× Didn't find what you were looking for? Ask a question
Top Posters
Since Sunday
o
2
1
New Topic  
jcarroll23 jcarroll23
wrote...
Posts: 1
Rep: 0 0
10 years ago
What is the hybridization of  each bond of the following: H-C=C=C-H
Read 582 times
1 Reply

Related Topics

Replies
wrote...
Staff Member
Educator
10 years ago
Is this a trick question? C3H2 doesn't exist. If you consider the 4 bonds that carbon usually makes, the bonds are usually arranged (for 4 single bonds) at bond angles like a tetrahedron. If you have a triple bond, the total bond angle across the carbon atom is 180 degrees. Too much bond stress is required to "bend" these bonds to the 60 degrees required to form cyclopropyne.
Mastering in Nutritional Biology
Tralalalala Slight Smile
New Topic      
Explore
Post your homework questions and get free online help from our incredible volunteers
  1050 People Browsing
Related Images
  
 168
  
 260
  
 178
Your Opinion
Who will win the 2024 president election?
Votes: 10
Closes: November 4