A century of science in America : $b with special reference to the American Journal of Science, 1818-1918
History
A century of science in America : $b with special reference to the American Journal of Science, 1818-1918
American journal of science; Science -- United States -- History
_Spectroscopy._—Early in the nineteenth century Fraunhofer had observed
that the solar spectrum is crossed by a large number of dark lines.
Their presence was unexplained until in 1859 Kirchhoff and Bunsen showed
“that a colored flame, the spectrum of which contains bright sharp
lines, so weakens rays of the color of these lines when they pass
through it, that dark lines appear in place of bright lines as soon as
there is placed behind the flame a light of sufficient intensity, in
which the lines are otherwise absent.” For intra-atomic oscillators must
have the natural frequency of the radiation which they emit, and
consequently resonance will take place when they are exposed to rays of
this frequency coming from an outside source, and selective absorption
ensue. By comparing the bright lines in the spectra of metallic vapors
made luminous by a gas flame with the dark lines in the sun’s spectrum
these investigators showed that many of the common terrestrial elements
exist in the sun. The interest in spectroscopy grew rapidly. The
excellent diffraction gratings made by Rutherfurd were succeeded by the
superior concave gratings of Rowland. In 1877 Draper (=14=, 89, 1877)
announced the discovery of the bright lines of oxygen in the solar
spectrum, but his interpretation of his photographs has not been
corroborated by the work of later investigators. Langley (=11=, 401,
1901), by the aid of his newly invented bolometer, succeeded in
detecting the emission of energy from the sun in the infra-red in
amounts far exceeding that contained in the visible spectrum. In 1842
Doppler drew attention to the fact that motion of the source should
cause a displacement of the spectral lines, the shift being to the blue
if the light is approaching and to the red if it is receding, and a few
years later Fizeau suggested the application of Doppler’s principle to
the measurement of the velocity of a star moving in the line of sight.
Thus the spectroscope has been able to supply one of the deficiencies of
the telescope, and the two together are sufficient to reveal all
components of stellar motion. When spectra formed by light from the
sun’s limb and from its center are compared, the same effect reveals the
rotation of the sun about its axis. (C. S. Hastings, =5=, 369, 1873; C.
A. Young, =12=, 321, 1876.)
_Further Evidence of the Electron._—In 1845 Faraday discovered a
rotation of the plane of polarization when light passes in the direction
of the lines of force through a piece of glass placed between the poles
of an electromagnet. Examination of the spectrum from a glowing vapor
situated between the poles of a magnet, however, failed to reveal any
effect of the field. The latter problem was attacked anew by Zeeman[160]
in 1896, and with the aid of the improved appliances of modern science
he succeeded in detecting a broadening of the lines. Later experiments
with more powerful apparatus resolved these broadening lines into
several components.
Public-domain text, read in full here on John Shaqi.
Reviews
Reviews
No reviews yet
Be the first to share your thoughts on this work.
Elsewhere in the archive
Join the Discussion
Join the discussion
Sign in to leave a comment or review.
Sign InorCreate an account