FIELD OF THE INVENTION
[0001] The present invention relates to a binderless storage phosphor screen with vapour
deposited phosphors.
BACKGROUND OF THE INVENTION
[0002] A well known use of storage phosphors is in the production of X-ray images. In
US-A-3 859 527 a method for producing X-ray images with a photostimulable phosphor, which are incorporated
in a panel is disclosed. The panel is exposed to incident pattern-wise modulated X-ray
beam and as a result thereof the phosphor temporarily stores energy contained in the
X-ray radiation pattern. At some interval after the exposure, a beam of visible or
infra-red light scans the panel to stimulate the release of stored energy as light
that is detected and converted to sequential electrical signals which (are) be processed
to produce a visible image. For this purpose, the phosphor should store as much as
possible of the incident X-ray energy and emit as little as possible of the stored
energy until stimulated by the scanning beam. This is called "digital radiography"
or "computed radiography".
[0003] Since in the above described X-ray recording systems the X-ray conversion screens
are used repeatedly, it is important to provide them with an adequate topcoat for
protecting the phosphor containing layer from mechanical and chemical damage. This
is particularly important for photostimulable radiographic screens where screens are
often transported in a scanning module - wherein the stimulation of the stored energy
takes place - while not being not encased in a cassette but is used and handled as
such without protective encasing.
[0004] A protective layer can be coated onto the phosphor containing layer by directly applying
thereto a coating solution containing a film-forming organic solvent-soluble polymer
such as nitrocellulose, ethylcellulose or cellulose acetate or poly(meth)acrylic resin
and removing the solvent by evaporation. According to another technique a clear, thin,
tough, flexible, dimensionally stable polyamide film is bound to the phosphor layer
as described in published
EP-A-392 474.
[0005] According to a further known technique a protective overcoat is produced with a radiation-curable
composition. Use of a radiation curable coating as protective top layer in a X-ray
conversion screen is described e.g. in
EP-A-209 358 and
JP-A-86 176 900 and
US-A-4 893 021. For example, the protective layer comprises a UV cured resin composition formed
by monomers and/or prepolymers that are polymerised by free-radical polymerisation
with the aid of a photoinitiator. The monomeric products are preferably solvents for
the prepolymers used.
[0006] In
US-A-6 120 902 an intensifying screen is disclosed carrying a radiation cured protective layer and
having a determined unevenness. In
US-A-4 059 768 the use of polymeric beads containing fluoro-moieties in intensifying screens is
disclosed so as to have screens with good transportability. In
US-A-5 401 971 storage phosphor screens are disclosed comprising a protective layer coated from
a solution in butanone of a miscible blend of poly(vinylidene fluoride-co-tetrafluoroethylene)
and poly(1 to 2 carbonalkyl) methacrylate.
[0007] EP1158540 discloses a binderless phosphor screen with needle shaped crystals and a protective
layer thereon.
[0008] Although all screens disclosed in this prior art can yield X-ray images with good
quality, there is still a need for storage phosphor screens with increased physical
strength that can be transported in scanner without risk of jamming, can withstand
the wear and the tear of transporting and present no or low risk of electrical charging.
OBJECTS AND SUMMARY OF THE INVENTION
[0009] It is an object of the invention to provide a binderless stimulable phosphor screen
useful in an X-ray recording system with a strong protective layer and that can be
transported easily through a scanning module without causing jamming.
[0010] The above mentioned object is realised by providing a stimulable phosphor screen
having the specific features defined in claim 1. Specific features for preferred embodiments
of the invention are disclosed in the dependent claims.
[0011] Further advantages and embodiments of the present invention will become apparent
from the following description and drawings.
DETAILED DESCRIPTION OF THE INVENTION
[0012] By "vapour deposited phosphor" it is, throughout this text, meant a phosphor that
is deposited on a substrate by any method selected from the group consisting of thermal
vapour deposition, chemical vapour deposition, electron beam deposition, radio frequency
deposition and pulsed laser deposition. This vapour deposition is preferably carried
out under conditions as described in
EP-A-1 113 458.
