Patents by Inventor Johnathan Holladay

Johnathan Holladay has filed for patents to protect the following inventions. This listing includes patent applications that are pending as well as patents that have already been granted by the United States Patent and Trademark Office (USPTO).

  • Publication number: 20070287845
    Abstract: A method of reducing hydroxymethylfurfural (HMF) where a starting material containing HMF in a solvent comprising water is provided. H2 is provided into the reactor and the starting material is contacted with a catalyst containing at least one metal selected from Ni, Co, Cu, Pd, Pt, Ru, Ir, Re and Rh, at a temperature of less than or equal to 250° C. A method of hydrogenating HMF includes providing an aqueous solution containing HMF and fructose. H2 and a hydrogenation catalyst are provided. The HMF is selectively hydrogenated relative to the fructose at a temperature at or above 30° C. A method of producing tetrahydrofuran dimethanol (THFDM) includes providing a continuous flow reactor having first and second catalysts and providing a feed comprising HMF into the reactor. The feed is contacted with the first catalyst to produce furan dimethanol (FDM) which is contacted with the second catalyst to produce THFDM.
    Type: Application
    Filed: June 8, 2007
    Publication date: December 13, 2007
    Applicant: BATTELLE MEMORIAL INSTITUTE
    Inventors: Michael Lilga, Richard Hallen, Todd Werpy, James White, Johnathan Holladay, John Frye, Alan Zacher
  • Publication number: 20070219390
    Abstract: A process and apparatus are disclosed for conversion of ?-hydroxy carbonyl compounds forming useful conversion products including, e.g., acrylic acid [CAS No. 79-10-7], acrylates, and acrylamide [CAS No. 79-06-01]. Conversion products find use, e.g., as feedstock and/or end-use chemicals.
    Type: Application
    Filed: March 15, 2006
    Publication date: September 20, 2007
    Applicants: Battelle Memorial Institute, Cargill, Incorporated
    Inventors: Alan Zacher, Johnathan Holladay, Michael Lilga, James White, Danielle Muzatko, Rick Orth, Paraskevas Tsobanakis, Xiangsheng Meng, Timothy Abraham
  • Publication number: 20070219397
    Abstract: A process is disclosed for conversion of ammonium salts of ?-hydroxy carbonyl compounds forming useful conversion products including, e.g., ?, ?-unsaturated carbonyl compounds and/or ammonium salts of ?, ?-unsaturated carbonyl compounds recovered at a high molar yield. Conversion products find use, e.g., as feedstock and/or end-use chemicals.
    Type: Application
    Filed: March 15, 2006
    Publication date: September 20, 2007
    Applicants: Battelle Memorial Institute, Cargill, Incorporated
    Inventors: Johnathan Holladay, Alan Zacher, Michael Lilga, James White, Danielle Muzatko, Rick Orth, Paraskevas Tsobanakis, Xiangsheng Meng, Timothy Abraham
  • Publication number: 20070219391
    Abstract: A process is disclosed for conversion of salts of ?-hydroxy carbonyl compounds forming useful conversion products including, e.g., ?,?-unsaturated carbonyl compounds and/or salts of ?,?-unsaturated carbonyl compounds. Conversion products find use, e.g., as feedstock and/or end-use chemicals.
    Type: Application
    Filed: March 15, 2006
    Publication date: September 20, 2007
    Applicant: Battelle Memorial Institute
    Inventors: Michael Lilga, James White, Johnathan Holladay, Alan Zacher, Danielle Muzatko, Rick Orth
  • Publication number: 20070173653
    Abstract: The invention includes a method of treating a solid acid catalyst. After exposing the catalyst to a mixture containing a sugar alcohol, the catalyst is washed with an organic solvent and is then exposed to a second reaction mixture. The invention includes a process for production of anhydrosugar alcohol. A solid acid catalyst is provided to convert sugar alcohol in a first sample to an anhydrosugar alcohol. The catalyst is then washed with an organic solvent and is subsequently utilized to expose a second sample. The invention includes a method for selective production of an anhydrosugar. A solid acid catalyst is provided within a reactor and anhydrosugar alcohol is formed by flowing a starting sugar alcohol into the reactor. The acid catalyst is then exposed to an organic solvent which allows a greater amount of additional anhydrosugar to be produced than would occur without exposing the acid catalyst to the organic solvent.
    Type: Application
    Filed: January 26, 2006
    Publication date: July 26, 2007
    Inventors: Jianli Hu, Johnathan Holladay, Xinjie Zhang, Yong Wang
  • Publication number: 20070173654
    Abstract: The invention includes a method of dehydration of a sugar using a dehydration catalyst and a co-catalyst within a reactor. A sugar is introduced and H2 is flowed through the reactor at a pressure of less than or equal to about 300 psig to convert at least some of the sugar into an anhydrosugar product. The invention includes a process for producing isosorbide. A starting material comprising sorbitol is flowed into a reactor. H2 is counter flowed through the reactor. The starting material is exposed to a catalyst in the presence of a co-catalyst which comprises at least one metal. The exposing is conducted at a hydrogen pressure of less than or equal to 300 psig within the reactor and the hydrogen removes at least some of any water present during the exposing and inhibits formation of colored byproducts.
