# Stimulated emission

**Stimulated emission** is the process by which an atomic electron (or an excited molecular state) interacting with an electromagnetic wave of a certain frequency may drop to a lower energy level, transferring its energy to that field. A new photon created in this manner has the same phase, frequency, polarization, and direction of travel as the photons of the incident wave. This is in contrast to spontaneous emission which occurs without regard to the ambient electromagnetic field.

However, the process is identical in form to atomic absorption in which the energy of an absorbed photon causes an identical but opposite atomic transition: from the lower level to a higher energy level. In normal media at thermal equilibrium, absorption exceeds stimulated emission because there are more electrons in the lower energy states than in the higher energy states. However, when a population inversion is present the rate of stimulated emission exceeds that of absorption, and a net optical amplification can be achieved. Such a gain medium, along with an optical resonator, is at the heart of a laser or maser. Lacking a feedback mechanism, laser amplifiers and superluminescent sources also function on the basis of stimulated emission.

Stimulated emission was a theoretical discovery by Einstein ^{[1]} within the framework of the old quantum theory, wherein the emission is described in terms of photons that are the quanta of the EM field. Stimulated emission can also be described classically, however, without reference to either photons, or the quantum-mechanics of matter.^{[2]}

## Contents

## Overview

Electrons and how they interact with electromagnetic fields are important in our understanding of chemistry and physics. In the classical view, the energy of an electron orbiting an atomic nucleus is larger for orbits further from the nucleus of an atom. However, quantum mechanical effects force electrons to take on discrete positions in orbitals. Thus, electrons are found in specific energy levels of an atom, two of which are shown below:

When an electron absorbs energy either from light (photons) or heat (phonons), it receives that incident quanta of energy. But transitions are only allowed between discrete energy levels such as the two shown above. This leads to emission lines and absorption lines.

When an electron is excited from a lower to a higher energy level, it will not stay that way forever. An electron in an excited state may decay to a lower energy state which is not occupied, according to a particular time constant characterizing that transition. When such an electron decays without external influence, emitting a photon, that is called "spontaneous emission". The phase associated with the photon that is emitted is random. A material with many atoms in such an excited state may thus result in radiation which is very spectrally limited (centered around one wavelength of light), but the individual photons would have no common phase relationship and would emanate in random directions. This is the mechanism of fluorescence and thermal emission.

An external electromagnetic field at a frequency associated with a transition can affect the quantum mechanical state of the atom. As the electron in the atom makes a transition between two stationary states (neither of which shows a dipole field), it enters a transition state which does have a dipole field, and which acts like a small electric dipole, and this dipole oscillates at a characteristic frequency. In response to the external electric field at this frequency, the probability of the atom entering this transition state is greatly increased. Thus, the rate of transitions between two stationary states is enhanced beyond that due to spontaneous emission. Such a transition to the higher state is called absorption, and it destroys an incident photon (the photon's energy goes into powering the increased energy of the higher state). A transition from the higher to a lower energy state, however, produces an additional photon; this is the process of **stimulated emission**.

## Mathematical model

Stimulated emission can be modelled mathematically by considering an atom that may be in one of two electronic energy states, a lower level state (possibly the ground state) (1) and an *excited state* (2), with energies *E*_{1} and *E*_{2} respectively.

If the atom is in the excited state, it may decay into the lower state by the process of spontaneous emission, releasing the difference in energies between the two states as a photon. The photon will have frequency ν and energy *h*ν, given by:

where *h* is Planck's constant.

Alternatively, if the excited-state atom is perturbed by an electric field of frequency , it may emit an additional photon of the same frequency and in phase, thus augmenting the external field, leaving the atom in the lower energy state. This process is known as **stimulated emission**.

In a group of such atoms, if the number of atoms in the excited state is given by N_{2}, the rate at which stimulated emission occurs is given by:

where the proportionality constant *B*_{21} is known as the *Einstein B coefficient* for that particular transition, and ρ(ν) is the radiation density of the incident field at frequency ν. The rate of emission is thus proportional to the number of atoms in the excited state N_{2}, and to the density of incident photons.