[0013] When vapour deposited phosphor layers contain needle shaped phosphors separated by
voids as disclosed in, e.g., the above mentioned
EP-A-1 113 458, the phosphor layer is quite sensitive for mechanical impact. It is common practice
to apply a protective layer on top of the phosphor layer to enhance the strength,
but it was now found that the strength of the surface of the screen could even be
enhanced further if the protective layer was coated from a solution that has a viscosity
so that the coating solution of the protective layer seeps into the voids between
the phosphor needles. It was found that a very acceptable compromise between the strength
of the surface and the ease of recuperation of the phosphor could be achieved when
the solution of the protective layer was adapted so that , with phosphor needles having
a length, L , said protective layer fills said void for at most 0.10 times L. Preferably
the viscosity of the coating solution of the protective layer is adjusted so that
the protective layer fills the voids for at most 0.05 times L. The needed viscosity
depends on the width of the voids between the phosphor needles and is easily determined
by, e.g,. measuring it on an electronmicrosopic image of the screen.
[0014] As a coating composition of a protective coating, it is preferred to have a coating
solution containing fluorinated compounds so that the finished protective layer comprises
at least 1 % mol/mol of fluorinated moieties, wherein the viscosity of this composition
is adapted so that said protective layer fills the voids between phosphor needles
with a length, L, for at most 0.10 times L, and wherein the protective layer is prepared
by applying a radiation curable solution. The present invention thus incorporates
also a method for producing a binderless phosphor screen comprising the steps of :
- forming a vapour deposited storage phosphor layer on a support,
- applying a liquid radiation-curable coating composition on said phosphor layer and
- radiation curing said composition.
[0015] Very useful radiation curable compositions for forming a protective coating according
to the present invention contain as primary components: (1) a crosslinkable prepolymer
or oligomer or a mixture of crosslinkable prepolymers or oligomers, (2) a reactive
diluent monomer or mixture of reactive diluent monomers, and (3) in the case of an
UV curable formulation a photoinitiator. The usual amounts of these primary components
calculated on the total coating composition are 30-100% by weight for the prepolymer,
10-70% by weight for the reactive diluent and 0-10% by weight for the photoinitiator.
Optionally minor amounts (e.g. 5% by weight) of nonreactive organic solvent for the
prepolymer may be present.
[0016] Preferably the coating composition is so that composition the finished protective
layer comprises between 5 % and 50 % (mol/mol) of fluorinated moieties.
[0017] The fluorinated moieties can be present either in said crosslinkable prepolymer or
oligomer or in said reactive diluent monomer or in both. Preferably the fluorinated
moieties are added by using as diluent monomer a fluorinated monomer or by adding
a fluorinated monomer to the mixture of diluent monomers. Very useful fluorinated
monomers for adding fluorinated moieties to the protective layer of a storage panel
of this invention are, e.g., C
8F
17CH
2CH
2N(CH
3)COCH=CH
2, C
8F
17CH
2CH
2OCOCH=CH
2, C
6F
13C
2H
45COCH=CH
2, C
7F
15CH
2OCOC(CH
