Hierarchical porous material and the preparation method thereof
10052613 ยท 2018-08-21
Assignee
Inventors
Cpc classification
B01J23/688
PERFORMING OPERATIONS; TRANSPORTING
B01J37/348
PERFORMING OPERATIONS; TRANSPORTING
C23C18/145
CHEMISTRY; METALLURGY
B01J35/393
PERFORMING OPERATIONS; TRANSPORTING
B01J35/30
PERFORMING OPERATIONS; TRANSPORTING
B01J23/02
PERFORMING OPERATIONS; TRANSPORTING
International classification
B01J23/02
PERFORMING OPERATIONS; TRANSPORTING
B01J37/34
PERFORMING OPERATIONS; TRANSPORTING
C25D5/00
CHEMISTRY; METALLURGY
C23C18/14
CHEMISTRY; METALLURGY
B01J35/00
PERFORMING OPERATIONS; TRANSPORTING
B01J23/68
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A hierarchical porous material contains primary pore aggregates. The primary pore aggregates combine to form the secondary pore aggregates. The secondary pore aggregates connect to each other formed the hierarchical porous material. There are primary pores on the primary pore aggregates wherein the diameter of primary pore is 5-500 nm. There are secondary pores on the secondary pore aggregates wherein the diameter of secondary pore is 1-5 m. The hierarchical porous material is used as oxygen reduction reaction (ORR) catalysts or photocatalysts having a significantly improved catalytic activity.
Claims
1. A hierarchical porous material, comprising: a plurality of primary pore aggregates, each formed by aggregating a plurality of nanoparticles; a plurality of secondary pore aggregates, each formed by aggregating primary pore aggregates; and a complex of the secondary pore aggregates formed by aggregating secondary pore aggregates, wherein primary pores on said primary pore aggregates have a diameter in a range of 5-500 nm, and secondary pores on said secondary pore aggregates have a diameter in a range of 1-5 m, wherein said hierarchical porous material is a metallic material, a metal/metal oxide composite, or a composite of metal/corresponding metal salt precipitate.
2. The hierarchical porous material of claim 1, wherein each of the plurality of nanoparticles is 20-300 nm in diameter, and each of said primary pore aggregates is 0.5-5 m in diameter.
3. The hierarchical porous material of claim 1, wherein said hierarchical porous material is a metal selected from silver, copper, zinc, iron, aluminum, magnesium, lead, and alloys thereof.
4. The hierarchical porous material of claim 1, wherein said hierarchical porous material comprises a non-precious metal coated by a precious metal, wherein said precious metal is platinum, palladium, gold, or iridium, said non-precious metal is silver, copper, zinc, iron, aluminum, magnesium, lead, or alloys thereof, and a mass percentage of the precious metal in the hierarchical porous material is 1-99%.
5. The hierarchical porous material of claim 1, wherein said hierarchical porous material is the metal/metal oxide composite, and said metal in the composite is selected from group consisting of silver, copper, zinc, iron, aluminum, magnesium, lead, and alloys thereof, and said metal oxide in the composite is selected from the group consisting of manganese oxide, iron oxide, cobalt oxide, nickel oxide, copper oxide, zinc oxide, and mixtures thereof, and the mass percentage of the metal oxide in the hierarchical porous material is 1-99%.
6. The hierarchical porous material of claim 1, wherein said hierarchical porous material is the metal/corresponding metal salt precipitate composite, said metal in the composite is selected from the group consisting of silver, copper, zinc, iron, aluminum, magnesium, lead, and alloys thereof, and said metal salt precipitate is selected from the group consisting of silver chloride, copper carbonate, zinc sulfide, ferrous phosphate, aluminum phosphate, magnesium phosphate, and lead sulfide, and a mass percentage of the metal salt precipitate in the hierarchical porous material is 1-99%.
7. A preparation method of the hierarchical porous material of claim 1, comprises the following steps, (1) oxidizing a metal material in an electrolyte; said electrolyte contains an anion that is capable to form a precipitant with a cation of said metal material, and the electrolyte contains no metal cation that is capable to react with said metal material; and (2) reducing the oxidized metal material acquired from step (1).
8. The preparation method of the hierarchical porous material of claim 7, wherein said step (2) is a complete reduction that produces the metallic material.
