The amount of calcium in the given sample of blood has to be calculated using the principles of titrimetry. Concept Introduction: Titration is a widely used method for the determination of unknown concentration of an analyte. In order to determine the unknown concentration, the analyte of known volume is titrated with the titrant of known volume and concentration. The unknown concentration of the analyte is found by the following equation. V 1 N 1 =V 2 N 2 Where, V 1 is the volume of the analyte N 1 is the unknown concentration of the analyte V 2 is the volume of the titrant N 2 is the concentration of the titrant This formula is applicable when one mole of analyte is reacting with one mole of the titrant. After calculating the unknown concentration of the analyte, its weight is gram is calculated. Mole is the amount of substance having Avogadro number of particles. The number of moles of a particular substance is calculated by multiplying the volume of the substance and its concentration.
The amount of calcium in the given sample of blood has to be calculated using the principles of titrimetry. Concept Introduction: Titration is a widely used method for the determination of unknown concentration of an analyte. In order to determine the unknown concentration, the analyte of known volume is titrated with the titrant of known volume and concentration. The unknown concentration of the analyte is found by the following equation. V 1 N 1 =V 2 N 2 Where, V 1 is the volume of the analyte N 1 is the unknown concentration of the analyte V 2 is the volume of the titrant N 2 is the concentration of the titrant This formula is applicable when one mole of analyte is reacting with one mole of the titrant. After calculating the unknown concentration of the analyte, its weight is gram is calculated. Mole is the amount of substance having Avogadro number of particles. The number of moles of a particular substance is calculated by multiplying the volume of the substance and its concentration.
Solution Summary: The author explains that titrimetry is a widely used method for the determination of unknown concentration of an analyte.
Definition Definition Number of atoms/molecules present in one mole of any substance. Avogadro's number is a constant. Its value is 6.02214076 × 10 23 per mole.
Chapter 18, Problem 18.74QP
Interpretation Introduction
Interpretation:
The amount of calcium in the given sample of blood has to be calculated using the principles of titrimetry.
Concept Introduction:
Titration is a widely used method for the determination of unknown concentration of an analyte. In order to determine the unknown concentration, the analyte of known volume is titrated with the titrant of known volume and concentration. The unknown concentration of the analyte is found by the following equation.
V1N1=V2N2
Where,
V1 is the volume of the analyte
N1 is the unknown concentration of the analyte
V2 is the volume of the titrant
N2 is the concentration of the titrant
This formula is applicable when one mole of analyte is reacting with one mole of the titrant.
After calculating the unknown concentration of the analyte, its weight is gram is calculated.
Mole is the amount of substance having Avogadro number of particles. The number of moles of a particular substance is calculated by multiplying the volume of the substance and its concentration.
Is nucleophilic acyl substitution an SN1 or SN2 reaction?
Draw product A, indicating what type of reaction occurs.
NH2
F3C
CF3
NH
OMe
NH2-NH2, ACOH
A
Photochemical smog is formed in part by the action of light on nitrogen dioxide. The wavelength of radiation absorbed by NO2 in this reaction is 197 nm.(a) Draw the Lewis structure of NO2 and sketch its π molecular orbitals.(b) When 1.56 mJ of energy is absorbed by 3.0 L of air at 20 °C and 0.91 atm, all the NO2 molecules in this sample dissociate by the reaction shown. Assume that each absorbed photon leads to the dissociation (into NO and O) of one NO2 molecule. What is the proportion, in parts per million, of NO2 molecules in this sample? Assume that the sample behaves ideally.
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