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 gmol $^{- 1}$

Question

Calculate the number of electrons in a small- electrically neutral silver pin that has a mass of 10-0g- Silver has 47 electrons per atom- and its molar mass is 107-87g -mol-1-

Toppr Admin · Accepted Answer

No- of atoms in -10g- of silver-n-cfrac - 6-023-times - 10 - 23 -times 10 - 107-87 - -5-58-times - 10 - 22 -quad -No- of electrons -47n-2-62-times - 10 - 24 -

Calculate the number of electrons in a small, electrically neutral silver pin that has a mass of $$10.0g$$. Silver has $$47$$ electrons per atom, and its molar mass is $$107.87g$$ $${mol}^{-1}$$.

No. of atoms in $$10g$$ of silver,

$$n=\cfrac { 6.023\times { 10 }^{ 23 }\times 10 }{ 107.87 } =5.58\times { 10 }^{ 22 }\quad $$

No. of electrons $$=47n=2.62\times { 10 }^{ 24 }$$

Calculate the number of electrons in a small, electrically neutral silver pin that has a mass of $$10.0g$$. Silver has $$47$$ electrons per atom, and its molar mass is $$107.87g$$ $${mol}^{-1}$$.

No. of atoms in $$10g$$ of silver,$$n=\cfrac { 6.023\times { 10 }^{ 23 }\times 10 }{ 107.87 } =5.58\times { 10 }^{ 22 }\quad $$No. of electrons $$=47n=2.62\times { 10 }^{ 24 }$$

No. of atoms in $$10g$$ of silver,

$$n=\cfrac { 6.023\times { 10 }^{ 23 }\times 10 }{ 107.87 } =5.58\times { 10 }^{ 22 }\quad $$

No. of electrons $$=47n=2.62\times { 10 }^{ 24 }$$