Preparation method for gold nanoparticles based on functionalized ionic liquid
11241739 · 2022-02-08
Assignee
Inventors
Cpc classification
B22F9/24
PERFORMING OPERATIONS; TRANSPORTING
B22F2304/054
PERFORMING OPERATIONS; TRANSPORTING
B22F2202/17
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
The present invention provides a preparation method for gold nanoparticles based on functionalized ionic liquid. The method comprises synthesizing a functionalized ionic liquid, 3-(12-bromo-dodecyl)-1-(3-pyrrole propyl)-imidazole bromide, as a stabilizer for synthesizing gold nanoparticles, adjusting the concentration of the ionic liquid and the dosage of the reducing agent, thereby successfully preparing the icosahedral gold nanoparticles, and characterizing the morphology thereof by TEM, XRD and SEM. In the present invention, the method employed for preparing the stabilizer is simple, non-toxic, harmless and pollution-free, moreover the preparation of gold nanoparticles by aqueous phase has the advantages of mild conditions, short reaction time, simple operation, green and pollution-free, and belongs to the environment-friendly preparation.
Claims
1. A preparation method for gold nanoparticles, characterized in comprising the following steps of: S1, a step of seeded synthesis of gold nanoparticles comprising: putting 0.42 mL of 0.002 mol/L HAuCl4 solution into 0.951 mL of secondary distilled water and blending to obtain a first mixture, then adding 1.25 mL of 0.20-0.40 mol/L 3-(12-bromo-dodecyl)-1-(3-pyrrol-propyl)-imidazole bromide solution and 0.5 mL of new preparative 0.01 mol/L NaBH4 solution to the first mixture, thereby providing a second mixture and standing the second mixture at 27° C. for 2-4 hours, thereby obtaining gold nanoparticle seeds, and storing the gold nanoparticle seeds at 4° C. for later use; S2, a step of synthesis of gold nanoparticles comprising: sequentially putting 2.6 mL of secondary distilled water, 1.67 mL of 2×10−3 mol/L HAuCl4 solution, 3.96 mL of 0.4-0.6 mol/L 3-(12-bromo-dodecyl)-1-(3-pyrrol-propyl) imidazole bromide solution and 54 μL of 0.1 mol/L ascorbic acid solution into a test tube and obtaining a third mixture, and stirring the third mixture vigorously for 2 minutes, lastly adding 100-150 μL of the gold nanoparticle seeds prepared in S1 to the third mixture and then stirring the third mixture for 20-40 seconds, and then standing the third mixture for 12-24 hours at 25-30° C., thereby obtaining a gold nanoparticles solution; and S3, centrifuging the gold nanoparticles solution obtained in S2 to collect gold nanoparticle solids, then washing the gold nanoparticle solids with water and centrifuging again to collect the gold nanoparticle solids.
2. A preparation method for the gold nanoparticles of the claim 1, characterized in that the concentration of the 3-(12-bromo-dodecyl)-1-(3-pyrrol-propyl)-imidazole bromide solution in S1 is 0.25 mol/L.
3. A preparation method for the gold nanoparticles of the claim 1, characterized in that the concentration of the 3-(12-bromo-dodecyl)-1-(3-pyrrol-propyl)-imidazole bromide solution in S2 is 0.50 mol/L.
4. A preparation method for the gold nanoparticles of the claim 1, characterized in that 120 μL of gold nanoparticle seeds prepared in S1 is added in S2.
5. A preparation method for the gold nanoparticles of the claim 1, characterized in that the standing temperature in S2 is kept at 27° C. for 24 h to obtain the gold nanoparticles solution.
6. A preparation method for the gold nanoparticles of the claim 1, wherein the step of centrifuging the gold nanoparticles solution comprises centrifuging at a rate of 12000 r/min for 8-10 minutes to divide the gold nanoparticles solution into an upper liquid layer and a lower solid layer; the upper liquid layer is removed and the lower solid layer comprises the gold nanoparticle solids collected from the centrifugation step; and the step of washing comprises dispersing into water the gold nanoparticle solids collected from the centrifugation step; and the step of centrifuging again comprises centrifuging the dispersion of water and gold nanoparticle solids obtained from the washing step to obtain the gold nanoparticle solids.
Description
BRIEF DESCRIPTION OF FIGURES
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SPECIFIC EMBODIMENTS
(9) In order to make the purpose, technical solutions and advantages of the present invention more clear and obvious, the present invention will be further illustrated in detail in combination with accompanying figures and embodiments hereinafter. It should be understood that the specific embodiments illustrated herein are only to explain the present invention but not to limit, unless otherwise specified, the reagents, methods and equipment employed in the present invention are conventional reagents, methods and devices in the technical field.