9. The preparation method of the hierarchical porous material of claim 7, wherein said hierarchical porous material is the non-precious metal coated with precious metal, and the preparation method further comprises: replacing the reduced metal material with a precious metal by exchanging in a solution of a salt of the precious metal; or sputtering the precious metal on a surface of the reduced metal material.
10. The preparation method of the hierarchical porous material of claim 7, wherein a concentration of anions in said electrolyte of step (1) is >1 mM, and said anion is select from the group consisting of PO.sub.4.sup.3, S.sup.2, CO.sub.3.sup.2, Cl.sup., Br.sup., I.sup., and the mixtures thereof, and a concentration of cations in said electrolyte of step (1) is >1 mM, wherein said cations is select from the group consisting of Na.sup.+, K.sup.+, H.sup.+, and mixtures thereof.
11. The preparation method of the hierarchical porous material of claim 7, wherein said reduction in step (2) is electroreduction, photoreduction, electron beam reduction, irradiation reduction, or laser reduction.
12. The preparation method of the hierarchical porous material of claim 7, wherein, in step (1), said metal material serves as a working electrode, a counter electrode is platinum, graphite rod, silver, or gold, a reference electrode is silver/silver chloride, mercury/mercuric oxide, or saturated calomel electrode, and the electrolyte contains one or more halogen is select from the group consisting of Cl.sup., Br.sup., and I.sup..
13. The preparation method of the hierarchical porous material of claim 7, said precious metal salt solution is select from the group consisting of chloroplatinic acid, chloroauric acid, chloropalladic acid, chloroiridic acid, platinum chloride, palladium chloride, iridium chloride, platinum nitrate, palladium nitrate, and mixtures thereof, the concentration of said precious metal salt solution is 1 mM-1 M, and a reaction time is 10 s-2 h.
14. The preparation method of the hierarchical porous material of claim 13, said hierarchical porous material is the metal/metal oxide composite, the preparation method further comprises electrodepositing a metal oxide on the surface of the reduced metal material.
15. The preparation method of the hierarchical porous material of claim 14, wherein the electrolyte used in the said metal oxide electrodeposition method is select from the group consisting of manganese nitrate, ferric nitrate, cobalt nitrate, nickel nitrate, copper nitrate, zinc nitrate, manganese acetate, ferric acetate, cobalt acetate, nickel acetate, copper acetate, zinc acetate, and mixtures thereof; the counter electrode is platinum, graphite rod, silver or gold, a reference electrode is silver/silver chloride, mercury/mercuric oxide, or saturated calomel electrode, and the metal oxide on the surface of said hierarchical porous silver is select from the group consisting of manganese oxide, ferric oxide, cobalt oxide, nickel oxide, copper oxide, zinc oxide, and mixtures thereof.
16. The preparation method of the hierarchical porous material of claim 15, wherein said electrodeposition is carried out by cyclic voltammetry, linear sweep voltammetry, pulse voltammetry, potentiostatic method, galvanostatic method, or combinations thereof.
17. The preparation method of the hierarchical porous material of claim 7, wherein said step (2) is an incomplete reduction that produces the metal/corresponding metal salt precipitate composite.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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EMBODIMENTS
(6) The present invention may be further illustrated by the following non-limiting examples.
Comparative Example 1
(7) Commercial 20% Pt/C catalyst. (Johnson Matthey, USA)
Comparative Example 2
(8) Ag rotating disk electrode. (Circular, 5 mm in diameter, Tianjin Aidahengsheng technology CO., LTD)
Comparative Example 2
(9) Pt rotating disk electrode. (Circular, 5 mm in diameter, Tianjin Aidahengsheng technology CO., LTD)
Example 1
(10) The solution contains 0.005 M NaCl and 0.1 M NaOH act as the electrolyte, a silver bulk serves as a working electrode, the platinum foil works as a counter electrode, a mercury/mercuric oxide electrode is used as reference electrode, treat the working electrode at 1.0V (vs. Reversible Hydrogen Electrode (RHE)) for 2 h, then the hierarchical porous silver can be obtained by electroreduction the working electrode at 0.15 V in 0.1 M NaOH electrolyte for 5 min.
