Question

Lab 6: Chemical Formula of Magnesium Oxide A student took a crucible and lid from the...

Lab 6: Chemical Formula of Magnesium Oxide

A student took a crucible and lid from the drawer, added 0.257 grams of magnesium metal to it, and heated it until completely ashen. She found the contents had added 0.128 grams of mass.

What is the Mass percent for oxygen in the compound after heating?

Group of answer choices

66.8%

50%

33.2%

Homework Answers

Answer #1

I am hereby attaching your answer in image i hope it will help you please share your views in comment box and gives a thumbs up thank you

Know the answer?
Your Answer:

Post as a guest

Your Name:

What's your source?

Earn Coins

Coins can be redeemed for fabulous gifts.

Not the answer you're looking for?
Ask your own homework help question
Similar Questions
A student took a crucible and lid from the drawer, added 0.257 grams of magnesium metal...
A student took a crucible and lid from the drawer, added 0.257 grams of magnesium metal to it, and heated it until completely ashen. She found the contents had added 0.128 grams of mass. What is the Mass percent for oxygen in the compound after heating? 33.2% 50% 66.8% What is the ideal mass percent for oxygen in MgO? 40.7% 50% 60.3%
Mass of crucible, lid, and Mg = 42.185 g Mass of crucible and lid = 40.760...
Mass of crucible, lid, and Mg = 42.185 g Mass of crucible and lid = 40.760 g Mass of crucible, lid, and oxide of Mg First weighing = 43.115 g Second weighing = 43.169 g Third weighing = 43.171 g Find... 1. Mass of Mg 2. Mass of Oxide of Mg 3. Mass of oxygen in oxide of Mg Calculate the percent by mass and the emperical formula for magnesium oxide. If the reaction of oxygen and Mg were calculated...
Lab 6: Chemical Formula of Magnesium Oxide Would the following experimental errors give a mass percent...
Lab 6: Chemical Formula of Magnesium Oxide Would the following experimental errors give a mass percent of magnesium too high or too low? incomplete combustion of magnesium ["too low", "too high"]       not heating the crucible to dryness ["too high", "too low"]       spilled some ashes ["too high", "too low"]      
An empirical formula is the lowest whole number ratio of the elements in a compound and...
An empirical formula is the lowest whole number ratio of the elements in a compound and provides information about the composition of a compound. For instance, the compound sodium sulfate decahydrate has the chemical formula Na2SO4•10H2O. This formula conveys the information that there are ten water molecules per two sodium ions per one sulfate ion. You might wonder: “How were these ratios determined?” To answer the question it is necessary to recognize that the ratio of atoms (or ions) is...
Empirical Formula of Epsom Salt Introduction Hydrates are crystalline solids that contain a fixed number of...
Empirical Formula of Epsom Salt Introduction Hydrates are crystalline solids that contain a fixed number of water molecules as an integral part of their crystalline structure. The number of water molecules bound per metal ion is often characteristic of that particular metal ion. One of the common hydrates is hydrated magnesium sulfate (Epsom salt). Epsom salt is used to reduce inflammation when applied externally. Epsom salts formula is sometimes written as MgSO4.xH2O. In this experiment, you will be trying to...
Procedure Reaction 1: Dissolving the Copper 1. Obtain a clean, dry, glass centrifuge tube. 2. Place...
Procedure Reaction 1: Dissolving the Copper 1. Obtain a clean, dry, glass centrifuge tube. 2. Place a piece of copper wire in a weighing paper, determine the mass of the wire and place it in the centrifuge tube. The copper wire should weigh less than 0.0200 grams. 3. In a fume hood, add seven drops of concentrated nitric acid to the reaction tube so that the copper metal dissolves completely. Describe your observations in the lab report. (Caution, Concentrated nitric...