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March 6, 2026Sustainability12 citationsOpen Access

Recycled Cellulosic Natural Fibers and Their Reinforced Polymer Composites: Processing Methods, Applications, Challenges and Future Directions

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MAMulat Alubel AbtewEGEsubalew Kasaw GebeyehuBDBekinew Kitaw Dejene

Key Points

  • The aim is to evaluate recycled cellulosic fiber composites' potential, challenges, and future directions for sustainable engineering applications.
  • Critical review of recent advances in RCF composites
  • Analysis of structure–processing–performance relationships
  • Assessment of environmental factors affecting durability
  • Evaluation of emerging strategies like hybrid reinforcement and surface functionalization
  • Identified performance discrepancies due to undefined structure–property relationships
  • Highlighted the need for standardized testing protocols for recycled fibers
  • Confirmed that RCF composites can enhance circular material systems if properly designed and assessed

Abstract

Recycled cellulosic fiber (RCF) composites offer significant potential to reduce environmental burdens associated with virgin fiber production; however, their broader adoption remains limited by feedstock variability, recycling-induced degradation, and uncertainty regarding long-term performance. This review critically synthesizes recent advances in RCF composites using a structure–processing–performance–sustainability framework, treating recycled fibers as secondary materials with distinct morphological, chemical, and mechanical characteristics rather than direct substitutes for virgin reinforcements. Emphasis is placed on the effects of fiber shortening, surface damage, moisture sensitivity, and altered surface chemistry on interfacial adhesion, load transfer efficiency, durability, and failure mechanisms. The analysis reveals that many reported performance discrepancies arise from poorly defined structure–property relationships and the absence of standardized characterization, grading, and durability testing protocols for recycled fibers. Addressing these gaps enables more reliable predictive modeling and application-specific material design. Beyond mechanical behavior, the review evaluates various critical factors for integration into higher-value applications such as durability under realistic service conditions, including environmental aging, fire performance, and long-term stability. Emerging strategies such as hybrid reinforcement, environmentally benign surface functionalization, smart functionalities, and recyclable or bio-based matrices are assessed for their potential to enhance multifunctionality and circularity. Overall, the findings indicate that RCF composites can meaningfully contribute to circular material systems if materials design, performance validation, and life-cycle assessment are integrated systematically. Advancing standardized evaluation and aligning materials innovation with circular economy principles are essential to transition RCF composites from downcycled applications to reliable, performance-oriented components in sustainable engineering systems.

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Cite This Study

Abtew et al. (2026) studied this question.

synapsesocial.com/papers/69aa70a9531e4c4a9ff5a9c2https://doi.org/10.3390/su18052500
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