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A electron transferring bacteria that eat metals and serve as an electrical conductor.

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What is the surface temperature for nu phoenicis?

Nu Phoenicis, also known as HD 100653, is a star located in the constellation Phoenix. Its surface temperature is approximately 5,800 Kelvin. This temperature is typical for a star of its spectral type, which is classified as F-type. This classification indicates that Nu Phoenicis is somewhat hotter than our Sun, which has a surface temperature of about 5,500 Kelvin.


What does the planck's equation e equals h x nu state?

This equation shows that the energy of a photon is inversely proportional to its wavelength. E = Energy. h = The Planck constant. Think of it as a tiny, discrete packet of energy for most purposes. Nu (looks like v) = Spatial frequency of a wave. Nu is equal to 1/Wavelength (inversely proportional). The way to think of this is that wavelength is how many meters long the wave is. Meanwhile, Nu is how many waves you can fit into a meter. Eg: If the wave is half a meter long, you can fit 2 waves into a metre. (Nu = 1/0.5 = 2) If Nu is large, it means we can fit a lot of waves into our unit length (remember, big Nu = small wavelength and vice versa). What does this mean for our equation? It means when Nu is high, we have high energy (remember h is a positive constant). When Nu is low, we have low energy. In English, this means photons with smaller wavelength have higher energy than photons with larger wavelengths. This universally true, and extremely important. For further reading, try searching for "Electromagnetic spectrum".


How is carbon film formed?

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What is the frequency of radiation emitted by a photon of light if the energy released during its transition to ground state is 3.611 10ȹ joules?

The frequency of radiation emitted by a photon can be calculated using the formula ( E = h \nu ), where ( E ) is the energy of the photon, ( h ) is Planck's constant (( 6.626 \times 10^{-34} ) J·s), and ( \nu ) is the frequency. Rearranging the formula gives ( \nu = \frac{E}{h} ). Substituting the given energy ( E = 3.611 \times 10^{-19} ) joules, we find: [ \nu = \frac{3.611 \times 10^{-19}}{6.626 \times 10^{-34}} \approx 5.45 \times 10^{14} \text{ Hz}. ] Thus, the frequency of the emitted radiation is approximately ( 5.45 \times 10^{14} ) Hz.


What symbol represents a photon?

A photon is typically represented by the symbol ( \gamma ) (gamma) in the context of electromagnetic radiation. However, in quantum mechanics and particle physics, it is often denoted by the symbol ( \hbar ) in conjunction with energy equations, where ( \hbar ) is the reduced Planck's constant. Additionally, the notation ( \nu ) (nu) is used to represent the frequency of a photon in various equations.