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March 26, 2026Polysaccharides2 citationsOpen Access

Mechanical Pretreatment of Plant Biomass: Mechanisms, Energy Efficiency, Technologies, and Life Cycle Assessment

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EPEkaterina PodgorbunskikhTSTatiana SkripkinaABAleksey A. Bychkov

Key Points

  • The aim is to review and analyze recent mechanical pretreatment techniques for lignocellulosic biomass to improve biorefinery processes.
  • Critical synthesis of advancements from 2020 to 2025
  • Evaluation of mechanisms and hybrid technologies
  • Assessment of energy efficiency and life cycle impact
  • Identification of scalability and environmental hotspots
  • Effective pretreatment involves supramolecular modifications beyond size reduction.
  • Impact-shear regimes are most efficient for fibrous materials.
  • Hybrid methods like mechanocatalysis and mechanoenzymatic technologies show promise but face challenges.
  • Energy consumption is a major barrier for scaling, with electricity use highlighted as critical.

Abstract

Mechanical pretreatment techniques are essential for overcoming lignocellulosic biomass recalcitrance in emerging biorefineries. This review critically synthesizes advances from 2020 to 2025 across fundamental mechanisms, hybrid technologies, energy efficiency, Life Cycle Assessment, and industrial scalability. The analysis reveals that effective pretreatment targets supramolecular modification—defect generation in cellulose crystallites and the creation of reactive sites—beyond simple particle size reduction. Impact–shear regimes prove most effective for fibrous materials. Hybrid approaches are examined: mechanocatalysis enables solvent-free depolymerization, while mechanoenzymatic technologies achieve hydrolysis without bulk water, though enzyme denaturation under mechanical stress remains unresolved. Energy consumption is the primary upscaling barrier, with Life Cycle Assessment identifying electricity use as the dominant environmental hotspot and emphasizing burden per unit of final product as the critical metric. Technology Readiness Level assessment provides a strategic framework: continuous extruders and mills are industrially mature for bulk applications, while high-intensity batch devices are suited for high-value coproducts. A research agenda prioritizing mechanistic understanding, hybrid process engineering, feedstock diversification, and embedded sustainability assessment is proposed.

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Cite This Study

Podgorbunskikh et al. (2026) studied this question.

synapsesocial.com/papers/69c4cda5fdc3bde44891a416https://doi.org/10.3390/polysaccharides7020038
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