3)=CH
2, C
8F
17SO
2N(C
2H
5)C
2H
4NHCOCH=CH
2, (CF
3)
2CF(CF
2)
8C
2H
2SCOC(CH
3)=CH
2, C
8F
17SO
2N(CH
3)C
2H
4COOCH=CH
2, C
6F
13CH
2CH
2OOCC(=CH
2)COOCH
2CH
2C
6F
13, C
7F
15CH
2OOCCH=CHCOOCH
2C
7F
15, C
6F
13C
2H
4N(CH
2CH
2OH)COCO=CH
2, C
7F
15CON(C
2H
5)C
3H
6SCOC(CH
3)=CH
2, C
6F
13CH
2NHCOCO=CH
2, C
8F
17CH
2CH
2OCH=CH
2, (CF
3)
2CF (CF
2)
6CH
2CH(OH) CH
2OCOCH=CH
2, (CH
3)
2CFOC
2F
4OCOCH=CH
2, C
8F
17C
2H
4SO
2N(C
3H
7)C
2H
4OCOCH=CH
2 C
7F
15C
2H
4CONHC
4H
8OCOCH=CH
2

C
7F
15COOCH
2C(CH
3)
2CH
2OCOC(CH
3)=CH
2, C
8F
17 SO
2N(C
2H
5)C
4H
8OCOCH=CH
2, (C
3F
7)
2C
6H
3SO
2N(CH
3)C
2H
4OCOCH=CH
2, C
8F
17CF=CHCH
2N(CH
3)C
2H
4OCOCH=CH
2, C
8F
17SO
2N(C
2H
5)C
2H
4NHCOCH=CH
2, C
8F
17SO
2N(CH
3)C
2H
4OCOCH=CH
2, C
8F
17SO
2N(C
2H
5)C
2H
4OCOC(CH
3)=CH
2, C
8F
17SO
2N(CH
3)CH
2C
6H
4CH=CH
2, C
8F
17C
2H
4SO
2N(C
3H
7)C
2H
4OCOCH=CH
2, C
3F
17SO
2N(C
2H
5)C
4H
8OCOCH=CH
2, and (C
3F
7)
2C
6H
3SO
2N(CH
3)C
2H
4OCOCH=CH
2and combinations thereof.
[0018] As said above, the fluorinated monomers can be used as diluent monomer(s) or can
be used in combination with non-fluorinated diluent moieties. Very useful non-fluorinated
diluent monomers for use in this invention are : methyl (metha)acrylate, ethyl acrylate,
butyl acrylate, 2-ethylhexyl methacrylate, 2-hydroxyethyl acrylate, 2-hydroxyethyl
methacrylate, glycidyl methacrylate, n-hexyl acrylate, lauryl acrylate, tetrahydrofurfurylmethacrylate
and the like.
[0019] When the fluorinated moieties are present in the crosslinkable prepolymer or oligomer
then preferably a mixture of fluorinated and non-fluornitaed prepolymers is used.
Examples of fluorinated prepolymers - useful to bring fluorinated moieties in the
protective layer of this invention - are,e.g, fluorinated polyester acrylates wherein
the polyester includes fluorinated moieties brought in the polyester via fluorinated
di- or poly-ols or via fluorinated di- or poly-carboxylic acid. Very suitable fluorinated
diols and polyesters derived therefrom are those described in, e.g.,
US-A-4 957 986,
US-A-5 004 790 and
US-A-5 109 103. Examples of suitable diols are, e.g., 3,3,4,4,5,5,6,6-octafluorooctan-1,8-diol,
or 2,2,3,3-tetrafluoro-1,4-butanediol, most suitable diols are diols with formula
HOCH
2(CF
2)
nCH
2OH, wherein 2 ≤ n ≤ 10. Suitable fluorinated poly- or diacids are those corresponding
to the formula HOOC(CF
2)
nCOOH or the methylesters thereof. Also terephthalic acid carrying -O-(CH
2)
10-(CF2)
9-CF
3 as a side group can be used to produce a fluorinated prepolymer useful in a screen
of this invention. In both cases the polyester can then be functionalised with acrylates
as described in
EP-A-207 257. It is also possible to introduce the fluorinated moieties via the acrylation step;
when using polyesters as described in, e.g.,
EP-A-207 257, these are functionalised by using fluorinated acrylates, as those shown above.
[0020] When fluorinated prepolymers or oligomers are used, these can be mixed with non-fluorinated
prepolymers or oligomers. Examples of suitable non-fluorinated prepolymers for use
in a radiation-curable composition applied according to the present invention are
the following unsaturated polyesters, e.g. polyester acrylates; urethane modified
unsaturated polyesters, e.g. urethane-polyester acrylates. Liquid polyesters having
an acrylic group as a terminal group, e.g. saturated co-polyesters which have been
provided with acryltype end groups are described in published
EP-A-207 257.