(10) The present invention is further illustrated in combination with the specific implementation method below.
Embodiment 1
(11) As shown in
(12) Dissolving 20 mg of aforesaid synthesized 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide ionic liquid in the deuterochloroform to be detected by 1HNMR. 1HNMR(400 MHz, D2O)δ: 8.396(1H,d), 7.37(2H,d), 6.69(2H,d), 6.08(2H,d), 4.08(2H,t), 4.03(2H,t), 3.98(2H,t), 3.03(2H,t), 2.32(2H,t), 2.00(2H,t), 1.135(18H,t).
(13) The results thereof are shown as
Embodiment 2
(14) A preparation method for the gold nanoparticles based on the aforesaid functionalized ionic liquid, 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide, comprising following steps of S1, seeded synthesis of gold nanoparticles: putting 0.42 mL of 0.002 mol/L HAuCl4 solution into 0.951 mL of secondary distilled water and blending to obtain a mixture, then adding 1.25 mL of 0.3 mol/L 3-(12-bromo-dodecyl)-1-(3-pyrrol-propyl)-imidazole bromide solution and 0.5 mL of new preparative 0.01 mol/L NaBH4 solution to the mixture for standing at 27° C. for 2 hours, thereby obtaining the gold nanoparticle seeds, and storing the gold nanoparticle seeds at 4° C. for later use; S2, synthesis of gold nanoparticles: sequentially putting 2.6 mL of secondary distilled water, 1.67 mL of 2×10−3 mol/L HAuCl4 solution, 3.96 mL of 0.4˜0.6 mol/L 3-(12-bromo-dodecyl)-1-(3-pyrrol-propyl) imidazole bromide solution and 54 μL of 0.1 mol/L ascorbic acid solution into the test tube and obtaining a mixture, and stirring the mixture vigorously for 2 minutes, lastly adding 120 μL of the gold nanoparticle seeds prepared in S1 to the mixture and stirring, after stirring the mixture for 20 seconds and standing the mixture for 24 hours at 27° C., thereby obtaining a gold nanoparticles solution.
(15) S3, centrifuging the gold nanoparticles solution obtained in S2 at a rate of 12000 r/min for 10 minutes to divide the solution into two layers, removing the upper liquid layer, dispersing the lower solid layer to the water again and centrifuging the obtained gold nanoparticles again at a rate of 12000 r/min for 10 minutes to collect the gold nanoparticle solids, and after three times' centrifugation repeating washing the gold nanoparticles with water.
(16) In the present invention, the ultraviolet-visible spectrum is employed to analyze the light absorption data of icosahedral gold nanoparticles in the range of 400˜800 nm, in which the icosahedral gold nanoparticles are regulated and prepared by 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide ionic liquid, and the specific steps are to disperse the gold nanoparticle solids prepared aforesaid to the water and put small amount of the gold nanoparticles solution in a 1 cm quartz cuvette. The results thereof are shown as
(17) Further the transmission electron microscopy is employed to detect the morphology and particle size of the prepared gold nanoparticles and the results thereof are shown as
(18) Further the X-ray diffraction is employed to record the crystal diffraction pattern of gold nanoparticles and the results thereof are shown as
Embodiment 3
(19) The present embodiment provides a preparation method for gold nanoparticles based on aforesaid functionalized ionic liquid, 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide. Compared with the embodiment 2, the difference of the present embodiment lies in the NaBH4 solution added in S1 is stand for 4 hours at 27° C. to obtain the gold nanoparticles.
(20) The rest are all the same as the embodiment 2.
(21) Further the transmission electron microscopy is employed to detect the morphology and particle size of the prepared gold nanoparticles and the results thereof are shown as
Embodiment 4
(22) The present embodiment provides a preparation method for gold nanoparticles based on aforesaid functionalized ionic liquid, 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide. Compared with the embodiment 2, the difference of the present embodiment lies in the concentration of the 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide solution in S1 is 0.4 mol/L.
(23) The rest are all the same as the embodiment 2.
(24) Further the transmission electron microscopy is employed to detect the morphology and particle size of the prepared gold nanoparticles and the results show the morphology of the gold nanoparticles prepared in the present embodiment is icosahedral, the average particle size of the gold nanoparticles is 30 nm, and the gold nanoparticles exhibit a monodispersed state in the solution.
Embodiment 5
(25) The present embodiment provides a preparation method for gold nanoparticles based on aforesaid functionalized ionic liquid, 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide. Compared with the embodiment 2, the difference of the present embodiment lies in the concentration of the 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide solution in Step 2 is 0.6 mol/L
(26) The rest are all the same as the embodiment 2.
