Chemistry, asked by raiakash5646, 1 year ago

What weight of solute is present 783 ml of 0.35(M)KOH

Answers

Answered by supriya0703
4

M = n / V

0.35 = n × 1000/ 783

n = 0.274

so wt. of solute required = no. of moles × molar mass of solute

                                         = 15.344 gm

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