One of the problems to be solved in using lasers for deep space
communication, oddly enough, is that of pointing accuracy. Since the
beam of laser energy is narrow, it would be possible for the radiation
to miss the earth altogether and be lost entirely unless the laser were
pointed at the receiver with extreme precision. Aiming a gun at a target
50 yards away is one thing; aiming a laser from an unmanned spacecraft
100 million miles away is quite another. It is believed, however, that
present techniques can cope with the problem.
Another peculiarity of laser communication is that it will probably be
accomplished faster and more readily in space than here on earth.
Powerful though laser light may be, it is light and is therefore impeded
to some extent by our atmosphere even under good conditions. Data
transmissions of 20 and 30 miles have already been accomplished in good
weather with lasers.
But if you have ever tried to force a searchlight beam or shine
automobile headlights through heavy fog, rain, or snow, you will
appreciate the magnitude of the problem under these conditions. The use
of infrared frequencies helps to some extent, since infrared is somewhat
more penetrating, but the poor-weather problem is a serious one.
A possible solution is the use of “light pipes”, similar to the wave
guides already in use for certain microwave applications over short
distances. But as often happens, new developments create new needs; how,
for example, can we get the laser beam to stay centered in the pipe and
follow curves? A series of closely spaced lenses, about 1000 per mile,
probably would accomplish this, but too much light would be lost by
scattering from the many lens surfaces.
Scientists are experimenting with a new kind of “lens”, one that uses
variations in the density of gases to focus and guide the beam
automatically. Since there are no surfaces in the path of the light
beam, and since the gas is transparent and free of turbulence, the laser
beam is not appreciably weakened or scattered as it travels through the
pipe.
[Illustration: Figure 31 _Laser light beam being guided through a
“light pipe” by a gas “lens”. Heating coil (lower left) or mixture
of gases (lower right) are two possible ways of maintaining proper
density gradient in the gas._]
Figure 31 shows how the gas focusing principle might be used to guide a
beam through a curving pipe. The shading represents the density of the
gas. Several means have been developed to keep the gas denser in the
center than around the outside. When the pipe curves, the light beam
starts moving off the axis of the pipe. The gas then acts like a prism,
deflecting the light beam in the direction of the curvature of the
“prism”.
Public-domain text, read in full here on John Shaqi.
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