A 21.5 g sample of nickel was treated with excess silver nitrate solution to produce silver metal and nickel(II) nitrate. The reaction was stopped before all the nickel reacted, and 36.5 g of solid metal (nickel and silver) is present. Calculate the mass of solid silver metal present.
A 21.5 g sample of nickel was treated with excess silver nitrate solution to produce silver metal and nickel(II) nitrate...
A 2.018-g sample of a metal bromide. MBr2, is dissolved in water and treated with excess aqueous silver nitrate. The silver bromide (AgBr) that formed weighed 2.721 g. Calculate the atomic mass of Mand identify M. (molar mass of AgBr - 187.80 g/mol)
A 1.59-g sample of a metal chloride, MCl_2, is dissolved in water and treated with excess aqueous silver nitrate. The silver chloride that formed weighed 3.60 g. Calculate the molar mass of M. 70.9 g/mol 28 g/mol 55.9 g/mol 63 g/mol 72.4 g/mol
Silver nitrate is reacted with excess copper (II) chloride, producing solid silver chloride precipitate. If 25.5g of silver nitrate is reacted and there is a 77.0% yield of silver chloride, how much silver was initially present? AgNO3 (s) + CuCl2 (aq) → AgCl (s) + Cu(NO3)2 (aq)
A 10.00 mL sample of an unknown aqueous nickel(II) solution (density = 1.00 to produce 0.0532 g of Ni(DMG)2 (Molar Mass=288.9155g/mol) precipitate. aqueous nickel(II) solution (density = 1.00 g/mL) was treated and found of nickel in the unknown solution. olar Mass - 288.9755e/molnrecinitate. Calculate the mass percentage
A solution of silver nitrate is electrolyzed and solid silver is deposited on an metal spoon. If a current of 2.0 A for 1 hour, then what mass of silver is deposited on the metal spoon? The molar mass of silver is 107.868 g/mol.
A few granules of manganese metal are placed in a solution of nickel(II) nitrate. Which of The following does not occur? the manganese is oxidized to manganese ions nickel ion is reduced to nickel metal electrons are transferred from manganese metal to nickel ion O the amount of nitrate ion in the solution changes O all of these occur
The double replacement reaction of sodium chloride and silver nitrate will produce silver chloride and sodium nitrate. In a reaction, 1802 g of sodium chloride and 2139 g of silver nitrate are reacted and 1500. g of solid silver chloride are produced. What is the percent yield of the reaction?
A 2.00 g sample of silver nitrate is dissolved in water and then reacted with 0.250 g of copper metal, according to the reaction below. Answer the questions about this process. 2 AgNO3 (aq) + Cu (s) --> Cu(NO3)2 (aq) + 2 Ag (s) What mass of the excess reactant remains after the reaction goes to completion? (I want to see if you guys get this correct because I have no idea how to approach because it doesn't tell us...
Q7) A 1.23 g sample, which contains gold (Au), silver (Ag) and metal oxides, is treated with concentrated nitric acid (HNO;), which dissolves all the metals and metal oxides with the exception of the gold. The mass of yellow metal remaining is 7.4 x 10 g. The solution is then treated with aqueous sodium chloride (NaCI), which precipitates silver chloride (AgCI) and nothing else. A total of 0.196 g of AgCl is obtained. What is the percent gold and silver...
When a piece of magnesium metal is placed in a solution of nickel (II) nitrate, metallic nickel can be seen forming on the surface of the magnesium. 1. Write a balanced chemical equation for this redox reaction. A. Molecular equation B. Complete ionic equation C. Net ionic equation 2. Assign oxidation numbers for each element in the net ionic equation