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If BaCO3 is placed in
How many grams of BaCO3 will dissolve in 3.0 L of water containing a Ba+2 concentration of 0.5 M (Ksp= 5.1E-9)
My work: BaCO3 <->
2 answers
asked by
Kelly
699 views
calculate the molar solubility of BaCO3 in a 0.10M solution of NaCo3 (aq). (ksp(BaCO3)=8.1x10^-9)
1 answer
asked by
Kia
2,616 views
If BaCO3 is placed in an evacuated flask, what partial pressure of CO2 will be present when the reaction reaches equilibrium?
298
4 answers
asked by
Ally
2,840 views
the solubility of BaCO3(s) in water is 4.0X10^-5 M. Calculate the value of Ksp for BaCO3
can someone please walk me through this?
5 answers
asked by
Ashely
1,005 views
Find DHo for BaCO3(s) --> BaO(s) + CO2(g) given
2 Ba(s) + O2(g) --> 2 BaO(s) DHo = -1107.0 kJ Ba(s) + CO2(g) + 1/2 O2(g) -->
4 answers
asked by
harsha
2,941 views
How many mL of 0.416 M of HCl are needed to dissolve 8.68 g of BaCO3?
2HCl(aq)+BaCO3(s)=BaCl2(aq)+H2O(l)+CO2(g)
1 answer
asked by
christa
801 views
the concentration of Ag+ in a saturated solution of Ag2Cro4 is 1.6x10^-4 M. what is the Ksp value for Ag2Cro4?
the solubility of
1 answer
asked by
Anonymous
1,477 views
Data:
2Ba(s) + O2(g) ¡æ 2BaO(s) ∆H¡Æ = -1107.0 KJ Ba(s) + CO2(g) + ¨ö O2(g) ¡æ BaCO3(s) ∆H¡Æ = -822.5 KJ Given the
3 answers
asked by
lavonne
1,680 views
Consider the following reaction occurring at 298K
BaCO3(s)-> BaO(s) + CO2 (g) show that the reaction is not spontaneous under
1 answer
asked by
Trista Nigh
4,369 views
Consider the following reaction occurring at 298K
BaCO3(s)-> BaO(s) + CO2 (g) show that the reaction is not spontaneous under
1 answer
asked by
Trista Nigh
1,446 views