What Is The Ph Of A 1.4 M Solution Of Hclo4??

What is the pH of 1.8 m HClO4?

The value of Ho for 1.8 M HClO4 is -0.58, somewhat stronger than the value predicted from -log(1.8) = -0.26.

How do you find the pH of HClO4?

1 Answer

  1. We use the pH equation, which states that,
  2. pH=−log[H+]
  3. And so, the pH will be,
  4. pH=−log[0.075]
  5. ≈1.12.

What is the pH of a 3.0 M solution of HClO4?

pH is defined as the negative log of hydrogen or hydronium ion concentration. Thus, pH of 1.34 × 10−3 M HClO4 is 2.87.

What is the pH of a 2.8 M solution of HClO4?

Therefore, pH of 2.8 M HClO4 solution is -0.45 .

What is the pH of a 1.7 M solution of HClO4 pH?

The pH of a 1.7 M solution of HClO4 is 0.23.

What is the pH of a 0.0250 m HClO4 solution?

The pH is 1.60.

What is the pH of a 0.0045 M solution of HClO4?

2.49 | Chegg.com.

What is the Ka of HClO4?

KaAcid
NameFormula
LargePerchloric acidHClO4
3.2 * 109Hydroiodic acidHI
1.0 * 109Hydrobromic acidHBr

What is the pH of a .001 M Ca Oh 2?

So,the concentration of OH- ions in the solution is 0.1M.So pOH is 1 and hence pH is 13.

What is the pH of a 0.1 M solution of HCN?

pH of a 0.1M HCN solution is 5.2 .

Is HClO4 a strong acid?

The 7 common strong acids are: HCl, HBr, HI, HNO3, HClO3, HClO4 and H2SO4 (1st proton only). … This means the conj base of HCl, the Cl- anion, is an extremely weak base and in fact does not act as a base in water (gives a neutral solution).

What is the pH of perchloric acid?

The pH of the perchloric acid solution is 1.55. The pH of an acid can be calculated by taking the negative log of the hydrogen ion concentration in…

How many milliliters are in a 9.0 m h2so4 solution?

175 milliliters (mL) of a 9.0 M H2SO4 solution is needed to make 0.45 L of a 3.5 M solution.

What is the pH of HF?

pH of Common Acids and Bases

AcidName1 mM
HFhydrofluoric acid3.27
HFormateformic acid, CH2O2 (methanoic acid)3.47
HIhydroiodic acid3.01
HLactatelactic acid, C3H6O3 (milk acid)3.51

What is the pH of a NaOH solution?

NaOH is a strong base, so this will produce 0.1mol/L of OH ions in solution. This will produce a pH of 13.

What is the pH of a 0.050 M LiOH solution?

The answer is: e. 12.70 pOH = -log[OH-] = -log[LiOH] =…

What is the pOH of a 50.0 ml solution of 0.050 M HClO4?

1 Expert Answer

If pH is 1.3, pOH will be 12.7.

What is the pH of baoh2?

Therefore, the pH of a 0.10 M barium hydroxide solution is 13.3. ions. It is given that the concentration of NaOH solution is 0.10 M.

Is HClO4 a pH?

The pH of a 1.4 M solution of HClO{eq}_4 {/eq} is -0.15. Perchloric acid, or HClO{eq}^4 {/eq} is a strong acid.

What is the pH of a 0.02 M solution of KOH?

pH=14−(1.57)=12.4 .

What is the pH of a 0.10 M solution of KOH?

If concentration of KOH is 0.1 M, pH value may be 13. If concentation is 0.0001 M, pH value will be 10.

What is the pH of 0.0333 M hno3 is the solution neutral acidic or basic?

Hence 0.0333 M HNO3 is acidic.

What is the pH of hydrochloric acid solution?

1.5 to 3.5

Hydrochloric acid is an essential component of gastric acid, which has a normal pH of 1.5 to 3.5. A weak acid or base does not ionize completely in aqueous solution. Ionization of a weak acid (HA) is characterized by its dissociation constant (Ka).

What’s the pH of sulfuric acid?

pH of common acids like sulfuric, acetic and more

AcidNormalitypH
SulfuricN0.3
Sulfuric0.1 N1.2
Sulfuric0.01 N2.1
Sulfurous0.1 N1.5

How do you calculate pH from pKa?

pH is the sum of the pKa value and the log of the concentration of the conjugate base divided by the concentration of the weak acid.

How do you get pH from Ka?

What is the pKa value of hclo4?

Examples of Strong Acids

Perchloric acid (HClO4): pKa ≈ -8. Hydrochloric acid (HCl): pKa = -6.3.

What is the pH of a 0.014 M Ca OH 2 solution?

Question: what is the pH of a 0.014 M Ca(OH)2 solution? the answer is supposed to be 12.45 but i keep getting12.

What is the pH of a 0.005 M Ca OH 2 solution?

According to this statement, your pH would be 12.

What is the pOH of a 0.02 M Ca OH 2 solution?

….for calcium hydroxide we got [HO−]=0.04⋅mol⋅L−1 … …and so pOH=−log10(0.04)=−(−1.40)=1.40

What is the pH value of 0.02 m NaOH solution?

Its concentration here is high enough to ignore H3O+ contribution from water so the pH is just -log(0.02) = 1.7. pH + pOH = 14 so the pOH is 12.3.

What is the pH of 0.1 M ammonia?

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