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April 1, 2026Rare Metals2 citationsOpen Access

Manipulating Terminal Bonds of Ti 3 C 2 T x MXene for Highly Efficient Microwave Absorption and Photothermal Conversion

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XFXiang FangYHYuqian HuangYLYibing Lin

Key Points

  • The research aims to improve microwave absorption performance in Ti3C2Tx MXenes through terminal bond manipulation.
  • Utilized molten salt etching to modify terminal groups in Ti3C2Tx MXenes.
  • Compared the microwave absorption performance of Ti3C2Fx, Ti3C2Clx, and Ti3C2Brx.
  • Evaluated mechanical and thermal properties of Ti3C2Clx integrated with polydimethylsiloxane (PDMS).
  • Conducted density functional theory analysis for charge transfer and polarization optimization.
  • Ti3C2Clx demonstrated a minimum reflection loss of -55.18 dB at 1.63 mm thickness.
  • Achieved an effective absorption bandwidth of 5.36 GHz at 1.52 mm thickness.
  • Ti3C2Clx/PDMS composite showed a 230% increase in tensile strength over pure PDMS.
  • The composite exhibited a 170% rise in thermal conductivity and reached 60°C under sunlight irradiation.

Abstract

ABSTRACT MXenes have been widely investigated as microwave absorption (MA) materials because of their unique properties. This study introduces a terminal bond manipulation strategy to enhance charge transfer and polarization in Ti 3 C 2 T x , optimizing its MA performance. The strategy uses molten salt etching to create Ti 3 C 2 T x MXenes with F, Cl, or Br as terminal groups. Among these, Ti 3 C 2 Cl x demonstrates the best MA performance, with a minimum reflection loss of −55.18 dB at an absorber thickness of 1.63 mm and an effective absorption bandwidth of 5.36 GHz at an absorber thickness of 1.52 mm, respectively. Density functional theory reveals directional charge transfer from Ti to T (T = F, Cl, or Br) and moderate dipole polarization, which optimize impedance matching, polarization loss, and conductive loss for enhanced MA performance. Additionally, Ti 3 C 2 Cl x improves the mechanical and thermal properties of polydimethylsiloxane (PDMS). Typically, Ti 3 C 2 Cl x /PDMS composite with 1.2 wt% Ti 3 C 2 Cl x shows 230% increase in tensile strength, 224% improvement in elongation, and 170% rise in thermal conductivity compared to pure PDMS. Moreover, the composite also exhibits excellent photothermal conversion performance, reaching 60°C under simulated sunlight irradiation of 100 mW·cm −2 . This strategy offers a pathway for developing next‐generation materials with multifunctional properties for intelligent systems.

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Cite This Study

Fang et al. (2026) studied this question.

synapsesocial.com/papers/69cd7a3e5652765b073a7443https://doi.org/10.1002/rar2.70219
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