The reaction used in the deployment of automobile airbags is the high-temperature decomposition of sodium azide, NaN, to produce N₁₂ gas. How many liters of N, at 1.15 atm and 30.0 °C are produced by decomposition of 45.0 g NaN.? 2NaN₂(s) 2Na(s) + 3N₂(g)

Chemistry for Engineering Students
4th Edition
ISBN:9781337398909
Author:Lawrence S. Brown, Tom Holme
Publisher:Lawrence S. Brown, Tom Holme
Chapter5: Gases
Section: Chapter Questions
Problem 5.59PAE: 59 During a collision, automobile air bags are inflated by the N2 gas formed by the explosive...
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The reaction used in the deployment of automobile airbags is the
high-temperature decomposition of sodium azide, NaN, to produce N₂ gas.
How many liters of N, at 1.15 atm and 30.0 °C are produced by
2
decomposition
of 45.0 g NaN₂?
2NaN (s) → 2Na(s) + 3N₂(g)
Transcribed Image Text:The reaction used in the deployment of automobile airbags is the high-temperature decomposition of sodium azide, NaN, to produce N₂ gas. How many liters of N, at 1.15 atm and 30.0 °C are produced by 2 decomposition of 45.0 g NaN₂? 2NaN (s) → 2Na(s) + 3N₂(g)
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