Metal nanoparticles as a conductive catalyst
A metal nanocluster composite material for use as a conductive catalyst. The metal nanocluster composite material has metal nanoclusters on a carbon substrate formed within a porous zeolitic material, forming stable metal nanoclusters with a size distribution between 0.6-10 nm and, more particularly, nanoclusters with a size distribution in a range as low as 0.6-0.9 nm.
1. A metal nanocluster composite conductive catalytic material, comprising metal nanoclusters on a carbon substrate within a porous zeolitic material, said metal nanoclusters having a size distribution in the range of 0.6-10 nm, said metal nanocluster composite conductive catalytic material having a composition of 1-30 wt % metal; 3-25 wt % carbon, 22-45 wt % SiO 2 , 2-22 wt % Al 2 O 3 , 0-13 wt % Na 2 O, and the balance water.
2. The nanocluster composite conductive catalytic material of claim 1 , said metal nanoclusters having a size distribution in the range of 0.6-0.9 nm.
3. The nanocluster composite conductive catalytic material of claim 1 wherein said metal nanoclusters comprise at least one metal compound selected from titanium, vanadium, chromium, manganese, manganese oxide, iron, iron oxide, cobalt, nickel, copper, copper oxide, zinc, zinc oxide, gallium, germanium, zirconium, zirconium oxide, niobium, molybdenum, molybdenum disulfide, ruthenium, rhodium, palladium, silver, cadmium, cadmium selenide, tungsten, rhenium, iridium, platinum, gold, lead, bismuth, cerium, and cerium oxide.
4. The method of claim 2 wherein said metal nanoclusters are Pt nanoclusters.
5. The metal nanocluster composite conductive catalytic material of claim 1 wherein the composition has less than 1 wt % Na 2 O.
6. The method of claim 1 wherein said zeolitic material is an aluminosilicate zeolite.
7. The method of claim 1 wherein the porous zeolitic material is a sodium zeolite with a framework Si:Al ratio greater than approximately 1:1 and less than approximately 1.6:1.