Example 2
(11) The solution contains 0.005 M NaCl and 0.1 M NaOH act as the electrolyte, a silver bulk electrode serves as a working electrode, the platinum foil work as a counter electrode, a mercury/mercuric oxide electrode is used as a reference electrode, treat the working electrode at 1.0 V (Vs. RHE) for 2 h, then the hierarchical porous silver can be obtained by electroreduction the working electrode at 0.15 V in 0.1 M NaOH electrolyte for 5 min, then dip the obtained hierarchical porous Ag in 50 mM chloroplatinic acid for 10 min and obtain the platinum coated silver hierarchical porous materials after washing.
Example 3
(12) The solution contains 0.005 M NaCl and 0.1 M NaOH act as the electrolyte, a silver bulk electrode serves as the working electrode, the platinum foil work as the counter electrode, a mercury/mercuric oxide electrode is used as the reference electrode, treat the working electrode at 1.0 V (Vs. RHE) for 2 h, then the hierarchical porous silver can be obtained by electroreduction the working electrode at 0.15 V in 0.1 M NaOH electrolyte for 5 min. Then the MnOx/Ag hierarchical porous can be obtained by electrodeposition MnOx on the hierarchical porous silver in the solution contains 50 mM manganous nitrate electrolyte, the platinum foil serves as the counter electrode and the silver/silver chloride electrode is used as the reference electrode during the electrodeposition process.
Example 4
(13) The solution contains 0.005 M NaI and 0.1 M NaOH act as the electrolyte, a silver bulk electrode serves as working electrode, the platinum foil works as the counter electrode, a mercury/mercuric oxide electrode is used as the reference electrode, treat the working electrode at 1.0 V (Vs. RHE) for 8 h, then the Ag/AgI hierarchical porous material can be obtained by electroreduction the working electrode at 0.5 V in 0.1 M NaOH electrolyte for 11 s.
Example 5
(14) The solution contains 0.001 mM NaCl act as the electrolyte, a silver foil serves as the working electrode, the graphite rod works as the counter electrode, and a silver/silver chloride electrode is used as the reference electrode, treat the working electrode at 1.5 V (Vs. RHE) for 100 h, then the hierarchical porous silver can be obtained by exposing the working electrode in 200,000 lux light for 1 h.
Example 6
(15) The solution contains 0.1 M HCl act as the electrolyte, a silver foil serves as working electrode, the graphite rod works as the counter electrode, a saturated calomel electrode is used as the reference electrode, treat the working electrode at 2.0 V (Vs. RHE) for 1 h, then the hierarchical porous silver can be obtained by exposing the working electrode in 1 W laser for 1 h.
Example 7
(16) The solution contains 2 M NaBr and 0.1 M HBr act as the electrolyte, a silver rod serves as the working electrode, the silver foil works as the counter electrode, a saturated calomel electrode is used as the reference electrode, treat the working electrode at 5.0 V (Vs. RHE) for 1 s, then the hierarchical porous silver can be obtained by exposing the working electrode in magnesium target X-ray for 1 h.
Example 8
(17) The solution contains saturated NaBr act as the electrolyte, sintered silver powder serves as working electrode, the gold foil works as the counter electrode, and a silver/silver chloride electrode is used as reference electrode, treat the working electrode at 10.0 V (Vs. RHE) for 60 s, then the hierarchical porous silver can be obtained by bombard the working electrode by electron gun beam for 40 min.
Example 9
(18) The solution contains 0.001 mM NaI act as the electrolyte, a silver foil serves as the working electrode, the graphite rod works as the counter electrode, a Ag/AgCl electrode is used as the reference electrode, treat the working electrode at 0.5 V (Vs. RHE) for 100 h, then the hierarchical porous silver can be obtained by treat the working electrode in 400 C. for 10 h.
Example 10
(19) The solution contains 2 M NaI and 0.1 M HI act as the electrolyte, a silver rod serves as the working electrode, the silver foil works as the counter electrode, a saturated calomel electrode is used as reference electrode, treat the working electrode at 5.0 V (Vs. RHE) for 60 s, then the hierarchical porous silver can be obtained by exposing the working electrode in aluminum target X-ray for 1 h.
