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Titration curve of 10 mol L acetic acid with 10 mol L ammonia

Titration curve of 194 iM of Calcofluor with sialylated ai- acid glycoprotein. Saturation occurs for 12.7 iM of protein , thus indicative of a stoichiometry of one calcofluor for one sialic acid residue. 300 nm and A.em - 440 nm. The fluorescence intensities are corrected for the dilution and for the inner filter effect.

Titration curve of 3,2,3-tet. The line is calculated using the four protonation constants found by using the Solver.

Titration curve of 3-lactoglobulin at ionic strength 0.15 and 25 C. The alkaline branch is time-dependent cf.

Titration curve of 7.5 gM of ai-acid glycoprotein with hemin. tcx, 280 nm and 332 nm. Fluorescence intensity decrease was corrected for the dilution and for absorption at 280 and 332 nm. At the highest concentration of hemin added , the corrected intensity for dilution was 1.15 times higher than that recorded before correction. Also, at the same concentration of hemin, the intensity after correction for the inner filter effect was twice that obtained before correction.

Titration curve of 7.5 uIVl of apomyoglobin with hemin . After each addition of hemin, the optical density at 408 nm was recorded. The inflection point occurs at 6.5 pM of hemin. Thus, the stoichiometry of the complex is 1

Titration curve of a 10 mol L ferrous ion solution with a 1 6 mol L potassium dichromate solution in sulfuric acid solution

Titration curve of a sodium chloride solution by

Titration curve of a solution containing hydrochloric acid and glycine . Ordinates are pH, and abscissae are milliliters of N 10 NaOH. The curve marked a is the one Michaelis would have obtained if only hydrochloric acid were present. The curve marked is that of glycine as a base. From Michaelis L. Die Meth-ode der elektrometrischen Titration und ihre Anwendung auf den Magensaft. Bio-chem 7 79

Titration curve of a strong acid with a strong base . The indicator phenolphthalein can be used to determine the equivalence point of either titration. Methyl red can be used for the strong acid-strong base titration but cannot be used for the weak acid-strong base titration because its color change does not coincide with the steepest part of the curve.

Titration curve of a strong acid-strong base titration.

Titration curve of a strong acid-strong base titration. A 0.100 MNaOH solution, the titrant, is added from a burette to 25.0 mL of a 0.100 M HCl solution in an Erlenmeyer flask.

Titration curve of a strong acid-weak base titration. A 0.100 AT HCl solution is added from a burette to 25.0 mL of a 0.100 A NH3 solution in an Erlenmeyer flask. Asa result of salt hydrolysis, the pH at the equivalence point is lower than 7.

Titration curve of a strong acid-weak base titration. A 0.100 M HCl solution is added from a buret to 25.0 mL of a 0.100 A NH3 solution in an Erlenmeyer flask. As a result of salt hydrolysis, the pH at the equivalence point is lower than 7.

Titration curve of a weak acid-strong base titration. A 0.100 A NaOH solution is added from a burette to 25.0 mL of a 0.100 AT CHjCOOH solution in an Erlenmeyer flask. Because of the hydrolysis of the salt formed, the pH at the equivalence point is greater than 7.

Titration curve of a weak acid—strong base titration.

Titration Curve of Acetic Acid.

Titration curve of acid-base titration

Titration curve of aedach-3HBr THE SPREADSHEET

Titration curve of Ai57SiiA32 and dependence of the hydrodynamic radii on pH

Titration curve of alanine. A solution of alanine . At a pH below its p value, an amino acid will carry a net positive charge but it will carry a net negative charge at pH values greater than its pZ.

Titration curve of aspartic acid, pKv pK2, and pX3 are pk values of the a-carboxyl, -y-carboxyl and a-amino groups, respectively. The fully protonated form is present at a very low pH is present at pH 3, which is also the pi.

Titration curve of aspartic acid. For clarity, the vertical axis is not drawn to scale.

Titration curve of Calcofluor . 300 nm.

Titration curve of citric acid.



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