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Lunna [17]
3 years ago
12

On analysis, an equilibrium mixture for the reaction 2H2S(g) LaTeX: \longleftrightarrow⟷ 2H2(g) + S2(g) was found to contain 1.0

mol H2S, 4.0 mol H2, and 0.80 mol S2 in a 4.0 L vessel. Calculate the equilibrium constant, Kc, for this reaction. Group of answer choices
Chemistry
1 answer:
UNO [17]3 years ago
5 0

Answer:

The equilibrium constant Kc = 3.2

Explanation:

Step 1: Data given

Number of moles H2S = 1.0 moles

Number of moles H2 = 4.0 moles

Number of moles S2 = 0.8 moles

Volume = 4.0 L

Step 2: The balanced equation

2H2S(g) ⟷ 2H2(g) + S2(g)

Step 3: Calculate concentration

Concentration = moles / volume

[H2S] = 1.0 moles / 4.0 L

[H2S] = 0.25 M

[H2] = 4.0 moles / 4.0 L

[H2]= 1.0 M

[S2] = 0.80 moles / 4.0 L

[S2] = 0.20 M

Step 4: Calculate Kc

Kc = [S2][H2]² / [H2S]²

Kc = (0.20 * 1.0²) / 0.25²

Kc = 3.2

The equilibrium constant Kc = 3.2

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Answer:

DISADVANTAGES OF ELECTRONIC COMMUNICATION

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5 0
3 years ago
What is the percent composition of nitrogen in Ca(NO3)2?
MrMuchimi

Nitrogen in this compound has 2 atoms. 2 multiplied by its mass, 14.007, equals 28.014. Divide 28.014 by the molar mass of calcium nitrate: 28.014/164 = 0.17081. Multiply this by 100 to achieve its percentage: 0.17081 x 100 = 17.08%

8 0
4 years ago
An ionic bond occurs between what particles?
LenKa [72]
because a postive and negative can be used in. ion

5 0
3 years ago
Read 2 more answers
Could someone please care to explain what the answer is
polet [3.4K]

Calculate the percentage composition of Ca(MnO4)2.

<u>Firstly, we see how many atoms are there for each element in the formula</u>.

Ca= 1 atom

Mn= 2 atoms

O= 8 atoms

<u>Next, we are going to consult our periodic table for the atomic mass of each element.</u>

Ca= 40

Mn= 55

O= 16

Then, we have to find the molar mass for the compound..

Here is the formula for calculating molar mass of an element:

Molar Mass= ( no. of atoms of the element × atomic mass of the element)

Now, we have to calculate the atomic mass of the compound. So using the molar mass formula for an element, we calculate the molar mass for each element then we sum up their molar masses to get the compounds molar mass.

Molar mass (Ca)= 1× 40

(Ca)= 40

Molar mass (Mn)=2×55

(Mn)= 110

Molar mass (O)= 8×16

(O)= 128

Now: Molar mass( compound)= (Ca)+(Mn)+(O)

= 40+ 110 128

= 278

This is everything we need to calculate our percentage composition for each element..

* The example says to find the percentage composition for Ca. So we only find for Ca, Which is already done using the formula and the answer is 14.39%.

To prove that your answer is correct, find the percentage composition for Mn and O as well. Then you add up their percentage compositions.

If you do and you get 100 as your answer, then your percentage compositions are correct.

Why don't you try finding the percentage composition for Mn and O, then add up all the three percentage compositions. If you 100 as their sum, then your percentage composition for each of the elements are correct.

6 0
3 years ago
Calculate the ph of the solution 0.2M Mg(OH)2
Kipish [7]

Mg(OH)2 is base

Oh = 0.2 x 2 = .4

Poh = - Log (.4)

= .3979

Ph + Poh = 14

Ph = 14 - .3979

= 13.60

6 0
3 years ago
Read 2 more answers
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