Answered step by step
Verified Expert Solution
Link Copied!

Question

1 Approved Answer

A strip of zinc metal with a mass of 8.00g is placed in a beaker containing 24.00g chromium (III) nitrate to form zinc (II) nitrate

image text in transcribed
A strip of zinc metal with a mass of 8.00g is placed in a beaker containing 24.00g chromium (III) nitrate to form zinc (II) nitrate and chromium metal (element) MM Zinc =65.38g/mol, MM Chromium (III) nitrate =238.00g/mol MM zinc (II) Nitrate =189.36g/mol,MM Chromium =52.00g/mol a. Write the Stoichiometric chemical equation for the above reaction. b. Calculate the number of moles of zinc reactant actually present. c. Calculate the number of moles of chromium (Iii) nitrate actually present. d. Calculate the limiting and excess reactant. e. Calculate the mass of zinc nitrate produced. f. Calculate the mass of excess reactant not reacted

Step by Step Solution

There are 3 Steps involved in it

Step: 1

blur-text-image

Get Instant Access to Expert-Tailored Solutions

See step-by-step solutions with expert insights and AI powered tools for academic success

Step: 2

blur-text-image

Step: 3

blur-text-image

Ace Your Homework with AI

Get the answers you need in no time with our AI-driven, step-by-step assistance

Get Started

Recommended Textbook for

Organic Chemistry

Authors: John McMurry

7 Edition

978-0495112587, 0495112585

More Books

Students also viewed these Chemistry questions