Force and Electric field within a cubic lattice

Click For Summary
SUMMARY

The discussion centers on calculating the net force, electric field, and electric potential at the center of a cubic lattice formed by Cl- ions at the corners and a Cs+ ion at the center, with a cube side length of 0.4 nm. The net force on the Cs+ ion is confirmed to be zero due to symmetrical opposing forces from the Cl- ions. The electric field at the center is also zero for the same reason, while the electric potential is calculated by summing the potentials from each Cl- ion, yielding a non-zero value. The potential can be derived using the formula ΔV = -∫Edr, but direct calculation using point charges is recommended.

PREREQUISITES
  • Understanding of Coulomb's Law (F = kq1q2 / r2)
  • Knowledge of electric field calculations (E = kq / r)
  • Familiarity with electric potential concepts (U and V)
  • Basic calculus for integration in physics contexts
NEXT STEPS
  • Study the derivation of electric potential from point charges
  • Learn about vector fields and their implications in electrostatics
  • Explore the concept of symmetry in electric fields and forces
  • Investigate the differences between scalar and vector quantities in physics
USEFUL FOR

This discussion is beneficial for physics students, particularly those studying electrostatics, as well as educators and professionals involved in teaching or applying concepts of electric fields and potentials in cubic lattices.

VictorWutang
Messages
13
Reaction score
0

Homework Statement



There are Cl+ ions at the corners of a cube of side a = .4nm and a Cs- ion at the center.
a) What is the net force on the Cs- ion?
b) What is the electric field at the center of the cube cause by all of the Cl ions?
c) What is the electric potential at that point?



Homework Equations



F = kq1q2 / r2
E = kq / r
U


The Attempt at a Solution



a) Since each force has an equal force from the opposite corner, I think the net force should be 0. (seems too easy for a test problem, so please let me know if I'm wrong.)

B) For the same reasons as above, wouldn't E be 0?

C) really not sure where to go with this, guessing its an integral relying on the change in distance from each corner going from start position to infinity, and the the sum of those forces for each 8 corners.

Since it could move in a straight line through one of the faces, there would be 2 sets of 4 equal integrals, so I've gotten 4√(3)a/2Edr + 4-√(3)a/2Edr but even if this is right I have E = 0 so I can't do this.
 
Physics news on Phys.org
VictorWutang said:

Homework Statement



There are Cl+ ions at the corners of a cube of side a = .4nm and a Cs- ion at the center.
a) What is the net force on the Cs- ion?
b) What is the electric field at the center of the cube cause by all of the Cl ions?
c) What is the electric potential at that point?



Homework Equations



F = kq1q2 / r2
E = kq / r
U


The Attempt at a Solution



a) Since each force has an equal force from the opposite corner, I think the net force should be 0. (seems too easy for a test problem, so please let me know if I'm wrong.)

B) For the same reasons as above, wouldn't E be 0?

C) really not sure where to go with this, guessing its an integral relying on the change in distance from each corner going from start position to infinity, and the the sum of those forces for each 8 corners.

Since it could move in a straight line through one of the faces, there would be 2 sets of 4 equal integrals, so I've gotten 4√(3)a/2Edr + 4-√(3)a/2Edr but even if this is right I have E = 0 so I can't do this.
Hello,
Of course the net electric field at the center is zero.There are symmetrically opposing fields from all vertices.The charges are of the same nature and electric field is a vector.So I think your reasoning for questions a and b is correct. Potential however is a scalar so it has no direction.Just add the potentials due to individual charges ,or for the sake of symmetry seen here multiply potential due to one charge by 8.As far as your integral is concerned (which I will consider a difficult task to work with) see that E=0 only at the center of the cube.(or cuboid)It is not zero anywhere else inside the cube(or cuboid).
(Okay just a side question not related to the topic .Chemistry is not one of my strengths but I think the question should assign negative charges to chlorine ions,isnt it? :smile: )
regards
Yukoel
 
so inside the integral is Edr = kq1q2/ r2dr

which, when integrated, is -kq1q2/r

And since ΔV = - ∫Edr so the value i get turns positive, which seems like it would be correct. Then i would just plug in the numbers.

is this right?
 
VictorWutang said:
so inside the integral is Edr = kq1q2/ r2dr

which, when integrated, is -kq1q2/r

And since ΔV = - ∫Edr so the value i get turns positive, which seems like it would be correct. Then i would just plug in the numbers.

is this right?

V is a function of the source charge only. What you are deriving is potential energy.Sign seems fine.
You can directly use the expression for potentials considering the point charges separately.Evaluating the integral is correct but unnecessary in your problem.
regards
Yukoel
 

Similar threads

Discontinuity in an Electric line of force
  • · Replies 12 ·
Replies
12
Views
3K
Why is electric field at the center of a charged disk not zero?
  • · Replies 4 ·
Replies
4
Views
3K
Find the magnitude of the electric field at point P
  • · Replies 5 ·
Replies
5
Views
2K
Dipole placed in a uniform electric field
  • · Replies 11 ·
Replies
11
Views
3K
Ion moving through electric potential difference and magnetic field
  • · Replies 8 ·
Replies
8
Views
2K
Find the Electric field at point p
  • · Replies 2 ·
Replies
2
Views
2K
Why Is Work Positive When Done Against the Electric Field?
  • · Replies 22 ·
Replies
22
Views
4K
Electric field at a point within a charged circular ring
  • · Replies 68 ·
3
Replies
68
Views
8K
Electric field due to charges between 2 parallel infinite planes
  • · Replies 9 ·
Replies
9
Views
888
Electric Fields and Electric forces help
  • · Replies 14 ·
Replies
14
Views
2K