1. Field of the Invention
The present invention relates to an electroless plating method, and more particularly, to a preparation of modified organic core materials and metallic shell composite microspheres.
2. Description of the Prior Art
Conventional methods of electroless plating in general perform the following procedure:
Step 1: Roughening: using chromic acid to wash the surface of polymeric materials;
Step 2: Sensitizing: adding stannous chloride or copper chloride to sensitize the surface of polymeric materials;
Step 3: after covering the surface of polymeric materials with Sn, Cu, etc. ions, adding the precursor solution of noble metal (e.g., palladium chloride); and
Step 4: depositing the metal Ni, Ag, Au, Co, Cu, etc. by electroless plating.
Moreover, another conventional method for electroless plating can be performed the following procedure:
Step 1: Polystyrene microspheres adsorb an ion absorbent;
Step 2: adding the aforesaid polystyrene microspheres into palladium sulfate solution to let the surface of polymeric microspheres cover with palladium ions;
Step 3: reducing the palladium ions to palladium particles to form a palladium layer on the polystyrene microspheres;
Step 4: adding the polystyrene microspheres into the sodium succinate solution to form a slurry; and
Step 5: adding the nickel sulfate solution with a specific Na/Ni concentration, pH and temperature drop by drop into the slurry, so as to form a Ni layer with 100 nm thickness on the polystyrene microspheres.
Therefore, the main disadvantage of the conventional methods of electroless plating is the heavy and complicated procedure. In order to form a metal layer on the surface of polymeric microspheres, it need to be roughened, sensitized activated and adsorbed palladium on the surface of microspheres. What if any procedure couldn't properly execute, the quality of the final products won't be satisfying the requirement.
Accordingly, in view of the conventional methods of electroless plating still having shortcomings and drawbacks, the inventor of the present application has made great efforts to make inventive research thereon and eventually provided a preparation of modified organic core materials and metallic shell composite microspheres.
The primary objective of the present invention is to provide a preparation of modified organic core materials and metallic shell composite microspheres, in which, the surface zeta potential of an organic substrate can attract the opposite zeta potential of the polyelectrolyte and form a polyelectrolyte layer so as to modify the surface of organic core materials. Moreover, the polyelectrolyte layer could attract a first metal ions, particles or complexes added later in suitable condition such that the surface of organic core materials could be metallized and covered with a first metal layer. Furthermore, the organic core materials could be covered with at least one surface metal layer. The first metal layer can be modified by second metal layer with redox-transmetalation® technology to obtain multi-metal layers organic-metallic composite structure.
Accordingly, to achieve the primary objective of the present invention, the inventor of the present invention provides a preparation of modified organic core materials and metallic shell composite microspheres, comprising a plurality of steps of:
(1) adding an organic substrate 1 into a solvent to obtain a slurry;
(2) adding a first polyelectrolyte 2 into the slurry, wherein the zeta potential of the first polyelectrolyte 2 is opposite to the surface zeta potential of the organic substrate 1;
(3) adding a second polyelectrolyte 3 into the slurry, wherein the zeta potential of the second polyelectrolyte 3 is opposite to the zeta potential of the first polyelectrolyte 2;
(4) adding a first metal compound 4 into the slurry; and
(5) adding a reductant 5 into the slurry for making the first metal compound 4 be metalized, so as to form a first metal layer 6 on the surface of the organic substrate 1.
The invention as well as a preferred mode of uses and advantages thereof will be best understood by referring to the following detailed description of an illustrative embodiment in conjunction with the accompanying drawings, wherein:
To more clearly describe a preparation of modified organic core materials and metallic shell composite microspheres according to the present invention, embodiments of the present invention will be described in detail with reference to the attached drawings hereinafter.
With reference to
Firstly, the method proceeds to steps (S01) and (S02) for adding an organic substrate 1 into a solvent to obtain a slurry and then adding a first polyelectrolyte 2 into the slurry; in which, particularly, the zeta potential of the first polyelectrolyte 2 is opposite to the surface zeta potential of the organic substrate 1. After finishing the step (S02), step (S03) is next executed for adding a second polyelectrolyte 3 into the slurry, wherein the zeta potential of the second polyelectrolyte 3 is opposite to the zeta potential of the first polyelectrolyte 2. Subsequently, the method executes step (S04) for adding a first metal compound 4 into the slurry; and eventually, the method proceeds to step (S05) for adding a reductant 5 into the slurry, so as to make the first metal compound 4 be metalized, and then a first metal layer 6 is formed on the surface of the organic substrate 1.
Thus, through above descriptions, the basic steps of the preparation of modified organic core materials and metallic shell composite microspheres have been introduced completely and clearly. Moreover, as shown in
Herein, it needs to further explain that, the organic substrate 1 in aforesaid surface metallization method is an organic material with polyester functional group, i.e., the organic substrate 1 is covered with at least one surface metal layer.
Besides, the first polyelectrolyte 2 and the second polyelectrolyte 3 are selected from the group consisting of: Poly (allylamine hydrochloride) (PAH), Poly (diallyldimethylammonium chloride) (PDDA), Poly (acrylic acid) (PAA), and Poly (styrene sulfonate) (PSS). Moreover, the reductant 5 in aforesaid preparation of modified organic core materials and metallic shell composite microspheres is selected from the group consisting of: Dimethylamine borane (DMAB) and NaBH4.
Thus, through the descriptions, the preparation of modified organic core materials and metallic shell composite microspheres of the present invention has been completely introduced and disclosed; next, a variety of experiment data will be presented for proving the practicability and performance of this preparation.
A plurality of PMMA (Polymethylmethacrylate) microspheres having a diameter ranged from 200 nm to 8 μm are provided as organic core microspheres (the organic substrate), wherein the average diameter of the PMMA microspheres is 4 μm. Moreover, Poly (allylamine hydrochloride), i.e., the PAH, are used as a cationic polyelectrolyte; and oppositely, Poly (acrylic acid), i.e., the PAA, is used as an anionic polyelectrolyte.
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Furthermore, an FIB-SEM (Focused Ion Beam Scanning Electron Microscopy) is used for observing the cross-sectional interface image of the microspheres of PMMA-Ni composite microspheres. Please refer to
After finishing the surface metallization of the organic core microspheres, the organic core microspheres are subsequently pressed into tablets by hot pressing method (press 30s with 110 MPa at 130° C.) and then the volume resistivity of the organic tablets are measured by four point probe resistivity measurements. Please refer to
Furthermore, according to following Eq. (1), it is able to know that an ion exchange would occur spontaneously through redox-transmetalation. The redox-transmetalation can oxidize the Ni layer on the surface of an organic material and make Au (III) reduce to Au (0), so as to form a continuous Au layer covering the Ni layer on the surface of the organic core microspheres.
3Ni(s)+2AuCl4−=3Ni2++2Au(s)+8Cl(aq)− Eq. (1)
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PMMA-Ni—Au compound in different pH circumstances.
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Besides, for determining the surface metallization of the PMMA-Ni—Au composite microspheres, a magnetic effect experiment is executed. Please refer to
The above description is made on embodiments of the present invention. However, the embodiments are not intended to limit scope of the present invention, and all equivalent implementations or alterations within the spirit of the present invention still fall within the scope of the present invention.