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Suppose an equilibrium mixture consists of 0.74 atm N2O4 and 2.6 atm NO2, and the volume of the container is halved at c...

Suppose an equilibrium mixture consists of 0.74 atm N2O4 and 2.6 atm NO2, and the volume of the container is halved at constant temperature. Calculate the new equilibrium pressure (atm) of NO2.

NaCl(s)   ⇌   Na+(aq) + Cl-(aq)     ΔHo = 3.9 kJ/mol

At 298 K, a saturated solution of NaCl has [Na+] = 7.0 M and [Cl-] = 5.4 M. If the temperature of the mixture is increased to 326 K, what will be the equilibrium concentration (M) of Na+? (Assume no ion pairing.) Enter your answer to 2 decimal places.

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Date/ Page No. mera slonChe initial Ore Bare x 2.6 Irtial (S. 2-2メ) 의 gt35135 ls.2-24) 4.25ได้ lase DoST Questions ne by me

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