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Ainat [17]
3 years ago
6

Can someone please explain to me how to do this!? What is the volume, in liters, occupied by 0.485 moles of Oxygen gas at 23.0 o

C and 0.980 atm?
Chemistry
1 answer:
Murrr4er [49]3 years ago
5 0
PV=nRT
(.98)V=(.485moles)(.0821)296
solve for V

p is for pressure (.98 atm)
you are solving for the volume V
n is moles (.485)
the R value is a constant which is .0821 when your pressure is in atm
T is temperature in Kelvin so add 273 to your celsius temp to get 296
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Which equation represents sublimation?
olga nikolaevna [1]

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Be sure to answer all parts. ΔG o for the reaction H2(g) + I2(g) ⇌ 2HI(g) is 2.60 kJ/mol at 25°C. Calculate ΔG, and predict the
daser333 [38]

Answer:

∆G = 1.567 kJ/mole

The reaction is nonspontaneous., or will be spontaneous in the reverse direction

Explanation:

<u>Step 1:</u> The balanced equation

H2(g) + I2(g) ⇌ 2HI(g)        2.60 kJ/mol at 25°C.

<u>Step 2:</u> Data given

The initial pressures are:

pH2 = 3.10 atm

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pHI = 1.75 atm

<u>Step 3: </u>Calculate Q

Kp = (pHI)^2 / (pH2)(pI2)

Q has the same form but we substitute the non-equilibrium values given in the problem.

Q = (1.75)² / (3.10*1.5) = 0.659

<u>Step 4:</u> Calculate gibbs free energy

∆G = ∆G˚ + RTlnQ = 2600 J/mole + (8.31 J/mole K)(298 K)(ln 0.659) = 2600 J/mole - 1032.729 J/mole

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Interpret ∆G:

∆G > 0 the reaction is nonspontaneous., or will be spontaneous in the reverse direction

∆G < 0 the reaction is spontaneous.

If ∆G  = 0 the reaction is essentially at equilibrium.

∆G = 1.567 kJ/mole

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3 0
4 years ago
How many grams of NaOH are produced from 2.1g of Na2O?<br> Na2O + H20 --&gt; 2NaOH
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Answer:

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Explanation:

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Then, 0.034mol of Na2O will produce (0.034 × 2) = 0.068mol of NaOH.

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mass of NaOH produced = 2.72g.

4 0
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