Transition metal carbides for catalytic dehydrogenation of short alkanes
View Patent ↗The disclosure provides a method of dehydrogenating hydrocarbons, such as C 2 or C 3 hydrocarbons, selectively and efficiently, to provide the corresponding alkylenes. The method is based on a Pt nanolayer catalyst over MXene (Pt/MXene) that shows resistance to coke deposition. The dehydrogenation conditions developed provided about 22% propane conversion and over 90% selectivity toward the desired propylene product, and the catalyst was stable for a 24-hour continuous run. The byproducts were ethane, ethylene, and methane, and only trace amounts of coke deposition over the catalyst were detected. Similar dehydrogenation conditions provided about 18% ethane conversion and over 90% selectivity toward the desired ethylene product. A mass balance of greater than 96% was achieved in each case.
1 . A method for dehydrogenating a hydrocarbon comprising:
a) activating a catalyst with a hydrogen source to provide an activated catalyst, wherein the catalyst comprises:
i) a MXene support of Formula II:
Mo 2 TiC 2 T x (II);
wherein Mo is an early transition metal; and T x is a surface functional group wherein x is 0-10;
ii) a noble metal, wherein atoms of the noble metal occupy crystal lattice nodes at the basal plane of the MXene support, the atoms of the noble metal are supported by a metallic bond to the early transition metal, the noble metal has one to five nanostructured layers of its atoms on the MXene support, and loading of the noble metal on the MXene support is less than 5% w/w based on the weight of the catalyst; and
b) contacting the activated catalyst and a hydrocarbon at a temperature of at least about 350° C., optionally in the presence of an inert gas, for a period of time sufficient to dehydrogenate the hydrocarbon;
thereby providing a non-oxidatively dehydrogenated hydrocarbon.
2 . The method of claim 1 wherein the noble metal is platinum, iridium, rhodium, palladium, ruthenium, or a combination thereof.
3 . The method of claim 1 wherein the surface functional group is halo, hydroxyl, oxo, or a combination thereof.
4 . The method of claim 1 wherein the catalyst is a Mo 2 TiC 2 T x support loaded with platinum, wherein the platinum loading is 0.2 wt. % to 0.4 wt. %.
5 . The method of claim 1 wherein the loading of the noble metal on the MXene support is about 0.1 weight percent to about 4.5 weight percent, with respect to the weight of the MXene support.
6 . The method of claim 1 wherein the catalyst is a Mo 2 TiC 2 T x support loaded with platinum, wherein the platinum loading about 0.1 wt. % to about 2 wt. %.
7 . The method of claim 1 wherein the hydrocarbon is propane or ethane.
8 . The method of claim 1 wherein activating the catalyst comprises heating the catalyst and the hydrogen source at temperature above 250° C., wherein the hydrogen source is optionally a 20-40% v/v mixture of hydrogen gas in an inert gas.
9 . The method of claim 1 wherein contacting the activated catalyst and the hydrocarbon is carried out in the presence of an inert gas, thereby forming a gas mixture comprising the hydrocarbon and the inert gas, wherein the gas mixture comprises about 5% v/v to about 95% v/v hydrocarbon.
10 . The method of claim 9 wherein the gas mixture comprises about 5% v/v to about 15% v/v hydrocarbon.
11 . The method of claim 9 wherein the activated catalyst and the gas mixture are heated at a temperature of about 350° C. to about 700° C.
12 . The method of claim 9 wherein the activated catalyst and the gas mixture are heated at a temperature of about 500° C. to about 650° C.
13 . The method of claim 9 wherein the contacting in step b) is at a gas space velocity of about 100 cc/min to about 300 cc/min.
14 . The method of claim 9 wherein the contacting in step b) is carried out at a total flow rate of about 50 cc/min to about 150 cc/min per 100 mg of catalyst.
15 . A method for dehydrogenating propane comprising:
a) activating a catalyst by heating the catalyst in the presence of hydrogen gas to provide an activated catalyst, wherein the catalyst comprises:
i) a MXene support represented by Formula (II):
MO 2 TiC 2 T x (II);
wherein T x is a surface functional group wherein x is 0-10; and
ii) platinum metal, wherein atoms of the platinum metal occupy crystal lattice nodes at the basal plane of the MXene support, the atoms of the platinum metal are supported by a metallic bond to molybdenum atom of the MXene support, the platinum metal has one to five nanostructured layers of its atoms on the MXene support, and loading of the platinum metal on the MXene support is less than 5% w/w based on the weight of the catalyst; and
b) contacting the activated catalyst and a mixture comprising propane and nitrogen gas at a temperature of at least about 350° C., for a period of time sufficient to dehydrogenate the propane;
wherein the contacting is at a gas space velocity of about 50 cc/min to about 150 cc/min per 100 mg of catalyst, thereby non-oxidatively dehydrogenating propane to provide propylene.
16 . The method of claim 15 wherein the mixture comprising propane and nitrogen gas comprises about 5% v/v to about 25% v/v propane, or about 5% v/v to about 15% v/v propane.
17 . The method of claim 15 wherein the activated catalyst, and the mixture comprising propane and nitrogen gas, are heated at a temperature of about 500° C. to about 600° C.
18 . A method for dehydrogenating ethane comprising:
a) activating a catalyst by heating the catalyst in the presence of hydrogen gas to provide an activated catalyst, wherein the catalyst comprises:
i) a MXene support represented by Formula (II):
MO 2 TiC 2 T x (II);
wherein T x is a surface functional group wherein x is 0-10; and
ii) platinum metal, wherein atoms of the platinum metal occupy crystal lattice nodes at the basal plane of the MXene support, the atoms of the platinum metal are supported by a metallic bond to molybdenum atom of the MXene support, the platinum metal has one to five nanostructured layers of its atoms on the MXene support, and loading of the platinum metal on the MXene support is less than 5% w/w based on the weight of the catalyst; and
b) contacting the activated catalyst and a mixture comprising ethane and nitrogen gas at a temperature of at least about 350° C., for a period of time sufficient to dehydrogenate the ethane;
wherein the contacting is at a gas space velocity of about 50 cc/min to about 150 cc/min per 100 mg of catalyst, thereby non-oxidatively dehydrogenating ethane to provide ethylene.
19 . The method of claim 18 wherein the mixture comprising ethane and nitrogen gas comprises about 10% v/v to about 90% v/v ethane, or about 5% v/v to about 15% v/v of ethane.
20 . The method of claim 18 wherein the activated catalyst and the mixture comprising ethane and nitrogen gas are heated at a temperature of about 550° C. to about 650° C.