At the same time, there will be a process of atomic absorption which *removes* energy from the field while raising electrons from the lower state to the upper state. Its rate is given by an essentially identical equation:

The rate of absorption is thus proportional to the number of atoms in the lower state, N_{1}. Einstein showed that the coefficient for this transition must be identical to that for stimulated emission:

Thus absorption and stimulated emission are reverse processes proceeding at somewhat different rates. Another way of viewing this is to look at the *net* stimulated emission or absorption viewing it as a single process. The net rate of transitions from E_{2} to E_{1} due to this combined process can be found by adding their respective rates, given above:

Thus a net power is released into the electric field equal to the photon energy *h*ν times this net transition rate. In order for this to be a positive number, indicating net stimulated emission, there must be more atoms in the excited state than in the lower level: . Otherwise there is net absorption and the power of the wave is reduced during passage through the medium. The special condition is known as a population inversion, a rather unusual condition that must be effected in the gain medium of a laser.

The notable characteristic of stimulated emission compared to everyday light sources (which depend on spontaneous emission) is that the emitted photons have the same frequency, phase, polarization, and direction of propagation as the incident photons. The photons involved are thus mutually coherent. When a population inversion () is present, therefore, optical amplification of incident radiation will take place.

Although energy generated by stimulated emission is always at the exact frequency of the field which has stimulated it, the above rate equation refers only to excitation at the particular optical frequency corresponding to the energy of the transition. At frequencies offset from the strength of stimulated (or spontaneous) emission will be decreased according to the so-called line shape. Considering only homogeneous broadening affecting an atomic or molecular resonance, the spectral line shape function is described as a Lorentzian distribution:

where is the full width at half maximum or FWHM bandwidth.

The peak value of the Lorentzian line shape occurs at the line center, . A line shape function can be normalized so that its value at is unity; in the case of a Lorentzian we obtain:

Thus stimulated emission at frequencies away from is reduced by this factor. In practice there may also be broadening of the line shape due to inhomogeneous broadening, most notably due to the Doppler effect resulting from the distribution of velocities in a gas at a certain temperature. This has a Gaussian shape and reduces the peak strength of the line shape function. In a practical problem the full line shape function can be computed through a convolution of the individual line shape functions involved. Therefore optical amplification will add power to an incident optical field at frequency at a rate given by:

## Stimulated emission cross section

The stimulated emission cross section (in square meters) is

where

*A*_{21}is the Einstein*A*coefficient (in radians per second),- λ is the wavelength in the void(in meters),
*n*is the refractive index of the medium (dimensionless), and*g*(ν) is the spectral line shape function (in seconds).

## Optical amplification

Under certain conditions, stimulated emission can provide a physical mechanism for optical amplification. An external source of energy stimulates atoms in the ground state to transition to the excited state, creating what is called a population inversion. When light of the appropriate frequency passes through the inverted medium, the photons stimulate the excited atoms to emit additional photons of the same frequency, phase, and direction, resulting in an amplification of the input intensity.

The population inversion, in units of atoms per cubic meter, is

where *g*_{1} and *g*_{2} are the degeneracies of energy levels 1 and 2, respectively.

### Small signal gain equation

The intensity (in watts per square meter) of the stimulated emission is governed by the following differential equation:

as long as the intensity *I*(*z*) is small enough so that it does not have a significant effect on the magnitude of the population inversion. Grouping the first two factors together, this equation simplifies as

where

is the *small-signal gain coefficient* (in units of radians per meter). We can solve the differential equation using separation of variables:

Integrating, we find:

or

where

### Saturation intensity

The saturation intensity *I*_{S} is defined as the input intensity at which the gain of the optical amplifier drops to exactly half of the small-signal gain. We can compute the saturation intensity as

where

*h*is Planck's constant, and- τ
_{S}is the saturation time constant, which depends {{ safesubst:#invoke:Unsubst||date=__DATE__ |$B=

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### General gain equation

The general form of the gain equation, which applies regardless of the input intensity, derives from the general differential equation for the intensity *I* as a function of position *z* in the gain medium:

where is saturation intensity. To solve, we first rearrange the equation in order to separate the variables, intensity *I* and position *z*:

Integrating both sides, we obtain

or

The gain *G* of the amplifier is defined as the optical intensity *I* at position *z* divided by the input intensity:

Substituting this definition into the prior equation, we find the **general gain equation**:

### Small signal approximation

In the special case where the input signal is small compared to the saturation intensity, in other words,

then the general gain equation gives the small signal gain as

or

which is identical to the small signal gain equation (see above).

### Large signal asymptotic behavior

For large input signals, where

the gain approaches unity

and the general gain equation approaches a linear asymptote:

## References

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|CitationClass=book }} ISBN 978-0-19-921145-6. .3 Laser Fundamentals, William T. Silfvast

## See also

- Absorption
- Active laser medium
- Laser (includes a history section)
- Laser science
- Rabi cycle
- Spontaneous emission