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Long-Chain Hydrocarbons from Nonthermal Plasma-Driven Biogas Upcycling

  • Josip Knezevic
  • , Tianqi Zhang
  • , Renwu Zhou
  • , Jungmi Hong
  • , Rusen Zhou
  • , Christopher Barnett
  • , Qiang Song
  • , Yuting Gao
  • , Wanping Xu
  • , Dingxin Liu
  • , Nicholas Proschogo
  • , Biswaranjan Mohanty
  • , Jyah Strachan
  • , Behdad Soltani
  • , Fengwang Li
  • , Thomas Maschmeyer
  • , Emma C. Lovell
  • , Patrick J. Cullen
  • The University of Sydney
  • Xi'an Jiaotong University
  • University of New South Wales

Research output: Contribution to journalArticlepeer-review

20 Scopus citations

Abstract

The burgeoning necessity to discover new methodologies for the synthesis of long-chain hydrocarbons and oxygenates, independent of traditional reliance on high-temperature, high-pressure, and fossil fuel-based carbon, is increasingly urgent. In this context, we introduce a nonthermal plasma-based strategy for the initiation and propagation of long-chain carbon growth from biogas constituents (CO2 and CH4). Utilizing a plasma reactor operating at atmospheric room temperature, our approach facilitates hydrocarbon chain growth up to C40 in the solid state (including oxygenated products), predominantly when CH4 exceeds CO2 in the feedstock. This synthesis is driven by the hydrogenation of CO2 and/or amalgamation of CHx radicals. Global plasma chemistry modeling underscores the pivotal role of electron temperature and CHx radical genesis, contingent upon varying CO2/CH4 ratios in the plasma system. Concomitant with long-chain hydrocarbon production, the system also yields gaseous products, primarily syngas (H2 and CO), as well as liquid-phase alcohols and acids. Our finding demonstrates the feasibility of atmospheric room-temperature synthesis of long-chain hydrocarbons, with the potential for tuning the chain length based on the feed gas composition.

Original languageEnglish
Pages (from-to)12601-12608
Number of pages8
JournalJournal of the American Chemical Society
Volume146
Issue number18
DOIs
StatePublished - 8 May 2024

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