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March 3, 2026Communications Materials9 citationsOpen Access

MXene-based stimuli-responsive and autonomous intelligent materials

AAArash AdhamiMMMohammad MozafariMSMasoud Soroush

Key Points

  • MXene-based stimuli-responsive materials exhibit remarkable functionality due to their high conductivity and mechanical compliance.
  • The review highlights their responsiveness to diverse stimuli, including light, heat, and mechanical deformation, demonstrating potential applications in intelligent systems.
  • Analysis of design strategies like hybrid architectures and interfacial engineering reveals pathways for enhancing multi-stimuli responsiveness in these materials.
  • Current challenges around stability and biocompatibility may impact scalability, calling for innovative solutions in sustainable synthesis and manufacturing.

Abstract

MXenes, a rapidly growing class of two-dimensional transition metal carbides and nitrides, have emerged as powerful building blocks for stimuli-responsive materials (SRMs) owing to their high conductivity, tunable surface chemistry, mechanical compliance, and strong photothermal effects. This review critically summarizes recent advances in MXene-based SRMs that respond to light, heat, mechanical deformation, chemical environments, magnetic fields, and biological cues. Emphasis is placed on multifunctional composites, including hydrogels, elastomers, and shape memory polymers, which enable sensing, actuation, and therapeutic functions. Key design strategies such as hybrid architectures, interfacial engineering, dispersion control, and the integration of multi–transition-metal MXenes are discussed in relation to multi-stimuli responsiveness and programmable behavior. Current challenges related to stability, biocompatibility, and scalability are examined, along with emerging solutions in sustainable synthesis and additive manufacturing. Finally, future directions toward intelligent and autonomous MXene-based SRMs are outlined. This Review explores recent advances in MXene-based stimuli-responsive materials that respond to light, heat, mechanical deformation, chemical environment, magnetic fields, and biological cues. Opportunities for translating these intelligent materials into practical technologies by exploiting their multimodal responsiveness is also discussed

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Cite This Study

Adhami et al. (2026) studied this question.

synapsesocial.com/papers/69a75ec5c6e9836116a29aeahttps://doi.org/10.1038/s43246-026-01074-4
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