Technical Field
[0001] The present invention relates to a color cathode-ray tube having conductive reflecting
films on the phosphor screen of the inner surface of a panel and a color selection
electrode, and a method of manufacturing the same.
Background Art
[0002] Fig. 1 shows a panel for a color cathode-ray tube. A phosphor screen 12 comprised
of red, green and blue phosphor stripes and carbon films filling gaps among them is
formed on the inner surface of a panel 11. Electron beams (not shown) are selectively
landed on the phosphor stripes of predetermined colors of the phosphor screen 12 through
a color selection electrode (not shown) to display a color image.
[0003] In order to reflect light, emerging from the phosphor screen 12 toward an electron
gun (not shown), toward the panel 11 so as to increase the brightness, and to stabilize
the potential of the phosphor screen 12, a conductive reflecting film 13 called a
metal back, which is made of aluminum having a high light reflectance and electron
transmittance, is formed on the phosphor screen 12.
[0004] The conductive reflecting film 13 made of aluminum also has high heat reflectance.
If the conductive reflecting film 13 is exposed, heat radiated by the color selection
electrode heated by bombardment of an electron beam is reflected by the conductive
reflecting film 13 to further heat the color selection electrode.
[0005] When the color selection electrode is heated and thermally expands, the correspondence
relationship between the color selection electrode and phosphor stripes fluctuates,
and the electron beam is landed on an incorrect portion of the phosphor screen 12
to decrease the color purity. For this reason, conventionally, a heat absorbing film
14 is formed on the conductive reflecting film 13. Heat radiated from the color selection
electrode is absorbed by the heat absorbing film 14. Heat reflection and radiation
from the conductive reflecting film 13 to the color selection electrode are suppressed,
thereby suppressing thermal expansion of the color selection electrode.
[0006] In a method of manufacturing a color cathode-ray tube having such a heat absorbing
film 14 according to the first related art, a conductive reflecting film 13 is formed
on a phosphor screen 12 by vapor deposition of aluminum in a vacuum of about 10
-2 to 10
-3 Pa (10
-4 to 10
-5 Torr). After that, a black aluminum film serving as the heat absorbing film 14 is
formed by vapor deposition of aluminum in a vacuum of 10 to 1 Pa (10
-1 to 10
-2 Torr) (Japanese Patent Publication No. 6247341).
[0007] In the second related art, a black aluminum film to serve as a heat absorbing film
14 is formed on a conductive reflecting film 13 by vacuum deposition using a mixed
pellet of manganese and aluminum (Japanese Patent Publication No. 718001). In the
third related art, a solution obtained by dissolving carbon in an organic solvent
is sprayed to form a carbon film serving as a heat absorbing film 14 on a conductive
reflecting film 13 (Japanese Patent Publication No. 5847813).
[0008] In the first related art described above, the vacuum degree in an evaporation system
must be changed between formation of the conductive reflecting film 13 and formation
of the heat absorbing film 14. A desired vacuum degree cannot be precisely obtained,
or oil in the exhaust pump may be oxidized, leading to variations in thickness and
quality of the heat absorbing film 14. Therefore, heat reflection and radiation from
the conductive reflecting film 13 to the color selection electrode cannot be suppressed
effectively, and mislanding of the electron beam onto the phosphor screen 12 due to
thermal expansion of the color selection electrode is difficult to suppress, waking
it difficult to manufacture a color cathode-ray tube in which a decrease in color
purity is small.
[0009] In the second related art, the start time of vapor deposition of manganese differs
from that of aluminum. It is difficult to form the heat absorbing film 14 having a
desired quality, and accordingly it is difficult to manufacture a color cathode-ray
tube in which a decrease in color purity is small. In the third related art, the carbon
film serving as the heat absorbing film 14 tends to separate easily due to its low
adhesion properties, and has large gas absorption properties. Nonuniformity occurs
in the image quality, and the cathode of the electron gun is damaged by a decrease
in vacuum degree in the color cathode-ray tube. Therefore, it is difficult to manufacture
a color cathode-ray tube having a uniform image quality and a long service life.
[0010] It is, therefore, an object of the present invention to provide a color cathode-ray
tube in which variations in thickness and quality of a heat absorbing film on a conductive
reflecting film are small so that a decrease in color purity is small, and a method
of manufacturing the same.
Disclosure of Invention
[0011] With a color cathode-ray tube and a method of manufacturing the same according to
the present invention, a sol containing a material, which is to form an oxide, in
a colloidal state is applied and baked to form a heat absorbing film made of the oxide
on a conductive reflecting film. The conductive reflecting film is generally formed
by vacuum deposition. Namely, a method of forming the conductive reflecting film and
a method of forming the heat absorbing film are different from each other, and a vacuum
evaporation system for forming the conductive reflecting film and an applying/baking
system for forming the heat absorbing film are two different systems.
