Using VSEPR theory, the geometry of the hydronium ion H 3 O + has to be predicted Concept Information: The shape of a molecule is predicted using Lewis structure and VSEPR ( valence-shell electron-pair repulsion ) model. The shape of the molecule depends on the number of electron domains available for the central atom of the molecule. The VSEPR model predicts that because these electron domains repel one another, they will arrange themselves to be as far apart as possible, thus minimizing the repulsive interactions between them. For a molecule of type AB x , where A is the central atom surrounded by x B atoms, x can have values of 2 to 6 and the molecules takes up the corresponding geometry To Predict: The geometry of hydronium ion H 3 O + using VSEPR
Using VSEPR theory, the geometry of the hydronium ion H 3 O + has to be predicted Concept Information: The shape of a molecule is predicted using Lewis structure and VSEPR ( valence-shell electron-pair repulsion ) model. The shape of the molecule depends on the number of electron domains available for the central atom of the molecule. The VSEPR model predicts that because these electron domains repel one another, they will arrange themselves to be as far apart as possible, thus minimizing the repulsive interactions between them. For a molecule of type AB x , where A is the central atom surrounded by x B atoms, x can have values of 2 to 6 and the molecules takes up the corresponding geometry To Predict: The geometry of hydronium ion H 3 O + using VSEPR
Solution Summary: The author explains how the geometry of the hydronium ion is predicted using Lewis structure and VSEPR.
Using VSEPR theory, the geometry of the hydronium ion H3O+ has to be predicted
Concept Information:
The shape of a molecule is predicted using Lewis structure and VSEPR (valence-shell electron-pair repulsion) model.
The shape of the molecule depends on the number of electron domains available for the central atom of the molecule.
The VSEPR model predicts that because these electron domains repel one another, they will arrange themselves to be as far apart as possible, thus minimizing the repulsive interactions between them.
For a molecule of type ABx, where A is the central atom surrounded by x B atoms, x can have values of 2 to 6 and the molecules takes up the corresponding geometry
To Predict: The geometry of hydronium ion H3O+ using VSEPR
(b)
Interpretation Introduction
Interpretation:
The reason why the species H4O2+ does not exist has to explained; If it did exist, what would be its geometry has to be given.
Concept Information:
The shape of a molecule is predicted using Lewis structure and VSEPR (valence-shell electron-pair repulsion) model.
The shape of the molecule depends on the number of electron domains available for the central atom of the molecule.
The VSEPR model predicts that because these electron domains repel one another, they will arrange themselves to be as far apart as possible, thus minimizing the repulsive interactions between them.
For a molecule of type ABx, where A is the central atom surrounded by x B atoms, x can have values of 2 to 6 and the molecules takes up the corresponding geometry
To Explain: The reason why the species H4O2+ does not exist and if it did exist, what would be its geometry
A complete tensile test was performed on a magnesium
specimen of 12 mm diameter and 30 mm length, until breaking.
The specimen is assumed to maintain a constant volume.
Calculate the approximate value of the actual stress at breaking.
TABLE. The tensile force F and the length of the specimen are
represented for each L until breaking.
F/N
L/mm
0
30,0000
30,0296
5000
10000 30,0592
15000 30,0888
20000
30,15
25000 30,51
26500
30,90
27000
31,50
26500
32,10
25000 32,79
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