55 Ammonia is not the only possible fertilizer. Others include urea, which can be produced by the reaction: C O 2 ( g ) + 2 N H 3 ( g ) → C O ( N H 2 ) 2 ( s ) + H 2 O ( g ) A scientist has 75 g of dry ice to provide the carbon dioxide. If 4.50 L of ammonia at 15 ∘ C and a pressure of 1.4 atm is added, which reactant is limiting? What mass of urea will form?
55 Ammonia is not the only possible fertilizer. Others include urea, which can be produced by the reaction: C O 2 ( g ) + 2 N H 3 ( g ) → C O ( N H 2 ) 2 ( s ) + H 2 O ( g ) A scientist has 75 g of dry ice to provide the carbon dioxide. If 4.50 L of ammonia at 15 ∘ C and a pressure of 1.4 atm is added, which reactant is limiting? What mass of urea will form?
55 Ammonia is not the only possible fertilizer. Others include urea, which can be produced by the reaction:
C
O
2
(
g
)
+
2
N
H
3
(
g
)
→
C
O
(
N
H
2
)
2
(
s
)
+
H
2
O
(
g
)
A scientist has 75 g of dry ice to provide the carbon dioxide. If 4.50 L of ammonia at
15
∘
C and a pressure of 1.4 atm is added, which reactant is limiting? What mass of urea will form?
A.
B.
b. Now consider the two bicyclic molecules A. and B. Note that A. is a dianion
and B. is a neutral molecule. One of these molecules is a highly reactive
compound first characterized in frozen noble gas matrices, that self-reacts
rapidly at temperatures above liquid nitrogen temperature. The other
compound was isolated at room temperature in the early 1960s, and is a
stable ligand used in organometallic chemistry. Which molecule is the more
stable molecule, and why?
Where are the chiral centers in this molecule? Also is this compound meso yes or no?
PLEASE HELP! URGENT!
Chapter 5 Solutions
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