum.
Explanation of Solution
Mass of magnesium = 2.0lb = 907.184g [Since, 1lb = 453.592g]
Molar mass of magnesium = 24.3g/mol
Moles of magnesium =MassMolarMass=907.184 g24.3 g/mol=37.33 mol
Number of atoms present in 37.33 moles of magnesium (Mg)=(37.33×6.023×1023)=2.25×1025.
Interpretation Introduction
(e)
Interpretation:
The number of atoms present in the sample of mercury should be calculated.
Concept Introduction:
Mass can be calculated by multiplying the density by the volume.
Mass=Density×Volume
Moles of an element are calculated by dividing the given mass by its molar mass.
Moles of an element =MassMolarMass
According to Avogadro’s number, the number of atoms present in one mole of a monoatomic element is 6.023×1023.
Expert Solution
Answer to Problem 109AP
7.7×1022 atoms are present in 1.90 mL of mercury.
Explanation of Solution
Volume of mercury = 1.90mL
Density of mercury = 13.6g/mL
Mass of mercury =(Density×Volume)=(13.6g/mL×1.90mL)=25.84 g
Molar mass of mercury = 200.59g/mol
Moles of mercury =MassMolar Mass=25.84 g200.59 g/mol=0.128 mol
Number of atoms present in 37.33 moles of
Mercury (Hg)=(0.128×6.023×1023)=7.7×1022.
Interpretation Introduction
(f)
Interpretation:
The number of atoms present in the sample of tungsten should be calculated.
Concept Introduction:
According to Avogadro’s number, the number of atoms present in one mole of a monoatomic element is 6.023×1023.
Expert Solution
Answer to Problem 109AP
2.58×1023 atoms are present in 4.30 moles of tungsten.
Explanation of Solution
Moles of tungsten = 4.30
Number of atoms present in 4.30 moles of
Tungsten (W)=(4.30×6.023×1023)=2.58×1023.
Interpretation Introduction
(f)
Interpretation:
The number of atoms present in the sample of tungsten should be calculated.
Concept Introduction:
According to Avogadro’s number, the number of atoms present in one mole of a monoatomic element is 6.023×1023.
Expert Solution
Answer to Problem 109AP
2.58×1023 atoms are present in 4.30 moles of tungsten.
Explanation of Solution
Moles of tungsten = 4.30
Number of atoms present in 4.30 moles of
Tungsten (W)=(4.30×6.023×1023)=2.58×1023.
Interpretation Introduction
(g)
Interpretation:
The number of atoms present in the sample of tungsten should be calculated.
Concept Introduction:
Moles of an element are calculated by dividing the given mass by its molar mass.
Moles of an element =MassMolarMass
According to Avogadro’s number, the number of atoms present in one mole of a monoatomic element is 6.023×1023.
Expert Solution
Answer to Problem 109AP
1.38×1022 atoms are present in 4.30g of tungsten.
Explanation of Solution
Mass of tungsten = 4.30g
Molar mass of tungsten = 183.84g/mol
Moles of tungsten =MassMolar Mass=4.30 g183.84 g/mol=0.023 mol
Number of atoms present in 0.023 moles of
Tungsten (W)=(0.023×6.023×1023)=1.38×1022.
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this is an organic chemistry question please answer accordindly!!
please post the solution in your hand writing not an AI generated answer please draw the figures and structures if needed to support your explanation hand drawn only!!!! answer the question in a very simple and straight forward manner thanks!!!!!
im reposting this please solve all parts and draw it not just word explanations!!
2B: The retrosynthetic cut below provides two options for a Suzuki coupling, provide the identities of A, B,
C and D then identify which pairing is better and justify your choice.
O₂N.
Retro-Suzuki
NO2
MeO
OMe
A
+
B
OR
C
+
D
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