/*! This file is auto-generated */ .wp-block-button__link{color:#fff;background-color:#32373c;border-radius:9999px;box-shadow:none;text-decoration:none;padding:calc(.667em + 2px) calc(1.333em + 2px);font-size:1.125em}.wp-block-file__button{background:#32373c;color:#fff;text-decoration:none} Q10TY If the mass of isolated Fe2O3 w... [FREE SOLUTION] | 91Ó°ÊÓ

91Ó°ÊÓ

If the mass of isolated Fe2O3were 0.300 g, what would be the average mass of iron per tablet?

Short Answer

Expert verified

The average mass of iron per tablet will be 17.5 mg

Step by step solution

01

Define average mass

An average atomic mass, also known as an atomic weight, is the weighted average mass of the atoms in a naturally occurring sample of an element.

02

Determine the average mass of iron  

Evaluate the number of moles of isolated Fe2O2corresponding to 0.300 g of Fe2O2.

The number of moles of aferric oxide is calculated as:

Fe2O2=0.300g159.69g/mol=0.0019mol

Each mol of Fe2O2has two mol of iron and so, 0.019mol of Fe2O3has 2×0.0019=0.0038mol iron.

The mass of the iron in iron (i.e., 0.300g of Fe2O3) is:

0.0038molFe=massofFeatomicmassofFemassofFe=0.0038mol×55.845gFe=0.21gFe

Therefore, the average mass of the iron per iron tablet in each of the twelve tablets is:

0.21g/12=0.0175g=17.5mg

Unlock Step-by-Step Solutions & Ace Your Exams!

  • Full Textbook Solutions

    Get detailed explanations and key concepts

  • Unlimited Al creation

    Al flashcards, explanations, exams and more...

  • Ads-free access

    To over 500 millions flashcards

  • Money-back guarantee

    We refund you if you fail your exam.

Over 30 million students worldwide already upgrade their learning with 91Ó°ÊÓ!

One App. One Place for Learning.

All the tools & learning materials you need for study success - in one app.

Get started for free

Most popular questions from this chapter

A person swimming at 2miles per hour requires 360+46Calories per hour per 100pounds of body mass. Express the energy use in kJ/hper kg of body mass. (Answer: 37kJ/hper kg)

Dust falls on Chicago at a rate of \(65mg{m^{ - 2}}da{y^{ - 1}}\). Major metallic elements in the dust include\(Al,Mg,Cu,Zn,Mn\), and \(Pb{.^3}Pb\) accumulates at a rate of \(0.03mg{m^{ - 2}}\) day \(^{ - 1}.\)How many metric tons (1 metric ton \( = 1000\;kg\)) of \(Pb\)falls on the 535 square kilometers of Chicago in 1 year?

I have always enjoyed eating tuna fish. Unfortunately, a study of the mercury content of canned tuna in 2010 found that chunk white tuna contains 0.6ppmHgand chunk light tuna contains 0.14ppm.2 The U.S. Environmental Protection Agency recommends no more than 0.1μ²µ±á²µ/kgbody weight per day. I weigh 68 kgHow often may I eat a can containing 6 ouncesrole="math" localid="1663301809153" (1lb=16oz)of chunk white tuna so that I do not average more than 0.1μ²µ±á²µ/kgbody weight per day? If I switch to chunk light tuna, how often can I eat one can?

The concentration of a gas is related to its pressure by the ideal gas law: Concentration: (molL)=nV=PPT, R=gasconstant =0.08314L·barmol·K where n is the number of moles, V is volume (L), P is pressure (bar), and T is temperature (K)

(a) The maximum pressure of ozone in the Antarctic stratosphere in Figure 1-1 is 19 mPa . Convert this pressure into bars.

(b) Find the molar concentration of ozone in part (a) if the temperature is -70°C.

What is the formal concentration (expressed as mol/L=M) ofNaCI when 32.0gare dissolved in water and diluted to 0.500L?

See all solutions

Recommended explanations on Chemistry Textbooks

View all explanations

What do you think about this solution?

We value your feedback to improve our textbook solutions.

Study anywhere. Anytime. Across all devices.