[0021] When the radiation-curing is carried out with ultraviolet radiation (UV), a photoinitiator
is present in the coating composition to serve as a catalyst to initiate the polymerisation
of the monomers and their optional cross-linking with the pre-polymers resulting in
curing of the coated protective layer composition. A photosensitizer for accelerating
the effect of the photoinitiator may be present.
[0022] Photoinitiators suitable for use in UV-curable coating compositions belong to the
class of organic carbonyl compounds, for example, benzoin ether series compounds such
as benzoin isopropyl, isobutylether; benzil ketal series compounds; ketoxime esters;
benzophenone series compounds such as benzophenone, o-benzoylmethylbenzoate; acetophenone
series compounds such as acetophenone, trichloroacetophenone, 1,1-dichloroacetophenone,
2,2-diethoxyacetophenone, 2,2-dimethoxy-2-phenylacetophenone; thioxanthone series
compounds such as 2-chlorothioxanthone, 2-ethylthioxanthone; and compounds such as
2-hydroxy-2-methylpropiophenone, 2-hydroxy-4'-isopropyl-2-methylpropiophenone, 1-hydroxycyclohexylphenylketone;
etc.
[0023] A particularly preferred photoinitiator is 2-hydroxy-2-methyl-1-phenyl-propan-1-one
which product is marketed by E. Merck, Darmstadt, Germany under the trade name DRACUT
1173.
[0024] The above mentioned photopolymerisation initiators may be used alone or as a mixture
of two or more.
[0025] Examples of suitable photosensitisers are particular aromatic amino compounds as
described e.g. in
GB-A-1 314 556,
GB-A-1 486 911,
USA-4 255 513 and merocyanine and carbostyril compounds as described in
US-A-4 282 309. To the radiation-curable coating composition there may be added a storage stabiliser,
a colorant, and other additives, and then dissolved or dispersed therein to prepare
the coating liquid for the protective layer. In addition to these primary components
additives may be present, e.g. surfactants, solid lubricants, e.g. waxes, de-foamers
and plasticisers.
[0026] When so desired or needed, the protective layer of this invention can include spacing
particles for further increasing the transportability and adjusting the electrostatic
properties. Suitable spacing agents in the form of friction reducing polymer beads
selected from the group consisting of solid polystyrene, solid polyalkylene and a
solid organic fluorinated polymer. Preferably the spacing agents are beads incorporating
fluorinated moieties. Such beads have been described in
US-A-4 059 768. In the construction of the scanning apparatus used for reading storage phosphor
screens the trend is towards more and more compact apparatus, so that the distance
between the (moving) storage phosphor screen and mechanical (moving) parts of the
scanner can become very low and can become measured in 10 to 100 µm. When then a storage
phosphor screen with a protective layer according to this invention has protruding
beads it is important that the beads do not touch mechanical parts of the scanner
and that this is true even when the storage panel shows some wobble during transport
in the scanner. Therefore beads used as spacing particles in a storage phosphor screen
of this invention have preferably a volume median diameter, d
v50, so that 5 µm ≤ dv50 ≤ 25 µm and a numeric median diameter, d
n50, so that 1 ≤ d
v50/d
n50 ≤ 1.20. Further the beads are preferably adapted to the thickness, t, of the protective
layer on the storage panel of this invention so that and said polymeric beads have
a volume median diameter, d
v50, so that 1.25 ≤ d
v50/t ≤ 4.0.
[0027] The phosphor layer of a binderless storage phosphor screen according to this invention
can be prepared by vacuum deposition of the storage phosphor crystals on the substrate
as well as by combining (mixing) the ingredients for the storage phosphor (phosphor
precursors) and then evaporating this mixture so as to have the phosphor formed in
situ during evaporation.
