Light Energy

1. Nature of Light

Light is a form of ENERGY that enables us to SEE objects.

Key properties:

  • Light travels in STRAIGHT lines (rectilinear propagation)
  • Speed of light in vacuum: 3 × 10⁸ m/s
  • Light travels FASTER than sound

'Luminous objects PRODUCE their own light (Sun, bulb, candle). Non-luminous objects REFLECT light (Moon, book, table).'


2. Reflection of Light

The bouncing back of light when it strikes a surface.

Laws of Reflection

  1. The INCIDENT ray, the REFLECTED ray, and the NORMAL all lie in the SAME plane.
  2. The ANGLE of incidence (i) = ANGLE of reflection (r).

∠i = ∠r

Types of Reflection

TypeSurfaceExample
REGULAR reflectionSmooth, polishedMirror, still water
DIFFUSE reflectionRough, unevenWall, paper, cloth

3. Plane Mirror

AspectDescription
Image typeVIRTUAL (cannot be projected on a screen)
OrientationLATERALLY INVERTED (left-right reversed)
SizeSAME size as object
DistanceImage is AS FAR BEHIND the mirror as the object is in FRONT
PositionLaterally inverted, erect

Worked Example: If an object is placed 15 cm in front of a plane mirror, where is the image formed?

The image is 15 cm BEHIND the mirror (virtual).


4. Spherical Mirrors

TermMeaning
Pole (P)Centre of the mirror surface
Centre of curvature (C)Centre of the SPHERE of which the mirror is a part
Principal axisLine joining P and C
Focus (F)Point where PARALLEL rays CONVERGE (concave) or APPEAR TO DIVERGE from (convex)
Focal length (f)Distance from P to F. f = R/2

Concave Mirror (Converging)

  • Reflecting surface CURVES INWARDS
  • Parallel rays CONVERGE at focus
  • f is POSITIVE

Convex Mirror (Diverging)

  • Reflecting surface BULGES OUTWARDS
  • Parallel rays DIVERGE — APPEAR to come from focus behind mirror
  • f is NEGATIVE

5. Ray Diagrams for Concave Mirror

Object at INFINITY

Image: At F (point-sized, real, inverted)

Object BEYOND C

Image: Between C and F (real, INVERTED, DIMINISHED)

Object AT C

Image: At C (real, inverted, SAME size)

Object BETWEEN C and F

Image: Beyond C (real, inverted, ENLARGED)

Object AT F

Image: At INFINITY (highly enlarged)

Object BETWEEN F and P

Image: BEHIND the mirror (virtual, ERECT, ENLARGED)


6. Ray Diagrams for Convex Mirror

ALWAYS produces: Virtual, ERECT, DIMINISHED image, regardless of object position.

Image lies between P and F (behind the mirror).


7. Uses of Spherical Mirrors

Concave MirrorConvex Mirror
TORCH and headlight reflectorsREAR-VIEW mirrors in vehicles
SHAVING mirrors (enlarged image)Security mirrors in shops
DENTIST's mirrorStreet light reflectors
SOLAR cookers and furnaces
MAKEUP mirrors

8. Real vs Virtual Images

AspectReal ImageVirtual Image
Can be projected on a screen?YESNO
Formed byCONVERGENCE of actual raysAPPARENT convergence (rays appear to diverge)
NatureAlways INVERTEDAlways ERECT
ExampleImage on a cinema screenImage in a plane mirror

Common Mistakes and Fixes

MistakeFix
'Image in a plane mirror is real'Plane mirror images are VIRTUAL — they cannot be projected on a screen
'Convex mirrors are converging'Concave = CONVERGING. Convex = DIVERGING
'Concave mirrors always give real images'When the object is BETWEEN F and P, the image is VIRTUAL and ENLARGED
'f = R for spherical mirrors'f = R/2. Focal length is HALF the radius of curvature

ICSE Exam Focus (6–8 marks)

  • 2-mark questions: Laws of reflection, define focus, centre of curvature
  • 3-mark questions: Distinguish real vs virtual images
  • 4-mark questions: Ray diagrams for concave mirror (two positions)
  • 6-mark questions: Applications of spherical mirrors with reasons

Self-Test

Q1. State the two laws of reflection. A1. (1) Incident ray, reflected ray, and normal lie in the SAME plane. (2) Angle of incidence = Angle of reflection.

Q2. What type of mirror is used as a rear-view mirror in vehicles? Why? A2. CONVEX mirror. It gives an ERECT, DIMINISHED image and provides a WIDER field of view.

Q3. Where should an object be placed in front of a concave mirror to get a real, inverted, and same-sized image? A3. At the CENTRE of curvature (C).

Q4. What is the difference between a real and a virtual image? A4. A real image can be PROJECTED on a screen (formed by convergence of actual rays). A virtual image CANNOT be projected (rays only appear to diverge from it).

Q5. The focal length of a concave mirror is 10 cm. Find its radius of curvature. A5. R = 2f = 2 × 10 = 20 cm.

Q6. Why does a concave mirror produce an enlarged image when the object is close to it? A6. When the object is between F (focus) and P (pole), the rays diverge after reflection. They APPEAR to come from behind the mirror, forming a VIRTUAL, ERECT, and ENLARGED image.

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