Example 11
(20) The solution contains 0.1 M Cetyltrimethylammonium Chloride and 0.1 M NaOH act as the electrolyte, a silver foil serves as the working electrode, the graphite rod works as the counter electrode, and a silver/silver chloride electrode is used as the reference electrode, treat the working electrode at 1.5 V (Vs. RHE) for 1 h, then the hierarchical porous silver can be obtained by exposing the working electrode in 300,000 lux light for 20 min.
Example 12
(21) The solution contains 0.5 M 1, 3-dimethyl imidazole salt bromine and 0.1 M NaOH act as the electrolyte, a silver rod serves as the working electrode, the silver foil works as the counter electrode, a saturated calomel electrode is used as the reference electrode, treat the working electrode at 2.0 V (Vs. RHE) for 5 h, then the hierarchical porous silver can be obtained by exposing the working electrode in aluminum target X-ray for 2 h.
Example 13
(22) The solution contains 2 M NaCl and 0.1 M HCl act as the electrolyte, a silver rod serves as the working electrode, the silver foil works as the counter electrode, a saturated calomel electrode is used as the reference electrode, treat the working electrode at 5.0 V (Vs. RHE) for 360 s, then the hierarchical porous silver can be obtained by exposing the working electrode in copper target X-ray for 1 h, then dipping the obtained hierarchical porous Ag in 50 mM chloropalladic acid for 10 min and then obtain the palladium coated silver hierarchical porous materials after washing.
Example 14
(23) The solution contains saturated NaCl act as the electrolyte, sintered silver powder serves as the working electrode, the gold foil works as the counter electrode, and a silver/silver chloride electrode is used as the reference electrode, treat the working electrode at 10.0 V (Vs. RHE) for 1 s, then the hierarchical porous silver can be obtained by bombard the working electrode by electron gun beam for 20 min. Underpotential deposition copper on the obtained hierarchical porous silver in 50 mM copper nitrate and 50 mM nitric acid solutions at 390 mV (Vs. RHE) for 5 min, then dipping the obtained hierarchical porous Ag in 50 mM chloroauric acid for 10 min. Then obtain the gold coated silver hierarchical porous materials after washing.
Example 15
(24) The solution contains 0.1 M HCl act as the electrolyte, a silver foil serves as the working electrode, the Pt foil works as the counter electrode, a saturated calomel electrode is used as the reference electrode, treat the working electrode at 2.0 V (Vs. RHE) for 1 h, then the hierarchical porous silver can be obtained by exposing the working electrode in 1 W laser for 1 h, then dipping the obtained hierarchical porous Ag in 50 mM Chloroiridic acid for 10 min and then obtain the iridium coated silver hierarchical porous materials after washing.
Example 16
(25) The solution contains 0.005 M NaBr and 0.1 M NaOH act as the electrolyte, a silver bulk electrode serves as the working electrode, the platinum foil work as the counter electrode, a mercury/mercuric oxide electrode is used as the reference electrode, treat the working electrode at 1.0 V (Vs. RHE) for 2 h, then the hierarchical porous silver can be obtained by electroreduction the working electrode at 0.15 V in 0.1 M NaOH electrolyte for 5 min, then dipping the obtained hierarchical porous Ag in 50 mM chloroplatinic acid for 10 min and then obtain the platinum coated silver hierarchical porous materials after washing.
Example 17
(26) The solution contains saturated NaBr act as the electrolyte, sintered silver powder serves as the working electrode, the gold foil works as the counter electrode, and a silver/silver chloride electrode is used as the reference electrode, treat the working electrode at 10.0 V (Vs. RHE) for 60 s, then the hierarchical porous silver can be obtained by bombard the working electrode by electron gun beam for 40 min, then dipping the obtained hierarchical porous Ag in 50 mM chloropalladic acid for 10 min. Then obtain the palladium coated silver hierarchical porous materials after washing.
Example 18
(27) The solution contains 0.1 M HBr act as the electrolyte, a silver foil serves as the working electrode, the Pt foil works as the counter electrode, a saturated calomel electrode is used as the reference electrode, treat the working electrode at 2.0 V (Vs. RHE) for 1 h, then the hierarchical porous silver can be obtained by exposing the working electrode in 2 W laser for 3 h. Underpotential deposition lead on the obtained hierarchical porous silver in 50 mM lead nitrate and 50 mM nitric acid solutions at 210 mV (Vs.RHE) for 5 min, then dipping the obtained hierarchical porous Ag in 50 mM chloroplatinic acid for 10 min and then obtain the platinum coated silver hierarchical porous materials after washing.
