Preparation of solution.pptx
AmirBala4
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Jan 22, 2023
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About This Presentation
Clinical Chemistry
MLS
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Preparation of Solutions By Amir Mohammed Albushra MBBS, MSc in Clinical Chemistry .
Solution A solution is a homogeneous mixture composed of two or more substances. In such a mixture, a solute is dissolved in another substance, known as a solvent
Solute: The substance which dissolves in a solution Solvent The substance which dissolves another to form a solution Saturation Saturation is the point at which a solution of a substance can dissolve no more of that substance and additional amounts of it will appear as a precipitate.
Types of solutions • Percentage solution • Molar solution • Normal solution
A)Weight/volume solution % (w/v) Weight-volume percentage, (sometimes referred to as mass-volume percentage and often abbreviated as % m/v or % w/v) describes the mass of the solute in g per 100 ml of the resulting solution. Example: Preparation of 10% (W/V) NaCl solution Calculations: Wt of solute (g )= So 10% (W/V) NaCl solution has 10 grams of sodium chloride dissolved in 100 ml of solution.
Procedure: 1) Weigh 10g of sodium chloride. 2) Pour it into a graduated cylinder containing about 80ml of water. 3) Once the sodium chloride has dissolved completely add water to bring the volume up to the final 100 ml . Note Do not simply measure 100ml of water and add 10g of sodium chloride. This will introduce error because adding the solid will change the final volume of the solution and throw off the final percentage.
B) Volume /volume solution % (v/v) Volume-volume percentage (abbreviated as % v/v) describes the volume of the solute in ml per 100 ml of the resulting solution. Example: • Preparation of 30% (V/V) sulfuric acid Calculations: V1 of solute ( ml ) = Volume of Solution (mL)= volume of Solute (mL) + volume of Solvent (mL) So 30% (V/V) sulfuric acid has 30 ml of sulfuric acid dissolved in 70 ml of water.
Procedure : • Calculate the required volume of solute • Subtract the volume of solute from the total solution volume • Dissolve 30 ml sulfuric acid in a 70 ml of water to bring final volume of solution up to 100ml.
Percentage solution C ) Weight/ Weight solution % (w/w) This type of solution is rarely if ever prepared in the laboratory since it is easier to measure volumes of liquids rather than weigh the liquid on an analytical balance. This type of percent solution is usually expressed as (w/w), where "w" denotes weight (usually grams) in both cases. Example: An example of a correct designation for this type of solution is as follows: 10 g/100 g (w/w), which indicates that there are 10 grams of solute for every 100 grams total
Molar solution Molarity Number of moles of a given substance dissolved per liter of solution . Molar solution It is a solution that contains 1 mole of solute in each liter of solution . Units of molarity mol /L .
1 mol/l = 1000 mmol/l = 1000000 μmol/l = 1000000000 nmol/l
Wt of solute ( g) = M(mole/L) X M.wt (g/mole) X V (L ) ▪ M : the required molarity ▪ M.wt : molecular weight of the solute ▪ V : total volume in liters
Example: • Preparation of 1M NaCl solution in 1000 ml Calculations: Dissolve 58.5 g of NaCl in a 1000 ml (1 liter) of water to prepare 1M NaCl
Normal solution Equivalent weight An equivalent weight is equal to the molecular weight divided by the valence. Normal & Normality A normal is one gram equivalent of a solute per liter of solution. Normal solutions Is a solution that contains 1 gram equivalent weight ( gEW ) per liter solution.
Units of Normality The units for normal concentration are Eq /L.
Eq.wt for Acids and Bases Eq.wt = Examples : • HCL the MW= 36.5 the EW = 36.5 • H₂SO4 the MW = 98 the EW = 49 • H3PO4 the MW = 98 the EW = 32.7 • NaOH the MW = 40 the EW = 40 • Ca (OH)₂ the MW = 74 the EW = 37
Eq.wt for salts Eq.wt = or Examples • KCL the MW= 74.55 the EW = (74.55/1 X 1) = 74.55 • CaCl ₂ the MW= 110.98 the EW (110.98/1 X 2) or (110.98/2 X 1) = 55.49 • Na₂CO3 the MW= 105.98 the EW = (105.98/1 X 2) or (105.98/2 X 1) = 52.99
Preparation of Normal solution ▪N: the required normality • Eq.wt : equivalent weight of the solute ▪V: total volume in liters. Wt of solute (g )= N ( Eq /l) X Eq.wt XV (L)
Examples: • Preparation of 1N NaOH solution • Preparation of 1N Ca (OH)₂ solution • Preparation of 1N KCL solution Procedure • Dissolve 40 g of NaOH in a 1000 ml (1 liter) of water to prepare 1N NaOH solution . • Dissolve 37 g of Ca (OH)2 in a 1000 ml (1 liter) of water to prepare 1N Ca (OH )₂ solution . Dissolve 74.55 g of KCI in a 1000 ml (1 liter) of water to prepare 1N KCI solution .
Dilution It is used when we need to make a specific volume of known concentration from stock solutions. To do this we use the following formula: V°= V° : the volume of stock we start with . O: Original concentration of stock solution. V: Required volume needed. R: the required concentration( new concentration. ( V= V °+ volume of diluent).
Example Suppose we have a stock solution with concentration of 100 mg/ dL and we want to make 200 ml of solution having 25 mg/ dL . V°= V °= = 50ml from stock V= V°+ volume of diluent 200ml = 50ml + volume of diluent volume of diluent= 200 ml ‒50 ml = 150ml So , we would take 50 ml stock solution and dilute it with 150 ml of solvent to get the 200 ml of 25 mg/ ml solution needed
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