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3 CH3NH2 + 11 HNO3 ---> 3 CO2 + 13
What ratio [CH3NH3+]/[CH3NH2] is needed to prepare a buffer solution with a pH of 8.60 from methylamine, CH3NH2, and
1 answer
asked by
Kasey
2,588 views
A 119.2mL sample of 0.105M methylamine (CH3NH2, Kb=3.7*10^-4) is titrated with 0.255M HNO3. Calculate the after the addition of
1 answer
asked by
Melissa
3,026 views
Solve an equilibrium problem (using an ICE table) to calculate the pH.
a solution that is 0.205 M in CH3NH2 and 0.110 M in
2 answers
asked by
Kyle
8,897 views
How many mL of a 0.5M Ca(OH)2 solution are needed to neutralize 38 mL of a 2M HNO3 solution?
ANSWER IS: x = multiply / = divide
1 answer
asked by
ChemistryAngel
778 views
3 CH3NH2 + 11 HNO3 ---> 3 CO2 + 13 H2O + 14 NO
RATE OF DISAPPEARANCE OF NITRIC ACID IS 20M/min. what is the rate of reaction? at
0 answers
asked by
candace
584 views
Suppose that 50.0 mL of 0.25 M CH3NH2(aq) is titrated with 0.35 M HCl(aq).
(a) What is the initial pH of the 0.25 M CH3NH2(aq)?
1 answer
asked by
Dana
1,509 views
Find the pH of a buffer that consists of 0.82 M methylamin (CH3NH2) and 0.71 M CH3NH3Cl (pKb of methylamine (CH3NH2) = 3.35.)
I
2 answers
asked by
Edward
1,985 views
At 298k the base dissociating constant Kb of CH3NH2 is 4.5×10mol/dm
Write an expression for the kb of CH3NH2
1 answer
asked by
Esther
269 views
Determine pH of each solution:
b) 0.20 M CH3NH3I I did.... CH3NH3^+ +H2O -> CH3NH2 + H3O^+ 0.20 ---------------0--------------0
2 answers
asked by
ALISON
7,565 views
What will the pH be if 15 mL of 0.1 M HCl are added to the buffer obtained by mixing 70 mL of 0.5 M CH3NH2 and 30 mL of 1.0 M
4 answers
asked by
Maria
3,688 views