In an experiment, 6.67 g of AlCl(3) was ...

In an experiment, `6.67 g` of `AlCl_(3)` was produced and `0.654 g` Al remainded unreacted. How many `g` atoms of `Al` and `Cl_(2)` were taken originally `(Al = 27, Cl = 35.5)`?

Similar Questions

Explore conceptually related problems

In an experiment, 6.67g" of "AlCl_(3) was produced and 0.54 g Al remained unreacted. How many g atoms of Al and Cl_(2) were taken orginally (Al= 27, Cl = 35.5)?

In an experiment, 6.67 g of AlCl_(3) was produced and 0.54g Al remained unreacted. How many g atoms of Al and Cl_(2) were taken originally?

In an experiment, 6.67 g of AlCl_(3) was produced and 0.54g Al remained unreacted. How many moles of Al and Cl_(2) were taken originally?

In Al_2Cl_6 each Al atoms is linked to how many Cl atoms ?

The number of atoms of 0.03 g of aluminium is nearly (Al = 27)

0.9 g Al reacts with dil. HCl to give H_(2) . The volume of H_(2) evolved at STP is (Atomic weight of Al = 27)

In an experiment, `6.67 g` of `AlCl_(3)` was produced and `0.654 g` Al remainded unreacted. How many `g` atoms of `Al` and `Cl_(2)` were taken originally `(Al = 27, Cl = 35.5)`?

Similar Questions

Recommended Questions