Physics Formulae/Equations of Light

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Lead Article: Tables of Physics Formulae


This article is a summary of the laws, principles, defining quantities, and useful formulae in the analysis of photonics.


Geometric Optics

Definitions, Quantities

Definitions


For conveinece in the table below, "r-surface" refers to reflecting/refracting surface. This is not a standard abbreviation.

Quantity (Common Name/s) (Common) Symbol/s Defining Equation SI Units Dimension
Refractive Index of substance n n=cv

n=ϵμϵ0μ0=ϵrμr

dimensionless dimensionless
Object Distance s m [L]
Image Distance s' m [L]
Focal Length f m [L]
Optcal Power P P=1f=2r D (Dipotres) = m-1 [L]-1
Radius of Curvature

of r-surface

f m [L]
Lateral Magnification m m=hh=ss

m and h negative when upside down

dimensionless dimensionless
Angular Magnification m m=θθ=ff dimensionless dimensionless
Dispersive Power ω ω=nbluenrednyellow1


The refractive indicies are determined

by the frequencies of the Fraunhöfer lines.

dimensionless dimensionless


Sign Conventions and Implications

There are different sign conventions which can be used, perhaps the the simplist to understand and recall is the one below[1].


The general pattern is the following:


Distances for real rays of light actually traversed are positve

Distances for apparent (i.e. virtual) rays of light not actually traversed are negative.

Distances are measured to the the apex of the r-surface on the optic axis.


Quantity + -
s Object in front of r-surface Object behind r-surface
s' Real image Virtual image
f, P Converging r-surface Diverging r-surface
r r-surface centre of curvature

on same side as object

r-surface centre of curvature

on opposite side as object

Laws of Geomtric Optics

Law of Reflection θ1=θ2
Snell's Law of Refraction,

Angles of Refraction

n1sinθ1=n2sinθ2


Mirrors


Image distance in a Plane Mirror s=s
Image distance in a Spherical Mirror n1s+n2s=n2n1r
Spherical Mirror Focal Length f=r/2
Spherical Mirror 1s+1s=1f=2r


General Media


Critical Angle of Total Internal Reflection sinθc=n2n1


Lenses


Thin Lens, Focal Length 1s+1s=1f

1f=nlensnmed1(1r11r2)

Newton's Formula xy=f2


x=sf

y=sf


Prisms


Minimum Deviation Angle


A = Prism Angle

D = Deviation Angle

nprism=sin(A+Dmin2)sinA2

Aθc

Radiometry

Quantity (Common Name/s) (Common) Symbol/s Defining Equation SI Unit Dimension
Radiant Power Q J = [M] [L]2 [T]-2
Radiant Flux, Radiant Power Φ W
Radiant Intensity I W sr-1 [M] [L]2 [T]-3
Radiance, Radiant Intensity L W sr-1 m-2
Irradiance, Incident Intensity,

Intensity incident on a surface

E, I W sr-1 m-2
Radiant Exitance, Radiant Emittance M W m-2
Radiosity (heat transfer), Radiosity, emitted plus

reflected Intensity leaving a surface

J, Jλ W m-2
Spectral Radiance Lλ, Lν W sr-1 m-3 = W sr-1 Hz-2
Spectral Irradiance Eλ, Eν W m-3 = W m-2 Hz-1

Photometry

Quantity (Common Name/s) (Common) Symbol/s Defining Equation SI Units Dimension
Luminous energy Qv J = lm s [M] [L]2 [T]-2
Luminous flux, luminous power F, Φv cd sr = lm = J s-1 [Φ]
Luminous intensity Iv cd = lm sr-1 [Φ]
Lunannce Lv cd m-2 [Φ] [L]-2
Illuminance (light incident on a surface) Ev lx = lm m-2 [Φ] [L]-2
Luminous Emittance (light emitted from a surface Mv lx = lm m2 [Φ] [L]-2
Luminous efficacy ΦvΦλ lm W-1 [Φ] [T]2 [M]-1 [L]-2


Physical Optics

Luminal EM Waves

Electric Field Component 𝐄=𝐄0sin(kxωt)
Magnetic Field Component 𝐁=𝐁0sin(kxωt)
Luminal Speed in Meduim c=1μϵ=|𝐄||𝐁|
Poynting Vector Y0 = Admittance of Free Space


Z0 = Impedance of Free Space


Y0=1Z0=μ0ϵ0

𝐒=1μ0𝐄×𝐁


𝐒=𝐄×𝐇


𝐒=ϵ0𝐃×𝐇


𝐒=ϵ0μ0𝐃×𝐁=Y0𝐃×𝐁

Poynting Vector Magnitude |𝐒|=|𝐄||𝐁|μ0=|𝐄|2cμ0
Root Mean Square Electric Field of Light 𝐄rms=𝐄2
Irradiance, Light Intensity I=|𝐄|2cμ0
Irradiance, Light Intensity

due to a Point Source

Ω = solid angle

r = position from source

I=P0Ωr2
Radiation Momentum, Total Absorption (Inelastic) Δp=ΔUc
Radiation Momentum, Total Reflection (Elastic) Δp=2ΔUc
Radiation Pressure, Total Absorption (Inelastic) pr=I/c
Radiation Pressure, Total Reflection (Elastic) pr=2I/c
Intensity Unpolarized Light I=I0/2
Malus' Law, Plane Polarized Light I=I0cos2θ
Brewster's Law of Total

Reflective Polarisation,

Brewster's Angle

tanθB=n2n1

Diffraction/Interferance

Diffraction

Path Length Difference Δx=dsinθ
Diffraction Grating Equation dsinθ=nλ

Minima

n=m


Maxima

n=m+12


m𝐙

Diffraction Grating Half-Width Δθhw=λ/Ndcosθ
Diffraction Grating Dispersion D=N/dcosθ
Diffraction Grating resolving power R=Nn
X-Ray Molecular Lattice

Diffraction, Bragg's law,

Lattice Distance

2dsinθ=Nλ
Double-Slit Interference Intensity I=4I0cos2(πdλsinθ)
Thin-Film Optics Air Minima

2L=(N+12)λn2

Air Maxima

2L=Nλn2

Single-Slit Intensity I(θ)=I0(sinαα)2
Double Slit Intensity I(θ)=I0(cos2β)(sinαα)2

α=πaλsinθ

Multiple-Slit Intensity I(θ)=I0[sin(Nπaλsinθ)sin(πaλsinθ)]2
Circular Aperture First Minimum sinθ=1.22λd
Rayleigh's Criterion θR=1.22λd

Other Aperatures

Poynting Vector

EM Waves

Photometry

Radiometry

Interferometry


References

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  1. Essential Principles of Physics, M.J. Hodgson and P.M. Whelan, John Murray 2nd Edition, 1978, Template:ISBN