PRINTABLE BI-LUMINESCENT PIGMENT FOR SECURITY INK FORMULATION AND PROCESS FOR THE PREPARATION THEREOF
20190111724 ยท 2019-04-18
Inventors
- Gupta Bipin Kumar (New Delhi, IN)
- Kumar Pawan (New Delhi, IN)
- Dhar Ajay (New Delhi, IN)
- Aswal Dinesh Kumar (New Delhi, IN)
Cpc classification
C09K11/7794
CHEMISTRY; METALLURGY
International classification
Abstract
A new concept of bi-luminescent security pigments includes lanthanide doped rare-earth compound with rare-earth free compound and its ink formulation. The unique features of this bi-luminescent security ink is that it emits two different colors when it is illuminated by using two different excitation wavelengths. This important feature makes it most suitable for printing of security codes or QR codes/security images on currency, important official documents, food and medicinal packaging etc. The prospective use of this bi-luminescent security ink provides a ground-breaking opening for easily printable, highly stable and unclonable bi-luminescent security codes for anti-counterfeiting applications.
Claims
1. A bi-luminescent security pigment comprising lanthanide doped rare-earth compound with rare-earth free compound in the ratio ranging between 1:3 to 1:5.
2. The pigment as claimed in claim 1, wherein lanthanide doped rare-earth compound used is Gd.sub.1yVO.sub.4:Eu.sub.y.sup.3+ wherein y is 0.29-0.39.
3. The pigment as claimed in claim 1, wherein rare-earth free compound used is Zn.sub.1xS:Cu.sub.x.sup.2+wherein x is 0.01-0.03.
4. The pigment as claimed in claim 1, wherein said pigment exhibit the green emission in the range of 500-580 nm centered at 526 nm at excitation in the range of 265-428 nm, centered at 338 nm.
5. The pigment as claimed in claim 1, wherein said pigment exhibit red emission peaks at 592 nm, 607 nm, 613 nm, 617 nm and 696 nm at excitation in the range of 234-350 nm, centered at 316 nm.
6. The pigment as claimed in claim 1, wherein said pigment exhibit quantum efficiencies for green and red emissions are 68, and 85%, respectively.
7. The pigment as claimed in claim 1, wherein the lifetimes of bi-luminescent pigment for green and red emissions are 395.77 s and 345.79 s, respectively.
8. The pigment as claimed in claim 1,wherein printed pattern prepared from the ink formulation exhibit prominent red and green colour emission under UV lamp of 254 nm and 365 nm, respectively.
9. A process for the preparation of bi-luminescent security pigment comprising the steps of: i. preparing the solution of ZnCl.sub.2 and Na.sub.2S separately in water; ii. adding 1-3% by weight N-cetyl-N,N,N trimethylammonium bromide (CTAB) in the ZnCl.sub.2 solution as prepared in step (i) with continuous stirring at the rate in the range of of 400 to 500 rpm for period in the range of 50 to 70 minute at temperature in the range of 25 to 35 C. to obtain a solution; iii. dropwise adding Na.sub.2S solution as prepared in step (i) in the solution as obtained in step (ii) with constant stirring at the rate in the range of 400 to 500 rpm followed by centrifuging at the rate in the range of 5000 to 6000 rpm to obtain milky white precipitate; iv. washing and drying the precipitate as obtained in step (iii) at temperature in the range of 70 to 80 C. to obtain ZnS powder; v. mixing the ZnS powder as obtained in step (iv) with CuCl.sub.2 followed by heating at a temperature in the range of 700 to 750 C. for period in the range of 50 to 70 minute to obtain Zn.sub.1xS:Cu.sub.x wherein x is 0.01-0.03; vi. mixing Gd.sub.2O.sub.3, V.sub.2O.sub.5 and Eu.sub.2O.sub.3 with HNO.sub.3 to form homogeneous mixture; vii. heating the mixture as obtained in step (vi) at temperature in the range of 800 to 900 C. for period in the range of 6 to 7 hours followed by cooling at temperature in the range of 25 to 35 C. to obtain Gd.sub.1yVO.sub.4:Eu.sub.y wherein y is 0.29-0.39; viii. mixing Zn.sub.1xS:Cu.sub.x as obtained in step (v) and Gd.sub.1yVO.sub.4:Eu.sub.y as obtained in step (vii) separately in ethanol to form Zn.sub.1xS:Cu.sub.x and Gd.sub.1yVO.sub.4:Eu.sub.y slurries; ix. mixing the slurries as obtained in step (viii) in a ratio ranging between 15:1 to 2:1 by volume followed by drying at temperature in the range of 50 to 60 C. for period in the range of 22 to 24 hours to obtain the bi-luminescent pigment.
10. An ink formulation comprising Bi-luminescent security pigment for anti-counterfeiting application.
11. A process for the preparation of ink formulation as claimed in claim 10 , wherein said process comprising the steps of: i. dispersing the bi-luminescent pigment as claimed in claim 1 in polyvinyl chloride with stirring followed by ultra-sonication for period in the range of 30 to 45 minutes to obtain the Ink formulation.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030] The patent or application file contains at least one drawing executed in color. Copies of this patent or patent application publication with color drawing(s) will be provided by the Office upon request and payment of the necessary fee.