(27) Further the transmission electron microscopy is employed to detect the morphology and particle size of the prepared gold nanoparticles and the results show the morphology of the gold nanoparticles prepared in the present embodiment is icosahedral, the average particle size of the gold nanoparticles is 30 nm, and the gold nanoparticles exhibit a monodispersed state in the solution.
Embodiment 6
(28) The present embodiment provides a preparation method for gold nanoparticles based on aforesaid functionalized ionic liquid, 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide. Compared with the embodiment 2, the difference of the present embodiment lies in 150 μL of the gold nanoparticle seeds prepared in S1 is added in S2.
(29) The rest are all the same as the embodiment 2.
(30) Further the transmission electron microscopy is employed to detect the morphology and particle size of the prepared gold nanoparticles and the results show the morphology of the gold nanoparticles prepared in the present embodiment is icosahedral, the average particle size of the gold nanoparticles is 30 nm, and the gold nanoparticles exhibit a monodispersed state in the solution.
Embodiment 7
(31) The present embodiment provides a preparation method for gold nanoparticles based on aforesaid functionalized ionic liquid, 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide. Compared with the embodiment 2, the difference of the present embodiment lies in the standing time in S2 is 2 hours
(32) The rest are all the same as the embodiment 2.
(33) Further the transmission electron microscopy is employed to detect the morphology and particle size of the prepared gold nanoparticles and the results show the morphology of the gold nanoparticles prepared in the present embodiment is icosahedral, the average particle size of the gold nanoparticles is 30 nm, and the gold nanoparticles exhibit a monodispersed state in the solution.
Comparative Embodiment 1
(34) The present embodiment provides a preparation method for gold nanoparticles based on aforesaid functionalized ionic liquid, 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide. Compared with the embodiment 2, the difference of the present embodiment lies in the concentration of the 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide solution in S1 is 0.5 mol/L.
(35) The rest are all the same as the embodiment 2.
(36) Further the transmission electron microscopy is employed to detect the morphology and particle size of the prepared gold nanoparticles and the results are shown as
Comparative Embodiment 2
(37) The present embodiment provides a preparation method for gold nanoparticles based on aforesaid functionalized ionic liquid, 3-(12-bromo-dodecyl)-1-(3-pyrrole-propyl)-imidazole bromide. Compared with the embodiment 2, the difference of the present embodiment lies in the standing temperature in S2 is kept at 35° C. for 24 h.
(38) The rest are all the same as the embodiment 2.
(39) Further the transmission electron microscopy is employed to detect the morphology and particle size of the prepared gold nanoparticles and the results are shown as
(40) After a large number of experiments, it is found that to change any of the parameters or methods in the experimental process of the present invention, the morphology and size of lastly prepared gold nanoparticles will be affected, indicating that only under the parameters of each step optimized by the present invention, the experimental results of the present invention could be achieved.
(41) To sum up, in the present invention the imidazole group is substituted by dibromoalkanes to form a 3-(12-bromo-dodecyl)-1-(3-pyrrol-propyl)-imidazole bromide ionic liquid with one side chain thereof comprising bromine atom and the anion being bromine ion, in which the halogen ions play an important role in the regulation of gold nanoparticle morphology; The present invention employs the chloroauric acid as a precursor, the 3-(12-bromo-dodecyl)-1-(3-pyrrol-propyl)-imidazole bromide ionic liquid as a morphology regulator, and the ascorbic acid as a reducing agent. By means of adjusting the concentration of the Ionic liquid and the dosage of the reducing agent to certain amounts, and optimizing the reaction time, the icosahedral gold nanoparticles with uniform size is successfully prepared by seed growth method. The present invention provides a new idea for the functionalized ionic liquid as a stabilizer to modify the morphology of the noble metal nanoparticles and perform group modification on the surface of the noble metal nanoparticles, moreover the preparation method of the present invention is simple, green and environmentally friendly, and indicates a new development direction for the synthesis and regulation of metal morphology.
(42) The foresaid are only illustrative embodiments of the present invention and are not restrictions on any form or substance of the invention. It should be pointed out that a number of improvements and additions made by those skilled in the art without departing from the method of the present invention are also considered to be the scope of protection of the present invention; Those skilled in the art, without departing from the spirit and scope of the present invention, make any equivalent changes in modification and evolution by making use of the above disclosed technical contents will be the equivalent embodiments of the present invention; At the same time, any equivalent changes, modifications and evolutions to the above embodiments in accordance with the essential techniques of the present invention will still fall within the scope of the invention.