Example 19
(28) The solution contains 0.001 mM NaI act as the electrolyte, a silver foil serves as the working electrode, the graphite rod work as counter electrode, a Ag/AgCl electrode is used as reference electrode, treat the working electrode at 0.5 V (Vs. RHE) for 100 h, then the hierarchical porous silver can be obtained by treat the working electrode in 400 C. for 10 h, then dipping the obtained hierarchical porous Ag in 50 mM chloroplatinic acid for 10 min. Then obtain the platinum coated silver hierarchical porous materials after washing.
Example 20
(29) The solution contains 0.001 mM NaCl act as the electrolyte, a silver foil serves as the working electrode, the graphite rod works as the counter electrode, and a silver/silver chloride electrode is used as the reference electrode, treat the working electrode at 1.5 V (Vs. RHE) for 100 h, then the hierarchical porous silver can be obtained by exposing the working electrode in 200,000 lux light for 1 h, then the CuOx/Ag hierarchical porous can be obtained by elctrodeposition CuOx on the hierarchical porous silver in the solution contains 50 mM copper nitrate electrolyte, the platinum foil works as the counter electrode and the silver/silver chloride electrode is used as reference electrode during the electrodeposition process.
Example 21
(30) The solution contains saturated NaCl act as the electrolyte, sintered silver powder serves as the working electrode, the gold foil works as the counter electrode, and a silver/silver chloride electrode is used as the reference electrode, treat the working electrode at 10.0 V (Vs. RHE) for 1 s, then the hierarchical porous silver can be obtained by bombard the working electrode by electron gun beam for 20 min, then the CoOx/Ag hierarchical porous can be obtained by elctrodeposition CoOx on the hierarchical porous silver in the solution contains 50 mM cobalt nitrate electrolyte, the platinum foil works as the counter electrode and the silver/silver chloride electrode is used as the reference electrode during the electrodeposition process.
Example 22
(31) The solution contains 0.001 mM NaBr act as the electrolyte, a silver foil serves as the working electrode, the graphite rod works as the counter electrode, and a silver/silver chloride electrode is used as the reference electrode, treat the working electrode at 1.5 V (Vs. RHE) for 100 h, then the hierarchical porous silver can be obtained by exposing the working electrode in 500,000 lux light for 5 min, then the ZnOx/Ag hierarchical porous can be obtained by elctrodeposition ZnOx on the hierarchical porous silver in the solution contains 50 mM zinc nitrate electrolyte, the platinum foil works as the counter electrode and the silver/silver chloride electrode is used as the reference electrode during the electrodeposition process.
Example 23
(32) The solution contains 2 M NaCl and 0.1 M HCl act as the electrolyte, a silver rod serves as the working electrode, the silver foil works as the counter electrode, a saturated calomel electrode is used as the reference electrode, treat the working electrode at 5.0 V (Vs. RHE) for 360 s, then the hierarchical porous silver can be obtained by exposing the working electrode in copper target X-ray for 1 h, then the FeOx/Ag hierarchical porous can be obtained by elctrodeposition FeOx on the hierarchical porous silver in the solution contains 50 mM iron acetate electrolyte, the platinum foil work as the counter electrode and the silver/silver chloride electrode is used as reference electrode during the electrodeposition process.
Example 24
(33) The solution contains 0.1 M HCl act as the electrolyte, a silver foil serves as the working electrode, the Pt foil works as the counter electrode, a saturated calomel electrode is used as the reference electrode, treat the working electrode at 2.0 V (Vs. RHE) for 1 h, then the hierarchical porous silver can be obtained by exposing the working electrode in 1 W laser for 1 h, then the NiOx/Ag hierarchical porous can be obtained by elctrodeposition NiOx on the hierarchical porous silver in the solution contains 50 mM nickel acetate electrolyte, the platinum foil works as the counter electrode and the silver/silver chloride electrode is used as the reference electrode during the electrodeposition process.
