Chlorine dioxide, ClO2 is used for bleaching paper. It is also the gas used to kill the Anthrax spores that contaminated the Hart Senate Office building in 2001. Chlorine dioxide is prepared by treating Sodium Chlorite with Chlorine gas. NaClO2 + Cl2 ClO2 + NaCl Balance the equation for the preparation of chlorine dioxide. Calculate the molecular weight of Chlorine dioxide that can be prepared from 5.50kg of sodium chlorite.
Chlorine dioxide, ClO2 is used for bleaching paper. It is also the gas used to kill the Anthrax spores that contaminated the Hart Senate Office building in 2001. Chlorine dioxide is prepared by treating Sodium Chlorite with Chlorine gas. NaClO2 + Cl2 ClO2 + NaCl Balance the equation for the preparation of chlorine dioxide. Calculate the molecular weight of Chlorine dioxide that can be prepared from 5.50kg of sodium chlorite.
Chemistry
10th Edition
ISBN:9781305957404
Author:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Publisher:Steven S. Zumdahl, Susan A. Zumdahl, Donald J. DeCoste
Chapter1: Chemical Foundations
Section: Chapter Questions
Problem 1RQ: Define and explain the differences between the following terms. a. law and theory b. theory and...
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- Chlorine dioxide, ClO2 is used for bleaching paper. It is also the gas used to kill the Anthrax spores that contaminated the Hart Senate Office building in 2001. Chlorine dioxide is prepared by treating Sodium Chlorite with Chlorine gas.
NaClO2 + Cl2 ClO2 + NaCl
- Balance the equation for the preparation of chlorine dioxide.
- Calculate the molecular weight of Chlorine dioxide that can be prepared from 5.50kg of sodium chlorite.
- In photosynthesis, green plants convert Carbon dioxide and water to glucose, C6H12O6. How many grams of CO2 are required to produce 5.1 g of glucose?
CO2 + H2O C6H12O6 + O2
- Calculate the expected yield based on the stoichiometry of the balanced equation of sodium sulfate. Suppose that we have only 121.4 g of Na2SO4.
Na + SO4 Na2SO4
- In an experiment to prepare Silver nitrate (AgNO3), the theoretical yield is 170 g. If the actual yield is 115.8 g. What is the percent yield?
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