In June 2024
Answer to Question #317861 in Physical Chemistry for perfect
Assume that mitochondria contain 0.47 Molar KCL and 0.015 Molar NaCl. Calculate the grams per liter, of a carbohydrate similar to glucose with a molecular weight 280 amu, that will have the same osmolarity as the mitochondria..
C(KCl) = 0.47 M;
C(NaCl) = 0.015 M;
O = i * C;
KCl = K+ + Cl-;
NaCl = Na+ + Cl-;
i(KCl) = i(NaCl) = 2;
O(KCl) = 2 * 0.47 = 0.94 osmol/L;
O(NaCl) = 2 * 0.015 = 0.03 osmol/L;
O(mitochondria) = O(KCl) + O(NaCl) = 0.94 + 0.03 = 0.97 osmol/L;
The simple formula of carbohydrate = Cx(H2O)y;
M(Cx(H2O)y) = 280 g/mol;
i(Cx(H2O)y) = 1;
Therefore,
C(Cx(H2O)y) = O(Cx(H2O)y)/i(Cx(H2O)y) = 0.97 mol/L;
C(Cx(H2O)y), g/L = C(Cx(H2O)y), mol/L * M(Cx(H2O)y) = 0.97 * 280 = 271.6 g/L.
Answer: 271.6 g/L.
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