Among the given conditions, the condition which represents a basic solution should be identified. pOH = 12.53 pH = 3.64 pOH<[H + ] [OH − ] > 1.0 × 10 − 7 M . Concept Introduction: Water is an amphoteric in nature implies it can act as an acid as well as base. Ionization of water is given as: H 2 O ( l ) + H 2 O ( l ) ⇀ ↽ H + ( a q ) + OH − ( a q ) Here, one water molecule is act as an acid by accepting proton and another molecule of water act as a base by donating proton. At 25 ° C , the actual concentrations of the products are: [H + ][OH − ]=1 × 10 − 14 To express the small number, p scale is used, which implies to take the log of a number. Since, the concentration of [H + ] in aqueous solution is small, by using the p scale in the form of pH scale, it is better way to represent acidity of solution. Thus, pH = -log [H + ] Similarly, the relation between pOH and [OH − ] is given by: pOH=-log [OH − ] The solution is basic when its pH is equal to greater than 7.
Among the given conditions, the condition which represents a basic solution should be identified. pOH = 12.53 pH = 3.64 pOH<[H + ] [OH − ] > 1.0 × 10 − 7 M . Concept Introduction: Water is an amphoteric in nature implies it can act as an acid as well as base. Ionization of water is given as: H 2 O ( l ) + H 2 O ( l ) ⇀ ↽ H + ( a q ) + OH − ( a q ) Here, one water molecule is act as an acid by accepting proton and another molecule of water act as a base by donating proton. At 25 ° C , the actual concentrations of the products are: [H + ][OH − ]=1 × 10 − 14 To express the small number, p scale is used, which implies to take the log of a number. Since, the concentration of [H + ] in aqueous solution is small, by using the p scale in the form of pH scale, it is better way to represent acidity of solution. Thus, pH = -log [H + ] Similarly, the relation between pOH and [OH − ] is given by: pOH=-log [OH − ] The solution is basic when its pH is equal to greater than 7.
Solution Summary: The author explains that water is an amphoteric in nature, which implies it can act as an acid as well as base.
Among the given conditions, the condition which represents a basic solution should be identified.
pOH = 12.53
pH=3.64
pOH<[H+]
[OH−]>1.0×10−7 M.
Concept Introduction:
Water is an amphoteric in nature implies it can act as an acid as well as base.
Ionization of water is given as:
H2O(l)+H2O(l)⇀↽H+(aq)+OH−(aq)
Here, one water molecule is act as an acid by accepting proton and another molecule of water act as a base by donating proton.
At 25°C, the actual concentrations of the products are:
[H+][OH−]=1×10−14
To express the small number, p scale is used, which implies to take the log of a number. Since, the concentration of [H+] in aqueous solution is small, by using the p scale in the form of pH scale, it is better way to represent acidity of solution.
Thus, pH = -log [H+]
Similarly, the relation between pOH and [OH−] is given by:
pOH=-log [OH−]
The solution is basic when its pH is equal to greater than 7.
Can you please help mne with this problem. Im a visual person, so can you redraw it, potentislly color code and then as well explain it. I know im given CO2 use that to explain to me, as well as maybe give me a second example just to clarify even more with drawings (visuals) and explanations.
Part 1. Aqueous 0.010M AgNO 3 is slowly added to a 50-ml solution containing both carbonate [co32-] = 0.105 M
and sulfate [soy] = 0.164 M anions. Given the ksp of Ag2CO3 and Ag₂ soy below. Answer the ff:
Ag₂ CO3 = 2 Ag+ caq) + co} (aq)
ksp = 8.10 × 10-12
Ag₂SO4 = 2Ag+(aq) + soy² (aq) ksp = 1.20 × 10-5
a) which salt will precipitate first?
(b)
What % of the first anion precipitated will remain in the solution.
by the time the second anion starts to precipitate?
(c) What is the effect of low pH (more acidic) condition on the separate of the carbonate and
sulfate anions via silver precipitation? What is the effect of high pH (more basic)? Provide appropriate
explanation per answer
Part 4. Butanoic acid (ka= 1.52× 10-5) has a partition coefficient of 3.0 (favors benzene) when distributed bet.
water and benzene. What is the formal concentration of butanoic acid in each phase when
0.10M aqueous butanoic acid is extracted w❘ 25 mL of benzene
100 mL of
a) at pit 5.00
b) at pH 9.00
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