White Dwarf
What is white Dwarf?
A white dwarf, also called a degenerate
dwarf, is a stellar core remnant composed mostly
of electron-degenerate matter. A white dwarf is very dense: its mass is comparable to that of the Sun, while its volume is comparable to that of Earth. A white dwarf's faint luminosity comes
from the emission of stored thermal energy; no
fusion takes place in a white dwarf. The nearest known white dwarf
is Sirius B, at 8.6 light
years, the smaller component of the Sirius binary star. There are
currently thought to be eight white dwarfs among the hundred star systems
nearest the Sun.
White dwarfs are thought
to be the final evolutionary state of stars whose mass is not
high enough to become a neutron star. After the hydrogen-fusing period
of a main-sequence star of low or medium mass ends, such a
star will expand to a red giant during which it fuses helium to carbon and oxygen in
its core by the triple-alpha process. If a red giant has
insufficient mass to generate the core temperatures required fusing carbon
(around 1 billion K), an inert mass of carbon and oxygen will build up at
its center. After such a star sheds its outer layers and forms a planetary
nebula, it will leave behind a core, which is the remnant white dwarf. Usually,
white dwarfs are composed of carbon and oxygen. If the mass of the progenitor
is between 8 and 10.5 solar masses, the core temperature will be
sufficient to fuse carbon but not neon, in which case an
oxygen–neon–magnesium white dwarf may form. Stars of
very low mass will not be able to fuse helium; hence, a helium white dwarf may
form by mass loss in binary systems.
A white dwarf is very
hot when it forms, but because it has no source of energy, it will gradually
cool as it radiates its energy. This means that its radiation, which initially
has a high color temperature, will lessen and redden with time.
Over a very long time, a white dwarf will cool and its material will begin to
crystallize, starting with the core. The star's low temperature means it will
no longer emit significant heat or light, and it will become a cold black
dwarf.
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