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Interstellar communication: The colors of optical SETI

DOI:10.1007/s12036-018-9566-x 期刊:Journal of Astrophysics and Astronomy 出版年份:2018 更新时间:2025-09-09 09:28:46
摘要: It has recently been argued from a laser engineering point of view that there are only a few magic colors for optical SETI. These are primarily the Nd:YAG line at 1,064 nm and its second harmonic (532.1 nm). Next best choices would be the sum frequency and/or second harmonic generation of Nd:YAG and Nd:YLF laser lines, 393.8 nm (near Fraunhofer CaK), 656.5 nm (Hα) and 589.1 nm (NaD2). In this paper, we examine the interstellar extinction, atmospheric transparency and scintillation, as well as noise conditions for these laser lines. For strong signals, we ?nd that optical wavelengths are optimal for distances d (cid:2) kpc. Nd:YAG at λ = 1,064 nm is a similarly good choice, within a factor of two, under most conditions and out to d (cid:2) 3 kpc. For weaker transmitters, where the signal-to-noise ratio with respect to the blended host star is relevant, the optimal wavelength depends on the background source, such as the stellar type. Fraunhofer spectral lines, while providing lower stellar background noise, are irrelevant in most use cases, as they are overpowered by other factors. Laser-pushed space?ight concepts, such as “Breakthrough Starshot”, would produce brighter and tighter beams than ever assumed for OSETI. Such beamers would appear as naked eye stars out to kpc distances. If laser physics has already matured and converged on the most ef?cient technology, the laser line of choice for a given scenario (e.g., Nd:YAG for strong signals) can be observed with a narrow ?lter to dramatically reduce background noise, allowing for large ?eld-of-view observations in fast surveys.
作者: MICHAEL HIPPKE
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To determine the best wavelength for optical SETI by examining interstellar extinction, atmospheric transparency and scintillation, as well as noise conditions for specific laser lines.

Optical wavelengths are optimal for distances up to about 1 kpc, with Nd:YAG at 1,064 nm being a similarly good choice under most conditions and out to about 3 kpc. For weaker transmitters, the optimal wavelength depends on the background source. Fraunhofer spectral lines are generally irrelevant due to being overpowered by other factors. Future surveys could use narrow line filters centered at optimal wavelengths for large field-of-view observations.

The study is limited by the assumptions about the technological level of potential extraterrestrial civilizations and the current understanding of laser physics. The analysis also depends on the accuracy of the models used for interstellar extinction and atmospheric conditions.

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