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2 years ago

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If the value of Kc for the reaction is 2.50, what are the equilibrium concentrations if the reaction mixture was initially 0.500

M SO2, 0.500 M NO2, 0.00500 M SO3, and 0.00500 M NO?

1 answer:

ratelena [41]2 years ago

4 0

<u>Answer:</u> The equilibrium concentration of sulfur dioxide, nitrogen dioxide, sulfur trioxide, nitrogen monoxide is 0.196 M, 0.196 M, 0.309 M and 0.309 M respectively.

<u>Explanation:</u>

We are given:

Initial concentration of sulfur dioxide = 0.500 M

Initial concentration of nitrogen dioxide = 0.500 M

Initial concentration of sulfur trioxide = 0.00500 M

Initial concentration of nitrogen monoxide = 0.00500 M

The chemical reaction follows:

$SO_2+NO_2\rightleftharpoons SO_3+NO$

<u>Initial:</u> 0.500 0.500 0.005 0.005

<u>At eqllm:</u> 0.500-x 0.500-x 0.005+x 0.005+x

The expression of equilibrium constant for the above reaction follows:

$K_c=\frac{[SO_3][NO]}{[SO_2][NO_2]}$

We are given:

$K_c=2.50$

Putting values in above equation, we get:

$2.50=\frac{(0.005+x)\times (0.005+x)}{(0.500-x)\times (0.500-x)}\\\\x=0.304,1.37$

Neglecting the value of x = 1.37, because change cannot be greater than the initial concentration

So, equilibrium concentration of sulfur dioxide = $(0.500-x)=(0.500-0.304)=0.196M$

Equilibrium concentration of nitrogen dioxide = $(0.500-x)=(0.500-0.304)=0.196M$

Equilibrium concentration of sulfur trioxide = $(0.00500+x)=(0.00500+0.304)=0.309M$

Equilibrium concentration of nitrogen monoxide = $(0.00500+x)=(0.00500+0.304)=0.309M$

Hence, the equilibrium concentration of sulfur dioxide, nitrogen dioxide, sulfur trioxide, nitrogen monoxide is 0.196 M, 0.196 M, 0.309 M and 0.309 M respectively.

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Answer:

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Explanation:

Given that:

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The change in temperature ΔT = ( 1540 - 165)° C

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The amount of heat required:

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The equation for the reaction is expressed as:

$C_2H_{2(g)} + 5O_{2(g)} \to 2CO_{2(g)} + H_2O_{(g)} \ \ \ \ \ \Delta H^o_{reaction} = -1544 \ kJ$

Then,

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Refer to the map of "The Major North American Land Biomes" to answer the question.

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Write the balanced Ka and Kb reactions for HSO3- in water. Be sure to include the physical states of each species involved in th

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Answer:

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Explanation:

An amphoteric substance as HSO₃⁻ is a substance that act as either an acid or a base. When acid:

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And Ka, the acid dissociation constant is:

<h3>Ka = [H₃O⁺] [SO₃²⁻] / [HSO₃⁻]</h3><h3 />

When base:

HSO₃⁻(aq) + H₂O(l) ⇄ OH⁻(aq) + H₂SO₃(aq)

And kb, base dissociation constant is:

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1 year ago

A sample contains 2.2 g of the radioisotope niobium-91 and 15.4 g of its daughter isotope, zirconium-91. how many half-lives hav

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Answer: 3

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Equation for the reaction of decay of $_{19}^{40}\textrm{K}$ radioisotope follows:

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By the stoichiometry of above reaction,

1 mole of $_{40}^{91}\textrm{Zr}$ is produced by 1 mole $_{41}^{91}\textrm{Nb}$

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decomposed will be = 0.17 moles

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$a=\frac{a_o}{2^n}$

where,

a = amount of reactant left after n-half lives = 0.024

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n = number of half lives= ?

Putting values in above equation, we get:

$0.024=\frac{0.194}{2^n}$

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2 years ago

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How many moles of koh are contained in 750. ml of 5.00 m koh solution?

Marat540 [252]

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Molarity = $\frac{\text{number of moles of solute}}{\text{volume of solution (l)}}$

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Volume of solution = 750 ml = 0.750 l

∴ 5 = $\frac{\text{number of moles}}{.750}$
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Answer: Number of moles of KOH present in solution is 3.75.

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2 years ago