B01J23/624

PROCESSES FOR REGENERATING A CATALYST FOR THE SELECTIVE CONVERSION OF HYDROCARBONS
20190126251 · 2019-05-02 ·

A catalyst for a selective conversion of hydrocarbons. The catalyst includes a first component selected from the group consisting of Group VIII noble metals and mixtures thereof, a second component selected from the group consisting of alkali metals or alkaline-earth metals and mixtures thereof, and a third component selected from the group consisting of tin, germanium, lead, indium, gallium, thallium and mixtures thereof. The catalyst is a support formed as a spherical catalyst particle with an average pore diameter between 200 to 350 Angstroms, a porosity of at least 75% and an apparent bulk density between 0.60 and 0.3 g/cc. Also, a process of using such a catalyst for a selective hydrocarbon conversion reaction and a process for regenerating such a catalyst by removing coke from same.

CATALYST AND PROCESS FOR THE SELECTIVE CONVERSION OF HYDROCARBONS
20190126249 · 2019-05-02 ·

A catalyst for a selective conversion of hydrocarbons. The catalyst includes a first component selected from the group consisting of Group VIII noble metals and mixtures thereof, a second component selected from the group consisting of alkali metals or alkaline-earth metals and mixtures thereof, and a third component selected from the group consisting of tin, germanium, lead, indium, gallium, thallium and mixtures thereof. The catalyst is a support formed as a spherical catalyst particle with a median diameter between 1.6 mm and 2.5 mm and an apparent bulk density between 0.6 and 0.3 g/cc. Also a process of using such a catalyst for a selective hydrocarbon conversion reaction and a process for regenerating such a catalyst by removing coke from same.

PROCESSES FOR REGENERATING A CATALYST FOR THE SELECTIVE CONVERSION OF HYDROCARBONS
20190126256 · 2019-05-02 ·

A catalyst for a selective conversion of hydrocarbons. The catalyst includes a first component selected from the group consisting of Group VIII noble metals and mixtures thereof, a second component selected from the group consisting of alkali metals or alkaline-earth metals and mixtures thereof, and a third component selected from the group consisting of tin, germanium, lead, indium, gallium, thallium and mixtures thereof. The catalyst is a support formed as a spherical catalyst particle with a median diameter between 1.6 mm and 2.5 mm and an apparent bulk density between 0.6 and 0.3 g/cc. Also a process of using such a catalyst for a selective hydrocarbon conversion reaction and a process for regenerating such a catalyst by removing coke from same.

Catalyst for oxygen reduction reaction comprising iridium-based alloy

Provided is a catalyst for an oxygen reduction reaction, including an alloy in which two metals are mixed, in which the corresponding alloy is an alloy of iridium (Ir); and silicon (Si), phosphorus (P), germanium (Ge), or arsenic (As). The corresponding catalyst for the oxygen reduction reaction may have excellent price competitiveness while exhibiting a catalytic activity which is equal to or similar to that of an existing Pt catalyst. Accordingly, when the catalyst is used, the amount of platinum catalyst having low price competitiveness may be reduced, so that a production unit cost of a system to which the corresponding catalyst is applied may be lowered.

USE OF A CATALYST COMPOSITION FOR THE CATALYTIC DEPOLYMERIZATION OF PLASTICS WASTE

Use of a catalytic composition parameters comprising oxides of aluminum or oxidic compounds comprising aluminum and silicon with a molar ratio of aluminum to silicon of more than 1 in a process for the catalytic depolymerization of plastics waste.

METHOD FOR PREPARING DEHYDROGENATION CATALYST FOR STRAIGHT CHAIN-TYPE LIGHT HYDROCARBON USING STABILIZED ACTIVE MATERIAL COMPLEX
20180311644 · 2018-11-01 ·

The present invention relates to a catalyst having improved selectivity and reactivity and applied to preparing olefins by dehydrogenating C9 to C13 paraffin, and particularly to a technique for preparing a catalyst, which uses a heat-treated support having controlled pores, and most of metal components contained therein are distributed evenly in a support in the form of an alloy rather than in the form of each separate metal, thereby exhibiting high a conversion rate and selectivity when used in dehydrogenation.

TRANSITION-METAL-SUPPORTED INTERMETALLIC COMPOUND, SUPPORTED METALLIC CATALYST, AND AMMONIA PRODUCING METHOD

An electride, which is more stable and can be more easily obtained, is provided or is made available, and as a result, a catalyst particularly useful for chemical synthesis, in which the electride is particularly used, is provided.

A transition metal-supported intermetallic compound having a transition metal supported on an intermetallic compound represented by the following formula (1):


A.sub.5X.sub.3(1)

wherein A represents a rare earth element, and X represents Si or Ge.

CATALYST FOR OXYGEN REDUCTION REACTION COMPRISING IRIDIUM-BASED ALLOY

Provided is a catalyst for an oxygen reduction reaction, including an alloy in which two metals are mixed, in which the corresponding alloy is an alloy of iridium (Ir); and silicon (Si), phosphorus (P), germanium (Ge), or arsenic (As). The corresponding catalyst for the oxygen reduction reaction may have excellent price competitiveness while exhibiting a catalytic activity which is equal to or similar to that of an existing Pt catalyst. Accordingly, when the catalyst is used, the amount of platinum catalyst having low price competitiveness may be reduced, so that a production unit cost of a system to which the corresponding catalyst is applied may be lowered.

A CATALYST, ITS APPLICATION IN PRODUCTION OF HYDROGEN
20240376617 · 2024-11-14 ·

The present disclosure provides a catalyst comprising a compound comprising an ordered intermetallic of platinum and germanium having formula Pt.sub.3Ge, wherein Pt.sub.3Ge has a single crystallographic facet oriented in 202 plane. The present disclosure provides a catalyst for catalyzing hydrogen evolution reaction. The present disclosure also provides a catalyst ink, an electrode, an electrochemical cell, and methods thereof.

CATALYTIC COMPOSITION AND PROCESS FOR THE DEHYDROGENATION OF BUTENES OR MIXTURES OF BUTANES AND BUTENES TO GIVE 1,3-BUTADIENE

The present invention relates to a dehydrogenation process starting from reagents selected from single butenes, or mixtures thereof, or mixtures of butenes with butanes, to give 1-3 butadiene using catalytic composition of microspheroidal alumina and an active component containing a mixture comprising Gallium and/or Gallium oxides, Tin and/or Tin oxides, a quantity ranging from 1 ppm to 500 ppm with respect to the total weight of the catalytic composition of platinum and/or platinum oxides, and oxides of alkaline and/or alkaline earth metals.