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February 21, 2026Advanced Energy and Sustainability Research7 citationsOpen Access

Emerging Heterogeneous Catalysis for Valorization of Biomass‐Derived Platform Molecules: The Systematic Review Toward Sustainable Biorefinery Applications

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PLPratikkumar LakhaniASAtthapon Srifa

Key Points

  • This review aims to analyze the potential of heterogeneous catalysts in transforming biomass-derived molecules into high-value chemicals and fuels.
  • Overview of various catalyst families including metal oxides, zeolites, and metal-organic frameworks.
  • Study of structural features, active sites, and reaction mechanisms like hydrogenation and etherification.
  • Assessment of acid-base and redox functionalities, and metal-support interactions.
  • Heterogeneous catalysts show promise for upgrading biomass-derived molecules like furfural and glycerol.
  • Catalyst families exhibit operational resilience and compatibility with continuous-flow operations.
  • Limitations and future directions for next-generation catalytic systems in sustainable biorefineries are discussed.

Abstract

The transition toward a circular and sustainable bioeconomy requires new catalytic technology to transform renewable biomass into high‐value chemicals and fuels. Heterogeneous catalysts have demonstrated themselves to be key devices in this regard, providing operational resilience, recoverability, and compatibility with industrially continuous‐flow operation. This review provides an overview of the promise of heterogeneous catalysts, described as the selective upgrading of four important biomass‐derived platform molecules furfural, 5‐hydroxymethylfurfural (HMF), levulinic acid (LA), and glycerol. Importantly, the catalyst families including metal oxides, supported metals, zeolites, metal–organic frameworks (MOFs), porous organic polymers (POPs), and carbon‐based materials have been extensively studied in structural features, active sites, and reaction mechanisms in processes such as hydrogenation, etherification, dehydration, and hydrodeoxygenation. Particular focus is given to the synergy of acid–base and redox functionalities, metal–support interactions, and multifunctional architectures that facilitate tandem and cascade reactions. The review closes by summarizing current limitations and providing insights for next‐generation catalytic systems designed for scalable, selective, and green biorefinery purposes.

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Cite This Study

Lakhani et al. (2026) studied this question.

synapsesocial.com/papers/69994d42873532290d021d6chttps://doi.org/10.1002/aesr.202500402
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