[0012] Therefore, conditions under which these systems are operated need not be changed,
and a heat absorbing film having small variations in thickness and quality can be
formed on the conductive reflecting film. Reflection and radiation of heat from the
conductive reflecting film to a color selection electrode are suppressed effectively,
and mislanding of an electron beam onto a phosphor screen caused by thermal expansion
of the color selection electrode is suppressed, so that a color cathode-ray tube in
which a decrease in color purity is small can be manufactured.
[0013] As the material to font the oxide, if at least one member selected from a group consisting
of silicon, manganese, aluminum and tin antimonide is used, a heat absorbing film,
having large adhesion properties to prevent easy separation, and small gas absorption
properties, can be formed on the conductive reflecting film. Therefore, nonuniformity
does not occur easily in the image quality, and the cathode of the electron gun is
not easily damaged by a decrease in vacuum degree in the color cathode-ray tube. Therefore,
a color cathode-ray tube having a uniform image quality and a long service life can
be manufactured.
[0014] When a sol dispersed with fine carbon powder is used, a heat absorbing film having
a high heat absorption effect can be formed. Then, mislanding of the electron beam
to the phosphorus surface caused by thermal expansion of the color selection electrode
is suppressed further effectively, so that a color cathode-ray tube in which a decrease
in color purity is further small can be manufactured.
Brief Description of Drawing
[0015]
Fig. 1 is a side sectional view of a panel to which the present invention can be applied.
Best Mode for Carrying Out the Invention
[0016] An embodiment of the present invention will be described with reference to Fig. 1.
In this embodiment, in a panel 11, an organic intermediate film (not shown) is formed
on the surface of a phosphor screen 12 to smooth the surface of the phosphor screen
12. This panel 11 is placed on the base of a vacuum evaporation system, and aluminum
as the material of a conductive reflecting film 13 is set on the heater of the vacuum
evaporation system. The interior of the vacuum evaporation system is evacuated by
an oil rotation pump and an oil diffusion pump.
[0017] When the interior of the vacuum evaporation system reaches a vacuum degree of about
10
-2 to 10
-3 Pa (10
-4 to 10
-5 Torr), power is supplied to the heater to deposit aluminum by heat vapor deposition,
thereby forming the conductive reflecting film 13 on the phosphor screen 12. In this
vacuum vapor deposition, the conductive reflecting film 13 having a uniform thickness
can be formed, and the conductive reflecting film 13 can be formed within a short
period of time, i.e., at a low cost. After that, the panel 11 is held at a temperature
equal to or more than ordinary temperature in a heating furnace.
[0018] A sol containing at least one member selected from the group consisting of silicon,
manganese, aluminum and tin antimonide in a colloidal state is generated by hydrolysis
of an alkoxide. The panel 11 is removed from the heating furnace, and the sol is uniformly
applied to the conductive reflecting film 13 by spraying or the like. The panel 11
is heated in a beating furnace different from that described above to perform a baking
for evaporating the organic intermediate film to form the conductive reflecting film
13 in a specular state. This baking is performed simultaneously with a baking for
forming a heat absorbing film 14 made of an oxide of a material, in the applied sol,
which is in the colloidal state
[0019] Since the panel 11 is held at a temperature equal to or more than ordinary temperature
before applying the sol, the dispersion medium of the applied sol evaporates easily.
As a result, the heat absorbing film 14 having uniform thickness and quality can be
formed. If fine carbon powder is dispersed in a sol, particularly a sol containing
silicon in a colloidal state, a heat absorbing film 14 having a further high heat
absorption effect can be formed.
[0020] In the above embodiment, the material of the colloid is selected from silicon, manganese,
aluminum and tin antimonide. The material of the colloid can be selected from other
materials as far as it can form the heat absorbing film 14 with an oxide. In the above
embodiment, the sol is generated by hydrolysis of an alkoxide. However, the sol can
be generated by other methods.
Industrial Applicability
[0021] The present invention can be utilized in the manufacture of a color cathode-ray tube
by applying it to formation of a heat absorbing film onto a conductive reflecting
film on the phosphor screen on the inner surface of the panel.
1. A method of manufacturing a color cathode-ray tube, comprising the steps of:
applying a sol containing a material, which is to form an oxide, in a colloidal state
on a conductive reflecting film on a phosphor screen of an inner surface of a panel;
and
baking the sol to form a heat absorbing film made of the oxide on said conductive
reflecting film.
2. A method of manufacturing a color cathode-ray tube according to claim 1, wherein at
least one member selected from a group consisting of silicon, manganese, aluminum
and tin antimonide is used as the material.
3. A method of manufacturing a color cathode-ray tube according to claim 2, wherein the
sol dispersed with fine carbon powder is used.
4. A color cathode-ray tube in which a heat absorbing film made of an oxide is formed
on a conductive reflecting film on a phosphor screen of an inner surface of a panel
by applying and baking a sol containing a material, which is to form the oxide, in
a colloidal state.
5. A color cathode-ray tube according to claim 4, wherein the material is at least one
member selected from a group consisting of silicon, manganese, aluminum and tin antimonide.
6. A color cathode-ray tube according to claim 5, wherein the sol is dispersed with the
fine carbon powder.