The present invention is related to a method for preparation of gold nanoparticles, particularly to a method for preparation of gold nanoparticles through pulsed laser without adding a surfactant during the preparation.
Gold nanoparticles, also called nanogold or colloidal gold, may be readily accumulated to be a gold clump in air, so as generally to be prepared in a solution. The gold nanoparticles smaller than 100 nm in size are usually allowed to turn the solution intense red, while the gold nanoparticles larger than 100 nm in size are then allowed to turn the solution blue or violet. Moreover, the gold nanoparticles are widely researched due to their specific optics features, electronic features, molecular recognition features and good biocompatibility thereof, and are at present applied to the fields of electron microscope, electronics, materials science, nano science and technology, biochemical sensing, optical detection, drug delivery, catalyzed reaction, disease treatment, electronic engineering, template induced crystallization and etc.
Further, the way for the production of gold nanoparticles is disclosed as U.S. Pat. No. 8,858,676, entitled “Nanoparticle production in liquid with multiple-pulse ultrafast laser ablation”, comprising a pulsed laser, a vibration mirror and a gold clump in a solution, the pulsed laser emitting a pulsed beam toward the vibration mirror, and the pulsed beam being reflected by the vibration mirror to the gold clump, so as to ablate the gold clump into nanoparticles having the average diameter of less than 100 nm.
However, it is less simple for laser ablation to control the shape and size of the gold nanoparticles, with the gold nanoparticles having larger particle diameters formed thereby. Therefore, how to reduce the particle diameters and uniforming the size of the gold nanoparticles is truly an important issue.
It is the main object of the present invention to solve the problem of larger particle diameters and non-uniform size of the gold nanoparticles.
For achieving the above object, the present invention provides a method for preparation of gold nanoparticles in aqueous solution through pulsed laser, comprising the steps of:
preparing an aqueous solution including HAuCl4.3H2O and H2O2, followed by allowing a catalytic light source to emit into the aqueous solution for catalysis, such that a plurality of gold nanoparticles are formed in the aqueous solution, the catalytic light source being a pulsed laser.
For achieving the above object, the present invention further provides a method for growing gold nanoparticles on porous silicon substrate in aqueous solution through pulsed laser, comprising the steps of:
preparing an aqueous solution including HAuCl4.3H2O and H2O2, follow by placing a porous silicon substrate into the aqueous solution and finally allowing a catalytic light source to emit into the aqueous solution for catalysis, such that a plurality of gold nanoparticles are grown on the surface of the porous silicon substrate, the catalytic light source being a pulsed laser.
To sum up, it's unnecessary to add a surfactant during the preparation in the present invention, and H2O2 used in the present invention is a weak oxidizing agent to be used in conjunction with the pulsed laser for catalysis, in such a way that the gold nanoparticles of smaller particle diameters and more uniform size are generated in the aqueous solution or on the surface of the porous silicon substrate.
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.
The detailed description and technical solution with respect to the present invention will be now described in conjunction with the drawings as follows.
Referring to
Step S1: preparing an aqueous solution including chloroauric acid aqueous solution (HAuCl4.3H2O) and hydrogen peroxide (H2O2), in which the concentration of HAuCl4.3H2O in the aqueous solution is in the range from 0.25 mM to 0.33 mM, preferably 0.33 mM, and
Step S2: allowing a catalytic light source to emit into the aqueous solution for catalysis, such that a plurality of gold nanoparticles are formed in the aqueous solution, the catalytic light source being a pulsed laser (Nd:YAG). The wavelength of the pulsed laser is in the range from 480 nm to 585 nm, with the strength thereof being 0.31 W to 3.9 W, in which the wavelength of the pulsed laser is 532 nm, the strength thereof is 0.35 W, and duration time of irradiation of the aqueous solution is in the range from 2.5 mins to 7.5 mins in this embodiment.
Subsequently, referring to
Subsequently, referring to
Step P1: preparing an aqueous solution including HAuCl4.3H2O and H2O2, in which the concentration of HAuCl4.3H2O in the aqueous solution is in the range from 0.25 mM to 0.33 mM, preferably 0.33 mM,
Step P2: placing a porous silicon substrate into the aqueous solution, the porous silicon substrate being made by hydrofluoric acid corrosion, electrochemical corrosion or the like, and
Step P3: allowing a catalytic light source to emit into the aqueous solution for catalysis, such that a plurality of gold nanoparticles are grown on the surface of the porous silicon substrate, the catalytic light source being a pulsed laser. The wavelength of the pulsed laser is in the range from 480 nm to 585 nm, with the strength thereof being 0.31 W to 3.9 W, in which the wavelength of the pulsed laser is 532 nm, the strength thereof is 0.35 W, and duration time of irradiation of the aqueous solution is in the range from 2.5 mins to 7.5 mins in this embodiment.
Subsequently, referring to
To sum up, it's unnecessary to add a surfactant during the preparation in the present invention, and H2O2 used in the present invention is a weak oxidizing agent to be used in conjunction with the pulsed laser for catalysis, in such a way that the gold nanoparticles are generated in the aqueous solution or on the surface of the porous silicon substrate, while these gold nanoparticles are of smaller particle diameters and more uniform size.
Number | Date | Country | Kind |
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105132692 A | Oct 2016 | TW | national |
Number | Name | Date | Kind |
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8858676 | Liu et al. | Oct 2014 | B2 |
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Number | Date | Country | |
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20180099260 A1 | Apr 2018 | US |