Calculate the number of electrons in a small, electrically neutral silver pin that has a mass of 10.0 g. silver has 47 electrons per atom, and its molar mass is 107.87 g/mol. (b) imagine adding electrons to the pin until the negative charge has the very large value 1.00 mc. how many electrons are added for every 109 electrons already present?

Question

Physics

Roland Barrera

20 May, 09:31

Calculate the number of electrons in a small, electrically neutral silver pin that has a mass of 10.0 g. silver has 47 electrons per atom, and its molar mass is 107.87 g/mol. (b) imagine adding electrons to the pin until the negative charge has the very large value 1.00 mc. how many electrons are added for every 109 electrons already present?

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Laddie · Answer 1

part A

moles of silver=10.0g/107.8g/mol=0.093moles

calculate number silver atom using the Avogadro law

=0.093 x 6.023 x 10^23 = 5.58 x 10 ^22atoms

number of electron is therefore number of atom x atomic number

that is 5.58 x 10^22 x 47=2.62 x 10^24 electrons

part B

we well know electron charge is 1.60 x 10^-19c

convert 1.00mc to coulombs = 1/1000=1.0 x 10^-3c

Number of electron in 1.0 x 10^-3 is therefore

{ (1.0 x 10^-3 / 1.60 x10^-19) } = 6.25 x 10^15

number of (10^9) electrons { (2.62 x10^24 / 10^9) }=2.62 x 10^15

number of electron added per 10^9 is therefore = { (6.25 x 10^25 / 2.62 x10^15) } = 2.3per (10^9)