Question

Urea (NH2CONH2), an important nitrogen fertilizer, is produced industrially by the following reaction: 2NH3(g)+CO2(g)?NH2CONH2(aq)+H2O(l) Given that...

Urea (NH2CONH2), an important nitrogen fertilizer, is produced industrially by the following reaction:

2NH3(g)+CO2(g)?NH2CONH2(aq)+H2O(l)

Given that ?G? = ?13.6 kJ/mol, calculate ?G at 25?C for the following sets of conditions

A. 40 atm NH3, 40 atm CO2, 5.0 M NH2CONH2

B. 8.0×10?2 atm  NH3, 8.0×10?2 atm  CO2, 1.0 M  NH2CONH2

Homework Answers

Know the answer?
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for?
Ask your own homework help question
Similar Questions
Urea (NH2CONH2), an important nitrogen fertilizer, is produced industrially by the reaction 2NH3(g)+CO2(g)→NH2CONH2(aq)+H2O(l) Given that ΔG∘...
Urea (NH2CONH2), an important nitrogen fertilizer, is produced industrially by the reaction 2NH3(g)+CO2(g)→NH2CONH2(aq)+H2O(l) Given that ΔG∘ = -13.6 kJ, calculate ΔG at 25 ∘C for the following sets of conditions. 1. 40 atm NH3, 40 atm CO2, 4.0 M NH2CONH2 2. 0.10 atm NH3, 0.10 atm CO2, 1.0 M NH2CONH2
urea (CH4N2O mm=60.1 g/mol) is a common fertilizer than can be synthesized by the reaction of...
urea (CH4N2O mm=60.1 g/mol) is a common fertilizer than can be synthesized by the reaction of ammonia (NH3 mm=17.0 g/mol) with carbon dioxide (44.0 g/mol) according to the reaction below. a) 2NH3 (aq) +Co2 (aq)->CH4N2O (aq) +H2O (l)   in the synthesis of urea a chemist combines 130.4g of ammonia with 211.4 g of carbon dioxide and obtains 168.4 g of urea. b) theoretical yield of urea in grams c) percent yield for the reaction d) amount of excess reagent left...
Calculate ΔG for the reaction H2O (l) <=>H+ (aq) + OH- (aq) at 25C for the...
Calculate ΔG for the reaction H2O (l) <=>H+ (aq) + OH- (aq) at 25C for the following conditions in (kJ/mol)? (a) [H+] = 1.0 x10-3 M, [OH-] = 1.0 x 10-4 M (b) [H+] = 3.3 M, [OH-] = 4.8 x 10-4 M
part a The reaction of nitrogen and hydrogen to produce ammonia: N2(g) + 3H2(g) ⇌ 2NH3(g)...
part a The reaction of nitrogen and hydrogen to produce ammonia: N2(g) + 3H2(g) ⇌ 2NH3(g) has an equilibrium constant Kc= 1.2 at 375 °C. If the starting concentrations are [H2] = 0.76 M, [N2] = 0.60 M, and [NH3] = 0.48 M, at equilibrium which gases will have increased in concentration and which will have decreased in concentration? a. H2 b. N2 c. NH3 part b When solid sodium bicarbonate is heated the following decomposition reaction occurs: 2NaHCO3(s) ⇌...
Ammonium sulfate, an important fertilizer, can be prepared by the reaction of ammonia with sulfuric acid...
Ammonium sulfate, an important fertilizer, can be prepared by the reaction of ammonia with sulfuric acid according to the following balanced equation. 2NH3 (g) + H2SO4 ---> (NH4)4 SO4 (aq) calculate the volume of NH3 (g) in LITERS needed at 20 degrees Celcius and 25.0 atm to react with 100kg of H2SO4
delta S is positive for the reaction a) CaO(s)+CO2(g)-->CaCO3(s) b) H2O(l)--> H2O(s) c) N2(g)+ 3H2(g)--> 2NH3(g)...
delta S is positive for the reaction a) CaO(s)+CO2(g)-->CaCO3(s) b) H2O(l)--> H2O(s) c) N2(g)+ 3H2(g)--> 2NH3(g) d) 2SO3(g)--> 2SO2(g)+O2(g) e) Ag+(aq)+Cl-(aq)--> AgCl(s)
Consider the balanced equation for the following reaction: 3H2O(l) + Mg3N2(aq) → 3MgO(s) + 2NH3(g) If...
Consider the balanced equation for the following reaction: 3H2O(l) + Mg3N2(aq) → 3MgO(s) + 2NH3(g) If 57.7 grams of H2O reacts with 57.3 grams of Mg3N2, determine the limiting reagent in the reaction. A. Mg3N2 B. H2O C. NH3 D. MgO
Given the reaction 2HI(aq)+CaCO3(s)=CaI2(aq)+CO2(g)+H2O(l) What volume of CO2(g) can be produced from 255mL of 3.0M HI...
Given the reaction 2HI(aq)+CaCO3(s)=CaI2(aq)+CO2(g)+H2O(l) What volume of CO2(g) can be produced from 255mL of 3.0M HI and 75.2g of CaCO3 at STP?
Carbohydrates are metabolized according to: CH2O(aq)+O2(aq)=CO2(aq)+H2O(l) DeltaG= -509 KJ/mol How much energy is available per mole...
Carbohydrates are metabolized according to: CH2O(aq)+O2(aq)=CO2(aq)+H2O(l) DeltaG= -509 KJ/mol How much energy is available per mole of carbohydrate at typical blood levela of the chemicals? Assume 298 K [CH2O]= 5.0*10^-3 M [CO2]= 1.7*10^-3 M [O2]= 2.5*10^-4 M
Consider the following balanced reaction between hydrogen and nitrogen to form ammonia: 3H2(g) + N2(g)→2NH3(g) How...
Consider the following balanced reaction between hydrogen and nitrogen to form ammonia: 3H2(g) + N2(g)→2NH3(g) How many moles of NH3 can be produced from 24.0 mol of H2 and excess N2? Express the number of moles to three significant figures.