Claims
- 1. A recording medium having a porous ink-receiving layer containing alumina hydrate of boehmite structure formed on a base material, said ink-receiving layer formed of a dried coating of a liquid dispersion of said alumina hydrate onto said base material, an amount of said dried coating ranging from 2 to 60 g/m3, and said ink-receiving layer having a total pore volume ranging from 0.1 to 1.0 cm3/g, wherein microcrystals of said alumina hydrate are directed to be parallel to a plane direction of said ink-receiving layer at a parallelization degree of not less than 1.5, wherein the maximum length or the maximum diameter of said microcrystals ranges from 1 to 50 nm, and the parallelization degree is defined by an equation: Parallelizationdegree=Intensity ratio for mediumIntensity ratio for powderwherein Intensity ratiofor medium=Peak intensity for plane (020) of mediumPeak intensity for plane (120) of medium,andIntensity ratiofor powder=Peak intensity for plane (020) of powderPeak intensity for plane (120) of powder;wherein said peak intensities are measured for each of the planes of medium and powder from X-ray diffraction measurements of the ink-receiving layer of the recording medium, and a powder obtained by pulverizing the ink-receiving layer, respectively.
- 2. The recording medium according to one of claim 1, wherein said parallelization degree is not less than 2.
- 3. A recording medium having a porous ink-receiving layer containing alumina hydrate of boehmite structure formed on a base material, said ink-receiving layer formed of a dried coating of a liquid dispersion of said alumina hydrate onto said base material, an amount of said dried coating ranging from 2 to 60 g/m3, and said ink-receiving layer having a total pore volume ranging from 0.1 to 1.0 cm3/g, the crystallinity of said alumina hydrate in said porous ink-receiving surface layer ranging from 15 to 80, and microcrystals of the alumina hydrate being directed to be parallel to a plane direction of said ink-receiving layer at a parallelization degree of not less than 1.5, wherein the maximum length or the maximum diameter of said microcrystals ranges from 1 to 50 nm, and the parallelization degree is defined by an equation: Parallelizationdegree=Intensity ratio for mediumIntensity ratio for powderwherein Intensity ratiofor medium=Peak intensity for plane (020) of mediumPeak intensity for plane (120) of medium,andIntensity ratiofor powder=Peak intensity for plane (020) of powderPeak intensity for plane (120) of powder;wherein said peak intensities are measured for each of the planes of medium and powder from X-ray diffraction measurements of the ink-receiving layer of the recording medium, and a powder obtained by pulverizing the ink-receiving layer, respectively.
- 4. The recording medium according to one of claim 3, wherein the crystallinity of said alumina hydrate in said porous ink-receiving surface layer ranges from 20 to 70.
- 5. The recording medium according to one of claim 3, wherein said parallelization degree is not less than 2.
- 6. A recording medium for ink-jet recording having a porous ink-receiving layer containing alumina hydrate of boehmite structure formed on a base material, said ink-receiving layer formed of a dried coating of a liquid dispersion of said alumina hydrate onto said base material, an amount of said dried coating ranging from 2 to 60 g/m3, and said ink-receiving layer having a total pore volume ranging from 0.1 to 1.0 cm3/g, wherein microcrystals of said alumina hydrate are directed to be parallel to a plane direction of said ink-receiving layer at a parallelization degree of not less than 1.5, wherein the maximum length or the maximum diameter of said microcrystals ranges from 1 to 50 nm.
- 7. A recording medium for ink-jet recording having a porous ink-receiving layer containing alumina hydrate of boehmite structure formed on a base material, said ink-receiving layer formed of a dried coating of a liquid dispersion of said alumina hydrate onto said base material, an amount of said dried coating ranging from 2 to 60 g/m3, and said ink-receiving layer having a total pore volume ranging from 0.1 to 1.0 cm3/g, said alumina hydrate having crystallinity ranging from 15 to 80, and microcrystals of the alumina hydrate being directed to be parallel to a plane direction of said ink-receiving layer at a parallelization degree of not less than 1.5, wherein the maximum length or the maximum diameter of said microcrystals ranges from 1 to 50 nm.
Priority Claims (2)
Number |
Date |
Country |
Kind |
6-221496 |
Sep 1994 |
JP |
|
7-223694 |
Aug 1995 |
JP |
|
Parent Case Info
This application is a division of Application Ser. No. 08/528,208 filed Sep. 12, 1995, now abandoned.
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Entry |
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