Tilt a diamond under a lamp and it throws back flashes of light that a piece of ordinary glass cannot match. A jeweller will talk about cut and clarity. A physicist will talk about something simpler: light that goes in and cannot easily get out.
That trapping is called total internal reflection, and it also explains optical fibres, mirages and the shine of a swimming pool seen from underneath. This guide builds the idea step by step, tests it with numbers, and is honest about where it sits in your syllabus, because it is taught more fully in Class 12 than in Class 10.
Light Trapped in a Stone
What total internal reflection means
When light crosses from one medium to another, some of it is refracted and some is reflected. Under the right conditions, all of it is reflected back into the first medium, and none escapes. That complete reflection at a boundary is total internal reflection (TIR).
The two conditions
- The light must travel from a denser medium to a rarer medium, for example from glass or diamond into air.
- The angle of incidence must be greater than the critical angle.
The critical angle C is the angle of incidence for which the refracted ray just grazes along the boundary, at 90° to the normal. For light going from a medium of refractive index n into air:
sin C = 1/n
Critical angles at a glance
| Medium | Refractive index (approx.) | Critical angle with air |
| Water | 1.33 | about 48.8° |
| Glass | 1.5 | about 41.8° |
| Diamond | 2.42 | about 24.4° |
The higher the refractive index, the smaller the critical angle, and the easier it is for light to be trapped. Diamond has the smallest critical angle of the three, and that single number is the heart of its sparkle.
Inside a Cut Diamond
Light goes in, bounces around, and comes back
A diamond is cut with many flat faces, called facets, at carefully chosen angles. Light enters through the top, travels inside, and meets the lower facets at angles larger than the small critical angle of about 24.4°. It is totally reflected, strikes another facet, and is reflected again. After several such internal reflections, most of the light leaves through the top, back towards your eye. Almost none is wasted by escaping through the bottom.
Why glass cannot match it
Glass has a refractive index of about 1.5, so its critical angle is much larger, about 41.8°. Many rays inside a glass imitation strike the lower facets at angles smaller than that, so they refract out of the back instead of returning to the viewer. The stone looks duller from the front.
Why the cut matters
Total internal reflection depends on angles, so a poorly cut diamond lets light leak out of the bottom and sparkles less than a well-cut one. The cut is not decoration. It is geometry designed to keep light inside until it can leave through the top.
The coloured flashes
Diamond also has a high ability to split white light into its colours, which is the same idea behind dispersion of light. Combined with repeated internal reflections, this produces the coloured flashes that jewellers call “fire”.
Beyond the Jewellery Shop
Once you know the two conditions, you can spot total internal reflection in many places.
| Where it appears | How total internal reflection is used |
| Optical fibres | Light entering the fibre meets the wall at an angle above the critical angle and is reflected again and again along the length, so signals travel with very little loss, even when the fibre is bent |
| Mirages | On a hot day, air near the ground is warmer and rarer than the air above it. Light from the sky bends upwards until it is totally reflected, and the road appears to hold a pool of water. See also atmospheric refraction |
| Totally reflecting prisms | A prism turns a ray through 90° or 180° with no silvering, which is why periscopes and binoculars use them |
| Medical endoscopes | Bundles of optical fibres carry light into the body and carry the image back |
| The pool seen from below | When you look up at the water’s surface from underwater at a large angle, it acts like a mirror |
If you want to see how a prism bends light before it totally reflects it, read about refraction of light through a prism.
Numbers That Prove It
Worked example: will the ray escape?
A ray inside a glass block (n = 1.5) strikes the glass–air boundary at an angle of incidence of 50°. Does it escape into the air?
Step 1: Find the critical angle. sin C = 1/1.5 = 0.667, so C ≈ 41.8°.
Step 2: Compare. The angle of incidence (50°) is greater than the critical angle (41.8°), and the ray is travelling from a denser to a rarer medium.
Step 3: Conclude. The ray undergoes total internal reflection and does not escape. If the angle had been 30°, which is below 41.8°, it would have refracted out into the air.
Class 10 or Class 12? Where Total Internal Reflection Lives
The keyword “total internal reflection class 10” is searched often, so here is the honest picture. The main NCERT text of Class 10 Science, Chapter 9 (Light – Reflection and Refraction, 2026-27 numbering) concentrates on mirrors, refraction and lenses. Many reference notes and schools add total internal reflection, critical angle, mirage and optical fibres as an extension, so check with your teacher whether it is part of your school’s coverage. The formal treatment, with the critical angle, the diamond, optical fibres and the mirage, is in Class 12.
In Class 12, Ray Optics and Optical Instruments (Chapter 9) treats the critical angle, the diamond, optical fibres and the mirage in detail, and the CBSE Class 12 Physics syllabus for 2026-27 lists total internal reflection and optical fibres. The NEET UG 2026 and JEE Main optics syllabi list total internal reflection and its applications, and ray optics is part of KCET. This guide to optics for NEET shows how it is tested. For JEE Advanced and later exam years, check the latest official syllabus. State Board and ICSE syllabi may place the topic differently, so confirm with your own textbook.
Frequently Asked Questions
Q1. Why do diamonds sparkle?
Diamond has a very high refractive index, so its critical angle is only about 24.4°. Light entering a well-cut diamond strikes the inner facets at angles above that and is totally reflected several times before leaving through the top, which makes the stone flash.
Q2. What is total internal reflection, and when does it happen?
It is the complete reflection of light back into a medium at its boundary. It happens only when light travels from a denser to a rarer medium and the angle of incidence is greater than the critical angle.
Q3. What is the critical angle and how do you find it?
The critical angle is the angle of incidence in the denser medium for which the refracted ray grazes along the boundary. For a medium of refractive index n with air outside, sin C = 1/n.
Q4. Why can’t total internal reflection happen when light goes from air into glass?
Because light would be moving from a rarer to a denser medium, where the ray bends towards the normal and a refracted ray always exists. There is no critical angle in that direction.
Q5. How do optical fibres use total internal reflection?
Light entering one end of a thin glass fibre meets the fibre’s inner wall at an angle greater than the critical angle, so it is totally reflected again and again along the length. The signal travels with very little loss, even when the fibre bends.
When Light Cannot Get Out
A diamond sparkles because its geometry keeps light inside until it can leave in the direction you are looking. The same simple rule, a denser medium and an angle beyond the critical angle, carries data across oceans in optical fibres and paints puddles on a hot road. Learn that rule once, check it with sin C = 1/n, and a whole family of questions becomes easy.














Get Social