Characterization of the degradation products of lignocellulosic biomass by using tandem mass spectrometry experiments, model compounds, and quantum chemical calculations

Mass Spectrom Rev. 2024 Mar-Apr;43(2):369-408. doi: 10.1002/mas.21832. Epub 2023 Feb 2.

Abstract

Biomass-derived degraded lignin and cellulose serve as possible alternatives to fossil fuels for energy and chemical resources. Fast pyrolysis of lignocellulosic biomass generates bio-oil that needs further refinement. However, as pyrolysis causes massive degradation to lignin and cellulose, this process produces very complex mixtures. The same applies to degradation methods other than fast pyrolysis. The ability to identify the degradation products of lignocellulosic biomass is of great importance to be able to optimize methodologies for the conversion of these mixtures to transportation fuels and valuable chemicals. Studies utilizing tandem mass spectrometry have provided invaluable, molecular-level information regarding the identities of compounds in degraded biomass. This review focuses on the molecular-level characterization of fast pyrolysis and other degradation products of lignin and cellulose via tandem mass spectrometry based on collision-activated dissociation (CAD). Many studies discussed here used model compounds to better understand both the ionization chemistry of the degradation products of lignin and cellulose and their ions' CAD reactions in mass spectrometers to develop methods for the structural characterization of the degradation products of lignocellulosic biomass. Further, model compound studies were also carried out to delineate the mechanisms of the fast pyrolysis reactions of lignocellulosic biomass. The above knowledge was used to assign likely structures to many degradation products of lignocellulosic biomass.

Keywords: DFT calculations; atmospheric pressure ionization; bio-oil; biomass; carbohydrates; collision-activated dissociation; fast pyrolysis; lignin; lignin degradation products; lignocellulose; liquid chromatography; mass spectrometry; model compounds; pyrolysis; reaction mechanisms.

Publication types

  • Review

MeSH terms

  • Biomass
  • Cellulose
  • Lignin* / chemistry
  • Tandem Mass Spectrometry* / methods

Substances

  • Lignin
  • Cellulose