10 mL of 1 mM surfactant solution forms a monolayer covering `0.24 cm^(2)` on a polar substrate. If the polar head is approximated as a cube, what is its edge length?

10mL of 1mM surfactant solution forms a monolayer covering 0.24cm^(2) on a polar substrate. If the polar head is approximated as a cube, what is its edge length ?

10 ml of 1 millimolar surfactant solution forms a monolayer covering 0.24cm^(2) on a polar substrate. If the polar head is approximated as a cube. Consider the surfactant is adsorbed only on one face of the cube. What is the edge length of cube? (Answer should be in pm and assume Avogadro's number =6xx10^(23) ).

Molecules from 10mL of 1mM surfactant solution are adsorbed on 0.24cm^(2) area forming unimolecular layer. Assuming surfactant molecules to be cube in shape, determine the edge length of the cube.

A current of 3 ampere has to be passed through a solution of AgNO_(3) solution to coat a metal surface of 80 cm^(2) with 0.005 mm thick layer for a duration of approximately y^(3) second what is the value of y? Density of Ag is 10.5 g//cm^(3)

10mL of 2(M) NaOH solution is added to 200mL of 0.5 (M) of NaOH solution. What is the final concentration?

40 ml of 0.1 M CaCl_2 solution is mixed with 50 ml of 0.2 M AgNO_3 solution. Mole of AgCl formed in the reaction is

0.27 g of a long chain fatty acid was dissolved in 100 cm^ 3 of hexane. 10 mL of this solution was added dropwise to the surface of water in a round watch glass. Hexane evaporates and a monolayer is formed. The distance from edge to centre of the watch glass is 10 cm. The height of the monolayer is 10 ^( -x ) m. what is numerical value of x ? [Density of fatty acid = 0.9 g cm ^ ( -3) , pi = 3 ]

0.27 g of a long chain fatty acid was dissolved in 100cm^(3) of hexane. 10ml of this solution was added dropwise to the surface of water in a round watch glass . Hexane evaporates and a monolayeer is formed. The distance from edge to center of the watch glass is 10 cm . What is the height of the monolayers? ["Density of fatty acid "=0.9 g cm^(-3),pi=3]

A solution of palmitic acid (Molar mass = 256) in Benzene contain 5.12 g of acid per litre of solution. When this solution is dropped on a water surface, the Benzene evaporates and acid forms a monolayer film of solid type. If 500 cm^(2) are is to be covered by a monolayer, then find X, where X = (V)/(100) , when V is volume required of solution. The area covered by 1 molecule = 0.2 nm^(2) .

pH of a solution of 10 ml . 1 N sodium acetate and 50 ml 2N acetic acid (K_(a)=1.8xx10^(-5)) is approximately