[0028] The storage phosphor in a binderless storage phosphor screen according to this invention
can be any storage phosphor known in the art. Preferably the storage phosphor in a
binderless storage phosphor screen of this invention is an alkali metal phosphor Suitable
phosphors are, e.g., phosphors according to formula I :
M
1+X.aM
2+X'
2bM
3+X''
3:cZ (I)
wherein:
M1+ is at least one member selected from the group consisting of Li, Na, K, Cs and Rb,
M2+ is at least one member selected from the group consisting of Be, Mg, Ca, Sr, Ba,
Zn, Cd, Cu, Pb and Ni,
M3+ is at least one member selected from the group consisting of Sc, Y, La, Ce, Pr, Nd,
Pm, Sm, Eu, Gd, Tb, Dy, Ho, Er, Tm, Yb, Lu, Al, Bi, In and Ga,
Z is at least one member selected from the group Ga1+, Ge2+, Sn2+, Sb3+ and As3+, X, X' and X'' can be the same or different and each represents a halogen atom selected
from the group consisting of F, Br, Cl, I and 0 ≤ a ≤ 1, 0 ≤ b ≤ 1 and 0 < c ≤ 0.2.
Such phosphors have been disclosed in, e.g., US-A-5 736 069.
[0029] Highly preferred storage phosphors for use in a binderless phosphor screen of this
invention are CsX:Eu stimulable phosphors, wherein X represents a halide selected
from the group consisting of Br and Cl prepared by a method comprising the steps of
:
- mixing said CsX with between 10-3 and 5 mol % of an Europium compound selected from
the group consisting of EuX'2, EuX'3 and EuOX', X' being a member selected from the group consisting of F, Cl, Br and
I,
- firing said mixture at a temperature above 450 °C
- cooling said mixture and
- recovering the CsX:Eu phosphor.
[0030] Most preferably a CsBr:Eu stimulable phosphor, is used prepared by a method comprising
the steps of :
- mixing said CsX with between 10-3 and 5 mol % of an Europium compound selected from the group consisting of EuX'2, EuX'3 and EuOX', X' being a member selected from the group consisting of F, Cl, Br and
I,
- firing said mixture at a temperature above 450 °C
- cooling said mixture and
- recovering the CsX:Eu phosphor.
[0031] The phosphor layer of the binderless screen can be prepared by bringing the finished
phosphor on the support by any method selected from the group consisting of thermal
vapour deposition, chemical vapour deposition, electron beam deposition, radio frequency
deposition and pulsed laser deposition. It is also possible to bring the alkali metal
halide and the dopant together and depositing them both on the support in such a way
that the alkali metal phosphor is doped during the manufacture of the screen. Thus
the invention encompasses a method for manufacturing a phosphor screen containing
a CsX:Eu stimulable phosphor, wherein X represents a halide selected from the group
consisting of Br and Cl comprising the steps of :
- bringing multiple containers of said CsX and an Europium compound selected from the
group consisting of EuX'2, EuX'3 and EuOX', X' being a halide selected from the group consisting of F, Cl, Br and
I in condition for vapour deposition and
- depositing, by a method selected from the group consisting of, thermal vapour deposition,
chemical vapour deposition, electron beam deposition, radio frequency deposition and
pulsed laser deposition, both said CsX and said Europium compound on a substrate in
such a ratio that on said substrate a CsX phosphor, doped with between 10-3 and 5 mol % of Europium, is formed.
[0032] The deposition can proceed from a single container containing a mixture of the starting
compounds in the desired proportions. Thus the method encompasses further a method
for manufacturing a storage phosphor screen containing a CsX:Eu stimulable phosphor,
wherein X represents a halide selected from the group consisting of Br and Cl comprising
the steps of :
- mixing said CsX with between 10-3 and 5 mol % of an Europium compound selected from the group consisting of EuX'2, EuX'3 and EuOX', X' being a halide selected from the group consisting of F, Cl, Br and
I;
- bringing said mixture in condition for vapour deposition and
- depositing said mixture on a substrate by a method selected from the group consisting
of physical vapour deposition, thermal vapour deposition, chemical vapour deposition,
electron beam deposition, radio frequency deposition and pulsed laser deposition.
1. A binderless stimulable phosphor screen having a support and a vapour deposited phosphor
layer and a protective layer on top of said phosphor layer, wherein said protective
layer comprises at least 1 % (mol/mol) of moieties carrying fluor-atoms, characterised in that said vapour deposited phosphor is needle shaped and said phosphor needles have a
length, L and voids between them and wherein said protective layer fills said void
for at most 0.10 times L, wherein said protective layer is radiation cured.