Example 25
(34) The solution contains 2 M NaCl and 0.1 M HCl act as the electrolyte, a silver rod serves as the working electrode, the silver foil works as the counter electrode, a saturated calomel electrode is used as the reference electrode, treat the working electrode at 5.0 V (Vs. RHE) for 360 s, then the Ag/AgCl hierarchical porous can be obtained by exposing the working electrode in copper target X-ray for 5 s.
Example 26
(35) The solution contains 0.001 mM NaBr act as the electrolyte, a silver foil serves as the working electrode, the graphite rod works as the counter electrode, and a silver/silver chloride electrode is used as the reference electrode, treat the working electrode at 1.5 V (Vs. RHE) for 100 h, then the Ag/AgBr hierarchical porous can be obtained by exposing the working electrode in 500,000 lux light for 20 s.
Example 27
(36) The solution contains 2 M NaI and 0.1 M HI act as the electrolyte, a silver rod serves as the working electrode, the silver foil works as the counter electrode, a saturated calomel electrode is used as the reference electrode, treat the working electrode at 5.0 V (Vs. RHE) for 60 s, then the Ag/AgI hierarchical porous can be obtained by exposing the working electrode in aluminum target X-ray for 20 s.
Example 28
(37) The solution contains saturated NaI act as the electrolyte, sintered silver powder serves as the working electrode, the gold foil works as the counter electrode, and a silver/silver chloride electrode is used as the reference electrode, treat the working electrode at 10.0 V (Vs. RHE) for 10 s, then the Ag/AgI hierarchical porous can be obtained by bombarding the working electrode by electron gun beam for 20 s.
Example 29
(38) The solution contains 0.1 M Na.sub.3PO.sub.4 act as the electrolyte, a magnesium foil serves as the working electrode, the platinum foil works as the counter electrode, a mercury/mercuric oxide electrode is used as the reference electrode, treat the working electrode at 2.5 V (Vs. RHE) for 2 h, then the hierarchical porous magnesium can be obtained by electroreduction the working electrode at 1.5 V (Vs. RHE) for 200 s.
Example 30
(39) The solution contains 0.3 M Na.sub.3PO.sub.4 as the electrolyte, an aluminum foil serves as the working electrode, the platinum foil works as the counter electrode, a mercury/mercuric oxide electrode is used as the reference electrode, treat the working electrode at 2.0 V (Vs. RHE) for 1 h, then the hierarchical porous aluminum can be obtained by electroreduction the working electrode at 1.0 V for 150 s.
Example 31
(40) The solution contains 0.4 M Na.sub.2S as the electrolyte, a zinc foil serves as the working electrode, the platinum foil work as the counter electrode, a mercury/mercuric oxide electrode is used as the reference electrode, treat the working electrode at 1.8 V (Vs. RHE) for 30 min, then the hierarchical porous zinc can be obtained by electroreduction the working electrode at 1.3 V (Vs. RHE) for 100 s.
Example 32
(41) The solution contains 0.5 M Na.sub.3PO.sub.4 act as the electrolyte, an iron foil serves as the working electrode, the platinum foil work as the counter electrode, a silver/silver chloride electrode is used as the reference electrode, treat the working electrode at 2.6 V (Vs. RHE) for 1.5 h, then the hierarchical porous iron can be obtained by electroreduction the working electrode at 1.2 V (Vs. RHE) for 300 s.
Example 33
(42) The solution contains 0.6 M Na.sub.2S as the electrolyte, a lead foil serves as the working electrode, the platinum foil works as the counter electrode, a mercury/mercuric oxide electrode is used as the reference electrode, treat the working electrode at 2.0 V (Vs. RHE) for 2.5 h, then the hierarchical porous lead can be obtained by electroreduction the working electrode at 0.9 V for 500 s.
Example 34
(43) The solution contains 0.7 M Na.sub.2CO.sub.3 as the electrolyte, a copper foil serves as the working electrode, the platinum foil works as the counter electrode, a mercury/mercuric oxide electrode is used as the reference electrode, treat the working electrode at 1.5 V (Vs. RHE) for 4 h, then the hierarchical porous copper can be obtained by electroreduction the working electrode at 1.4 V (Vs. RHE) for 1000 s.
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