Efficient and recyclable heterogeneous nanocatalysts
Efficient and recyclable heterogeneous nanocatalysts and methods of synthesizing and using the same are provided.
1. A catalytic nanoparticle comprising a silica core covalently attached to at least one dendrimer encompassing at least one metal catalyst, wherein said silica core is etched.
2. The catalytic nanoparticle of claim 1 , wherein said dendrimer is an amine-terminated poly(amido amine) (PAMAM) dendrimer.
3. The catalytic nanoparticle of claim 1 , wherein said dendrimer is covalently attached to said silica core via a linker.
4. The catalytic nanoparticle of claim 1 , wherein said metal catalyst is selected from the group consisting of platinum, ruthenium, iron, cobalt, gold, chromium, molybdenum, tungsten, manganese, technetium, rhenium, osmium, rhodium, iridium, nickel, palladium, copper, silver, zinc, tin, aluminum, and combinations thereof.
5. The catalytic nanoparticle of claim 4 , wherein said metal catalyst is palladium.
6. The catalytic nanoparticle of claim 1 , wherein said dendrimer is a poly(amidoamine) (PAMAM) dendrimer or a polypropyleneimine (PPI) dendrimers.
7. The catalytic nanoparticle of claim 3 , wherein said linker is an alkyl, carbonyl, or an optionally substituted aryl group.
8. The catalytic nanoparticle of claim 1 , wherein said metal catalyst is a nanoparticle of metal.
9. A method of synthesizing the catalytic nanoparticle of claim 1 comprising:
a) etching silica core,
b) covalently attaching at least one dendrimer to the etched silica core, and
c) entrapping at least one metal catalyst in said dendrimer, thereby creating said catalytic nanoparticle.
10. A method of catalyzing a chemical reaction, said method comprising adding at least one catalytic nanoparticle of claim 1 to said chemical reaction.
11. The method of claim 10 , wherein said chemical reaction is a hydrogenation reaction or a Heck coupling reaction.
12. A catalytic nanoparticle comprising a silica core attached to at least one metal catalyst and an etched silica outer layer, wherein said metal catalyst is a nanoparticle of metal, wherein said metal in said metal catalyst is selected from the group consisting of platinum, ruthenium, iron, cobalt, chromium, molybdenum, tungsten, manganese, technetium, rhenium, osmium, rhodium, iridium, nickel, palladium, copper, silver, zinc, tin, aluminum, and combinations thereof.
13. The catalytic nanoparticle of claim 12 , wherein said metal is palladium.
14. A method of synthesizing the catalytic nanoparticle of claim 12 comprising:
a) attaching at least one metal catalyst on a silica core,
b) adding a silica outer layer onto the metal catalyst coated silica core, and
c) etching the silica outer layer, thereby generating the catalytic nanoparticle.
15. A method of catalyzing a chemical reaction, said method comprising adding at least one catalytic nanoparticle of claim 12 to said chemical reaction.
16. The method of claim 15 , wherein said chemical reaction is a hydrogenation reaction or a Heck coupling reaction.
17. A catalytic nanoparticle comprising a silica core coated with at least one metal catalyst, and a hollow, nanoporous shell, wherein said hollow, nanoporous shell comprises a metal oxide, wherein said hollow, nanoporous shell encapsulates the metal catalyst coated silica core, and wherein said metal catalyst is a nanoparticle of metal.
18. The catalytic nanoparticle of claim 17 , wherein said metal in said metal catalyst is selected from the group consisting of platinum, ruthenium, iron, cobalt, gold, chromium, molybdenum, tungsten, manganese, technetium, rhenium, osmium, rhodium, iridium, nickel, palladium, copper, silver, zinc, tin, aluminum, and combinations thereof.
19. The catalytic nanoparticle of claim 18 , wherein said metal is palladium.
20. The catalytic nanoparticle of claim 17 , wherein said hollow, nanoporous shell comprises zirconium oxide.
21. The catalytic nanoparticle of claim 17 , wherein said metal oxide is selected from the group consisting of nickel, cobalt, manganese, titanium, vanadium, zirconium, iron, cerium, zinc, and aluminum oxides.
22. The catalytic nanoparticle of claim 17 , wherein said hollow, nanoporous shell consists of zirconium oxide.
23. A method of synthesizing the catalytic nanoparticle of claim 17 comprising:
a) coating at least one metal catalyst on a silica core,
b) adding a silica shell onto the metal catalyst coated silica core,
c) coating the silica shell with a porous metal oxide, and
d) removing the silica shell, thereby generating a hollow, nanoporous shell and an accessible catalytic nanoparticle.
24. A method of catalyzing a chemical reaction, said method comprising adding at least one catalytic nanoparticle of claim 17 to said chemical reaction.
25. The method of claim 24 , wherein said chemical reaction is a hydrogenation reaction or a Heck coupling reaction.