In a region, the electric potential varies as , where V is in volts and x in meters. The electric field in the region is:
In a region, the electric potential varies as , where V is in volts and x in meters. The electric field in the region is:
Options
Correct option: C — 50 N/C along +x.
- The field is the negative gradient of potential: .
- Here , so = +50 N/C, i.e. 50 N/C directed along the +x axis.
Marking Scheme
- 11 mark: correct option C (50 N/C along +x).
- 2Full credit requires the field magnitude 50 N/C AND the +x direction; magnitude alone with wrong direction (option D) earns no mark.
Hint
Use . Differentiate V with respect to x and remember the leading minus sign.
Quick Oral Answer
Since , the field directed along the +x axis; the minus sign in the formula flips the negative slope back to positive.
Analysis & Explanation
This question tests the fundamental relation between a scalar potential field and the vector electric field.
Concept
- For a potential varying only along x, the field is .
- Given , differentiating gives , so (V/m and N/C are identical units).
- The positive sign means the field points along +x — from high potential (small x) toward low potential (large x), consistent with field lines pointing in the direction of decreasing potential.
Why the distractors are wrong
- A (10 N/C along +x): 10 is the constant term in V; it plays no role in the field, which depends only on the rate of change of V.
- B (10 N/C along −x): wrong magnitude and wrong direction.
- D (50 N/C along −x): correct magnitude but wrong sign — students forget the minus sign in or mis-read the slope's sign.
Exam trap
- The minus sign in combined with the already-negative slope (−50) yields a positive field. Two sign flips are easy to mishandle.
Common Mistakes
- 1Dropping the negative sign in and reporting the field along −x (choosing D).
- 2Treating the constant 10 V as contributing to the field and selecting 10 N/C.
- 3Confusing V/m with a different unit; V/m and N/C are numerically identical.
Interesting Facts
The unit of electric field can be written as either N/C or V/m — both are dimensionally identical, a neat consequence of .
A potential that is linear in position (like ) always corresponds to a perfectly uniform field, exactly the situation inside an ideal parallel-plate capacitor.
Spotted a mistake or something unclear?
Tell us — we fix reported answers fast.
Frequently Asked Questions
Why is the electric field along +x when the potential decreases with x?
The electric field always points in the direction of decreasing potential. As x increases, decreases, so the field points toward increasing x, i.e. along +x. The formula captures this automatically.
Does the constant 10 V in the potential affect the field?
No. The electric field depends only on how the potential changes with position (its derivative), not on its absolute value. The constant 10 V simply sets the reference and vanishes on differentiation.