2. A binderless stimulable phosphor screen according to claim 1, wherein said protective
layer fills said void for at most 0.05 times L.
3. A binderless stimulable phosphor screen according to claim 1 or 2, wherein said protective
layer comprises between 5 % mol/mol and 50 % mol/mol, both limits included of moieties
carrying fluor-atoms.
4. A binderless stimulable phosphor screen according to any of the preceding claims,
wherein said protective layer further comprises polymeric beads with a volume median
diameter, dv50, so that 5 µm ≤ do50 ≤ 25 µm and a numeric median diameter, dn50, so that 1 ≤ dv50/dn50 ≤ 1.20.
5. A binderless stimulable phosphor screen according to claim 3, wherein said protective
layer has a thickness, t, so that 1 µm ≤ t ≤ 10 µm and said polymeric beads have a
volume median diameter, dv50, so that 1.25 ≤ dv50/t ≤ 4.0.
6. A binderless stimulable phosphor screen according to any one of the preceding claims
wherein said needle-shaped phosphor crystals are crystals of an alkalimetal phosphor.
7. A binderless stimulable phosphor screen according to claim 5, wherein said alkali
metal phosphor is a CsX:Eu stimulable phosphor, wherein X represents a halide selected
from the group consisting of Br and Cl is used, prepared by a method comprising the
steps of :
- mixing said CsX with between 10-3 and 5 mol % of an Europium compound selected from the group consisting of EuX'2, EuX'3 and EuOX', X' being a member selected from the group consisting of F, Cl, Br and
I,
- firing said mixture at a temperature above 450 °C
- cooling said mixture and
- recovering the CsX:Eu phosphor.
1. Eine bindemittelfreie ausleuchtbare Leuchtstofffolie, die einen Träger, eine aufgedampfte
Leuchtstoffschicht und eine auf die Leuchtstoffschicht angebrachte Schutzschicht umfasst,
wobei die Schutzschicht zumindest 1% (Mol/Mol) fluorhaltige Gruppen enthält, dadurch gekennzeichnet, dass der aufgedampfte Leuchtstoff nadelförmig ist, die Leuchtstoffnadeln eine Länge L
und zwischen den Nadeln befindliche Hohlräume aufweisen und die Schutzschicht die
Hohlräume bis zu höchstens 0,10mal die Länge L füllen, wobei die Schutzschicht durch
Strahlung gehärtet wird.
2. Bindemittelfreie ausleuchtbare Leuchtstofffolie nach Anspruch 1, dadurch gekennzeichnet, dass die Schutzschicht die Hohlräume bis zu höchstens 0,05mal die Länge L füllt.
3. Bindemittelfreie ausleuchtbare Leuchtstofffolie nach Anspruch 1 oder 2, dadurch gekennzeichnet, dass die Schutzschicht zwischen 5% (Mol/Mol) und 50% (Mol/Mol), einschließlich beider
Grenzwerte, fluorhaltige Gruppen enthält.
4. Bindemittelfreie ausleuchtbare Leuchtstofffolie nach einem der vorstehenden Ansprüche,
dadurch gekennzeichnet, dass die Schutzschicht ferner Polymerperlen enthält, deren volumenmittlerer Durchmesser
dv50 einen solchen Wert hat, dass 5 µm ≤ dv50 ≤ 25 µm, und deren zahlenmittlerer Durchmesser dn50 einen solchen Wert hat, dass 1 ≤ dv50/dn50 ≤ 1,20.
5. Bindemittelfreie ausleuchtbare Leuchtstofffolie nach Anspruch 3, dadurch gekennzeichnet, dass die Schutzschicht eine solche Stärke t hat, dass 1 µm ≤ t ≤ 10 µm, und die Polymerperlen
einen solchen volumenmittleren Durchmesser dv50 aufweisen, dass 1,25 ≤ dv50/t ≤ 4,0.
