Varying Permittivity: Low-Freq. Electro-Optic Modulation Explained

In summary, the conversation discusses the generation of permittivity variation through low-frequency electro-optic modulation. The use of this modulation can change the permittivity, as seen in acousto-optic devices where it changes due to changes in density. The speaker is seeking information on how to control this variation and if it is technically difficult to achieve, possibly through the influence of an external electromagnetic field. A link to a specific device would be appreciated.
  • #1
karlzr
131
2
I read from a paper that we can generate the permittivity variation by low-frequency electro-optic modulation.
So, does anyone know, how this modulation changes the permittvity? or a link will be appreciated!
 
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  • #2
In acousto-optic devices, the permittivity changes due to changes in the density. Do you have a link to a specific device?
 
  • #3
Andy Resnick said:
In acousto-optic devices, the permittivity changes due to changes in the density. Do you have a link to a specific device?

No, I just want to know whether it is technically difficult to make it, for instance, to increase linearly or exponentially.
How to control it? is it due to the influence of external electromagnetic field or something else?
 

1. What is permittivity and how does it affect electro-optic modulation?

Permittivity is a measure of a material's ability to store electric charge and influence the electric field. In the context of electro-optic modulation, varying permittivity refers to changing the permittivity of a material in order to manipulate the electric field and affect the transmission of light through the material.

2. What is the significance of low-frequency modulation in this context?

Low-frequency modulation refers to varying the permittivity of a material at a low frequency, typically in the range of a few Hertz to a few kilohertz. This is significant because it allows for precise and efficient manipulation of the electric field without causing any unwanted side effects such as heating or electrical breakdown in the material.

3. How does electro-optic modulation work?

Electro-optic modulation works by applying an electric field to a material with varying permittivity. This electric field causes a change in the material's refractive index, which in turn affects the transmission of light through the material. By controlling the strength and frequency of the electric field, the amount of light passing through the material can be modulated.

4. What are the applications of low-frequency electro-optic modulation?

Low-frequency electro-optic modulation has a wide range of applications, including telecommunications, optical computing, and laser technology. It is used for signal processing, switching, and controlling the intensity, phase, and polarization of light in various optical devices.

5. What are some materials that exhibit low-frequency electro-optic modulation?

Some common materials used for low-frequency electro-optic modulation include lithium niobate, potassium dihydrogen phosphate, and lead zirconate titanate. These materials have high permittivity and can be easily manipulated by an external electric field, making them ideal for use in electro-optic devices.

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