    Type: Application
    Filed: January 26, 2006
    Publication date: July 26, 2007
    Inventors: Johnathan Holladay, Jianli Hu, Xinjie Zhang, Yong Wang
  • Publication number: 20070173651
    Abstract: The invention includes methods for producing dianhydrosugar alcohol by providing an acid catalyst within a reactor and passing a starting material through the reactor at a first temperature. At least a portion of the staring material is converted to a monoanhydrosugar isomer during the passing through the column. The monoanhydrosugar is subjected to a second temperature which is greater than the first to produce a dianhydrosugar. The invention includes a method of producing isosorbide. An initial feed stream containing sorbitol is fed into a continuous reactor containing an acid catalyst at a temperature of less than 120° C. The residence time for the reactor is less than or equal to about 30 minutes. Sorbitol converted to 1,4-sorbitan in the continuous reactor is subsequently provided to a second reactor and is dehydrated at a temperature of at least 120° C. to produce isosorbide.
    Type: Application
    Filed: January 26, 2006
    Publication date: July 26, 2007
    Inventors: Johnathan Holladay, Jianli Hu, Yong Wang, Todd Werpy
  • Publication number: 20070173643
    Abstract: The invention includes methods of processing an initial di-carbonyl compound by conversion to a cyclic compound. The cyclic compound is reacted with an alkylating agent to form a derivative having an alkylated ring nitrogen. The invention encompasses a method of producing an N-alkyl product. Ammonia content of a solution is adjusted to produce a ratio of ammonia to di-carboxylate compound of from about 1:1 to about 1.5:1. An alkylating agent is added and the initial compound is alkylated and cyclized. The invention includes methods of making N-methyl pyrrolidinone (NMP). Aqueous ammonia and succinate is introduced into a vessel and ammonia is adjusted to provide a ratio of ammonia to succinate of less than 2:1. A methylating agent is reacted with succinate at a temperature of from greater than 100° C. to about 400° C. to produce N-methyl succinimide which is purified and hydrogenated to form NMP.
    Type: Application
    Filed: March 19, 2007
    Publication date: July 26, 2007
    Applicant: BATTELLE MEMORIAL INSTITUTE
    Inventors: Todd Werpy, John Frye, James White, Johnathan Holladay, Alan Zacher
  • Publication number: 20070173652
    Abstract: The invention includes methods of producing dianhydrosugars. A polyol is reacted in the presence of a first catalyst to form a monocyclic sugar. The monocyclic sugar is transferred to a second reactor where it is converted to a dianhydrosugar alcohol in the presence of a second catalyst. The invention includes a process of forming isosorbide. An initial reaction is conducted at a first temperature in the presence of a solid acid catalyst. The initial reaction involves reacting sorbitol to produce 1,4-sorbitan, 3,6-sorbitan, 2,5-mannitan and 2,5-iditan. Utilizing a second temperature, the 1,4-sorbitan and 3,6-sorbitan are converted to isosorbide. The invention includes a method of purifying isosorbide from a mixture containing isosorbide and at least one additional component. A first distillation removes a first portion of the isosorbide from the mixture. A second distillation is then conducted at a higher temperature to remove a second portion of isosorbide from the mixture.
    Type: Application
    Filed: January 26, 2006
    Publication date: July 26, 2007
    Inventors: Johnathan Holladay, Jianli Hu, Yong Wang, Todd Werpy, Xinjie Zhang
  • Publication number: 20060058557
    Abstract: A novel bis-chelating composition characterized by formula I: wherein M is a Group VB element; RI and R2 are each independently selected from hydrogen and monovalent hydrocarbyl radicals; or R1 and R2 are bonded together to form a diradical; or one of RI or R2 is hydrogen or a monovalent hydrocarbyl radical, while the other of R1 or R2 is a hydrocarbyl radical bonded to an atom in Ar; wherein Ar is selected from 1,2-arylenes; Q is selected from 1,2-arylenes, 2,2?-bisarylenes and alkyl diradicals; and W is selected from II, III, IV, or V: wherein M is as defined hereinbefore; each R is independently selected from hydrogen and monovalent hydrocarbyl radicals; X is selected from alkyl and aryl diradicals; Ar1 and Ar2 are each independently selected from 1,2-arylenes; Ar3 and Ar4 are each independently selected from monovalent aryl radicals; and n in formula IV is 0 or 1. The composition finds utility as a ligand in catalysts for carbonylation processes.
    Type: Application
    Filed: September 26, 2003
    Publication date: March 16, 2006
    Inventors: Wei-Jun Peng, Johnathan Holladay