6. Bindemittelfreie ausleuchtbare Leuchtstofffolie nach einem der vorstehenden Ansprüche,
dadurch gekennzeichnet, dass die nadelförmigen Leuchtstoffkristalle Kristalle aus einem Alkalimetall-Leuchtstoff
sind.
7. Bindemittelfreie ausleuchtbare Leuchtstofffolie nach Anspruch 5,
dadurch gekennzeichnet, dass der Alkalimetall-Leuchtstoff ein ausleuchtbarer CsX:Eu-Leuchtstoff ist, in dem X
ein Halogenid aus der Gruppe bestehend aus Br und Cl ist und der nach einem die folgenden
Schritte umfassenden Verfahren hergestellt ist :
- Vermischen des CsX mit zwischen 10-3 und 5 mol-% einer Europiumverbindung aus der Gruppe bestehend aus EuX'2, EuX'3 und EuOX', wobei X' ein Element aus der Gruppe bestehend aus F, Cl, Br und I ist,
- Erhitzen des Gemisches auf eine Temperatur über 450°C,
- Abkühlung des Gemisches und
- Zurückgewinnung des CsX:Eu-Leuchtstoffes.
1. Un écran à luminophore stimulable sans liant comprenant un support, une couche luminescente
déposée en phase gazeuse et une couche protectrice appliquée sur la couche luminescente,
ladite couche protectrice contenant au moins 1% (mole/mole) de groupes fluorés, caractérisé en ce que le luminophore déposé en phase gazeuse est un luminophore à cristaux aciculaires,
que les cristaux aciculaires du luminophore présentent une longueur L et des vides
situés entre les cristaux aciculaires et que la couche protectrice remplit les vides
jusqu'à un maximum de 0,10 fois la longueur L, ladite couche protectrice étant durcie
par rayonnement.
2. Ecran à luminophore stimulable sans liant selon la revendication 1, caractérisé en ce que la couche protectrice remplit les vides jusqu'à un maximum de 0,05 fois la longueur
L.
3. Ecran à luminophore stimulable sans liant selon la revendication 1 ou 2, caractérisé en ce que la couche protectrice contient entre 5% (mole/mole) et 50% (mole/mole), y compris
les deux valeurs limites, de groupes fluorés.
4. Ecran à luminophore stimulable sans liant selon l'une quelconque des revendications
précédentes, caractérisé en ce que la couche protectrice contient en outre des perles d'un polymère dont le diamètre
moyen en volume dv50 répond à la formule 5 µm ≤ dv50 ≤ 25 µm et dont le diamètre moyen en nombre dn50 répond à la formule 1 ≤ dv50/dn50 ≤ 1,20.
5. Ecran à luminophore stimulable sans liant selon la revendication 3, caractérisé en ce que l'épaisseur t de la couche protectrice répond à la formule 1 µm ≤ t ≤ 10 µm et que
le diamètre moyen en volume dv50 des perles d'un polymère répond à la formule 1,25 ≤ dv50/t ≤ 4,0.
6. Ecran à luminophore stimulable sans liant selon l'une quelconque des revendications
précédentes, caractérisé en ce que les cristaux aciculaires du luminophore sont des cristaux d'un luminophore à base
d'un métal alcalin.
7. Ecran à luminophore stimulable sans liant selon la revendication 5,
caractérisé en ce que le luminophore à base d'un métal alcalin est un luminophore stimulable à base de
CsX:Eu, où X représente un halogénure choisi parmi le groupe composé de Br et Cl,
ledit luminophore stimulable à base de CsX:Eu étant préparé selon un procédé comprenant
les étapes ci-après :
- le mélange du CsX avec 10-3 à 5 moles % d'un composé d'europium choisi parmi le groupe composé de EuX'2, EuX'3 et EuOX', où X' représente un élément choisi parmi le groupe composé de F, Cl, Br
et I,
- le chauffage du mélange à une température supérieure à 450°C,
- le refroidissement du mélange et
- la récupération du luminophore à base de CsX:Eu.