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DETAILED DESCRIPTION OF THE INVENTION
[0041] Present invention provides a printable bi-luminescent pigment having high quantum yield for security ink formulation. However, several strategies like admixing of two different downshift materials together or augmented activator in a single host lattice were tried for the development of bi-luminescent ink but each suffered either from the luminescence quenching or low quantum yield because of the conversion of radiative transitions to non-radiative transitions due to coupling of multiple rare-earth activator ions. These drawbacks were overcome by the introduction of a totally new and innovative concept of using highly bi-luminescent materials by adopting the strategy of combinatory admixing of lanthanide doped rare-earth compounds with rare-earth free compounds easily available at low cost for ink formulation which has capability of dual mode excitations in UV wavelengths and emits red and green colours.
EXAMPLES
[0042] Following examples are given by way of illustration and therefore should not be construed to limit the scope of the invention.
Example 1
Synthesis of Zn.SUB.0.97.S: Cu.SUB.0.03..SUP.2+ phosphor
[0043] The synthesis of Zn.sub.0.97S: Cu.sub.0.03.sup.2+ phosphor is shown in schematic given in
[0044] Further, the white powder of 0.940 gm ZnS was mixed with 0.051 gm CuCl.sub.2 in agate mortar by taking their stoichiometric amount according to empirical formula shown above which is further heated at a temperature 700 C. for 1 hour in box furnace to obtain Zn.sub.0.97S: Cu.sub.0.03.sup.2+ phosphor.
Example 2
Synthesis of Zn.SUB.0.98.S: Cu.SUB.0.02..SUP.2+ phosphor
[0045] The synthesis of Zn.sub.0.98S: Cu.sub.0.02.sup.2+ phosphor is shown in schematic given in
[0046] Further, the white powder of 0.95 gm ZnS was mixed with 0.03 gm CuCl.sub.2 in agate mortar by taking their stoichiometric amount which is further heated at a temperature 700 C. for 1 hour in box furnace to obtain ZnS: Cu.sup.2+ phosphor.
Example 3
Synthesis of Zn.SUB.0.99.S: Cu.SUB.0.01..SUP.2+ phosphor
[0047] The synthesis of Zn.sub.0.99S: Cu.sub.0.01.sup.2+ phosphor is shown in schematic given in
[0048] Further, the white powder of 0.965 gm ZnS was mixed with 0.017 gm CuCl.sub.2 in agate mortar by taking their stoichiometric amount according to empirical formula shown above which is further heated at a temperature 700 C. for 1 hour in box furnace to obtain Zn.sub.0.99S: Cu.sub.0.01.sup.2+ phosphor.
Example 4
Synthesis of Gd.SUB.0.63.VO.SUB.4.:Eu.SUB.0.37..SUP.3+ phosphor
[0049] The synthesis of GdVO.sub.4:Eu.sup.3 phosphor is show in
Example 5
Synthesis of Gd.SUB.0.71.VO.SUB.4.:Eu.SUB.0.29..SUP.3+ phosphor
[0050] The synthesis of GdVO.sub.4:Eu.sup.3 phosphor is show in
Example 6
Synthesis of Gd.SUB.0.66.VO.SUB.4.:Eu.SUB.0.34..SUP.3+ phosphor
[0051] The synthesis of GdVO.sub.4:Eu.sup.3 phosphor is show in
Example 7
[0052] Synthesis of Gd.sub.0.61VO.sub.4:Eu.sub.0.39.sup.3+ phosphor
[0053] The synthesis of GdVO.sub.4:Eu.sup.3 phosphor is show in
Example 8
[0054] Synthesis of Bi-Luminescent Pigment
[0055] The synthesis of bi-luminescent pigments is show in
Example 9
Synthesis of Bi-Luminescent Pigment
[0056] The synthesis of bi-luminescent pigments is show in
Example 10
Synthesis of Bi-Luminescent Pigment
[0057] The synthesis of bi-luminescent pigments is show in
Example 11
Characterization of Bi-Luminescent Pigment
[0058] (i) X-ray diffraction (XRD) [0059]
Example 12
Bi-Luminescent Security Ink Formulation and Screen Printing Technique
[0066] Polyvinyl chloride (PVC) gold medium was used to uniformly disperse the as-synthesized bi-luminescent pigment. Initially, 200 mg of bi-luminescent pigment was dispersed in 50 ml PVC gold medium while vigorous stirring with glass rod and then mixed ultrasonically at 45 kHz for 30 mins to obtain the ink. To print different patterns on black papers, a standard screen printing technique was used. The schematic for screen printing technique of bi-luminescent pigment is shown in
[0067] The
ADVANTAGES OF THE INVENTION
[0068] Cost effective & Environment friendly. [0069] Bi-luminescent security ink, excitable by two different wavelength sources, as a unique anti-counterfeiting feature. [0070] Invention provides an indigenous development at an industrial scale of bi-luminescent security pigments for ink formulation. [0071] The bi-luminescent security ink technology, with unique security feature in the currency notes, important documents, data etc. [0072] It is easily printable with commercial available screen printing technique.