"Streamer discharge" refers to a specific type of electrical discharge phenomenon that occurs in gases, particularly at atmospheric pressure. It is characterized by the rapid formation and growth of ionized channels, or "streamers," which propagate through the air or other gaseous mediums. This phenomenon is often associated with electrical breakdown in gases, such as during lightning strikes, gas discharges in lighting fixtures, or in other high-voltage applications.
Stoletov's law refers to a principle in the field of photoconductivity and describes the relationship between the intensity of light and the electrical conductivity of certain materials, particularly semiconductors. Formulated by the Russian physicist Alexander Stoletov in the late 19th century, the law states that the photoelectric effect leads to an increase in the electrical conductivity of a material when it is exposed to light.
St. Elmo's fire is a phenomenon that occurs during thunderstorms, characterized by a visible blue or violet glow. It is caused by the ionization of air surrounding pointed or sharp objects, such as the mast of a ship or the spire of a church. When the electric field in the atmosphere becomes strong enough, it creates a discharge of electricity that results in a gentle and continuous glow at the tips of these objects. St.
Sprites are a type of upper-atmospheric lightning that occurs high above thunderstorms, typically at altitudes of 50 to 90 kilometers (31 to 56 miles). They are a form of transient luminous event (TLE) and are characterized by their reddish color and tendrils that extend down toward the clouds. Sprites are generally associated with large thunderstorms, especially those that produce powerful cloud-to-ground lightning strikes.
The Sauerbrey equation is a fundamental principle used in the field of quartz crystal microbalance (QCM) sensing. It relates the change in frequency of a quartz crystal oscillator to the mass of material that has been deposited on its surface. The equation is particularly useful for measuring thin films and mass changes at the nanogram level.
Relaxor ferroelectrics are a class of materials that exhibit a complex dielectric response due to their unique structural and electronic properties. These materials are characterized by their diffuse phase transition, meaning they do not have a sharp transition from a non-polar (cubic or high-temperature phase) to a polar (tetragonal or low-temperature phase) state, as seen in conventional ferroelectric materials.
Relativistic runaway electron avalanche (RREA) is a phenomenon that occurs in strong electric fields, typically in the context of thunderstorm electrification, atmospheric electricity, or other high-energy physics systems. It involves the generation of high-energy electrons that can lead to an exponential increase in the number of secondary electrons through a process of ionization and acceleration.
The Raether limit is a concept in the field of high-energy particle physics and astrophysics, particularly in relation to the behavior of massive air showers generated by cosmic rays. It describes a threshold for the production of secondary particles when a high-energy primary particle, such as a cosmic ray proton, interacts with nuclei in the Earth's atmosphere.
Radio atmospheric signals, often referred to as "sferics" (short for "atmospheric radio wave signals"), are low-frequency radio waves generated primarily by lightning strikes during thunderstorms. These signals can propagate over long distances and are detected at various frequencies, typically in the VLF (Very Low Frequency) range, which spans from 3 kHz to 30 kHz.
The piezoresistive effect refers to the change in electrical resistance of a material when it is subjected to mechanical stress. This phenomenon is primarily observed in certain semiconductors and metals, where the resistance changes due to variations in carrier concentration or mobility caused by the applied stress.
Piezophototronics is an interdisciplinary field that combines principles from piezoelectricity, photonics, and semiconductor technology. It investigates the interaction between mechanical strain (piezopotential) and optical properties of materials, primarily semiconductor materials.
Piezoelectricity is the electrical charge that accumulates in certain materials (known as piezoelectric materials) in response to applied mechanical stress. When these materials are deformed—either by compression, tension, or shear—they generate an electrical voltage. Conversely, applying an electrical voltage to these materials can induce a mechanical deformation. The term "piezoelectric" comes from the Greek word "piezein," which means "to press.
A piezoelectric speaker is a type of speaker that utilizes the piezoelectric effect to convert electrical energy into mechanical vibrations, producing sound. The piezoelectric effect refers to the ability of certain materials (typically specific ceramics or crystals) to produce an electrical charge in response to applied mechanical stress and vice versa. ### Key Features of Piezoelectric Speakers: 1. **Construction**: Piezoelectric speakers typically consist of a piezoelectric ceramic or crystal element that is bonded to a diaphragm.
Piezoelectric microelectromechanical systems (PiezoMEMS) refer to systems that integrate piezoelectric materials with microelectromechanical systems technology. These systems leverage the piezoelectric effect, which is the ability of certain materials to generate an electric charge in response to applied mechanical stress, and vice versa.
The piezoelectric coefficient is a measure of the efficiency with which a material converts mechanical energy into electrical energy (and vice versa) through the piezoelectric effect. It quantifies the relationship between the mechanical stress applied to a piezoelectric material and the resulting electric charge (or voltage) generated.
The photovoltaic effect is the creation of electric voltage or electric current in a material upon exposure to light. This phenomenon is the foundational principle behind photovoltaic cells, commonly known as solar cells, which are used to convert sunlight into electricity. Here's a more detailed explanation: 1. **Material Properties**: The photovoltaic effect occurs in certain materials, typically semiconductors, such as silicon. These materials have a band gap that allows them to absorb photons (light particles) with sufficient energy.
Photon-induced electric field poling is a technique used to manipulate the optical and electronic properties of materials, particularly nonlinear optical crystals. This method utilizes the interaction of light (photons) with a material to induce a change in its polarization state, thereby creating an electric field across the material. This induced electric field can align the dipoles of the material in a particular direction, achieving a state known as poling.
Photoconductivity is a phenomenon in which the electrical conductivity of a material increases when it is exposed to light. This effect is primarily observed in semiconductor materials and certain insulators, where the absorption of photons generates additional charge carriers (electrons and holes), leading to enhanced electrical conductivity. Here's a more detailed breakdown of the process: 1. **Photon Absorption**: When light (photons) strikes a photoconductive material, its energy can be absorbed by electrons in the material.
A narrow bipolar pulse is a type of electrical signal characterized by its short duration and bipolar nature, meaning that it alternates between positive and negative voltages. These pulses are typically used in various applications, such as in communication systems, digital signal processing, or biomedical devices like nerve stimulators. ### Key Characteristics: 1. **Narrow Pulse Width**: The "narrow" aspect refers to the short duration of the pulse, which can be measured in microseconds or nanoseconds.
The multipactor effect is a phenomenon that occurs in vacuum environments, typically in high-frequency electronic devices, such as satellites, microwave systems, and spacecraft. It involves the emission and multiplication of electrons within a gaseous or vacuum medium, leading to a cascade of continuous electron emission and potentially causing device failure.