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Heteronanoarchitecture of Ti <sub>3</sub> C <sub>2</sub> T <i> <sub>x</sub> </i> MXene and Amorphous MOF for Exceptional Durability in Electro‐Ionic Soft Actuator

Manmatha Mahato, Jaehwan Kim, Myung‐Joon Lee, Seongjun Jo, Gwonmin Kim, Sanghee Nam, Ji‐Seok Kim, Van Hiep Nguyen, Mousumi Garai, Hyunjoon Yoo, Daniel Saatchi, Zakir Ullah, Chi Won Ahn, Yury Gogotsi, Il‐Kwon Oh

2025Advanced Materials11 citationsDOIOpen Access PDF

Abstract

Abstract The assembly of 2D nanosheets with other functional nanomaterials enables the creation of materials with unique property combinations that cannot be achieved in single‐phase materials. In particular, a combination of inorganic and organic components provides a pathway to structures offering highly durable ionic and electronic conductivity simultaneously. Here, a controlled growth of amorphous metal–organic framework ( a MOF) in the interlayer spaces of Ti 3 C 2 T x MXene for enhancing oxidation stability and accelerating fast ion transport is reported. The hydrophilic terminations of MXene provide support for the continuous growth of iron‐based a MOF in the available interlayer 2D slits. Effective electronic interactions involving hydrogen bonding, coordination, and esterification in‐between the open surfaces of MXene and nanoporous a MOF enhance the electrochemical strength of MXene– a MOF hybrid electrodes and allow the design of extremely durable electro‐ionic soft actuators. The MXene– a MOF exhibits a fivefold increment in electroactuation compared to a conventional poly(3,4‐ethylenedioxythiophene)‐poly(styrenesulfonate) soft actuator, with robust stability up to 50 000 cycles in open air. Using the MXene– a MOF soft actuator, a deformable morphing surface with reversibly adjustable shapes and patterns is demonstrated.

Topics & Concepts

Materials scienceNanoporousAmorphous solidIonic bondingElectrochemistryNanotechnologyChemical engineeringIonic liquidElectrodeNanomaterialsMetal-organic frameworkIonAdsorptionCatalysisOrganic chemistryPhysical chemistryChemistryEngineeringMXene and MAX Phase MaterialsAdvanced Sensor and Energy Harvesting MaterialsDielectric materials and actuators
Heteronanoarchitecture of Ti <sub>3</sub> C <sub>2</sub> T <i> <sub>x</sub> </i> MXene and Amorphous MOF for Exceptional Durability in Electro‐Ionic Soft Actuator | Litcius