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May 20, 2026Journal of Advanced Ceramics0 citationsOpen Access

O-termination-induced electronic modulation in MXene-based heterostructures toward sustainable hydrogen evolution

YGYutong GongRYRui YangHZHuaiyu Zhang

Key Points

  • The aim is to enhance hydrogen evolution reaction activity in MXenes by modifying their surface chemistry.
  • Utilized n-butyllithium treatment to convert -F terminations to -O groups in Ti3C2Tx.
  • Tuned -O/-F ratios in Pt/Ti3C2Tx and MoS2/Ti3C2Tx heterostructures.
  • Employed density functional theory calculations coupled with experimental characterization.
  • Pt/Ti3C2Tx-9 achieved an overpotential of 121 mV compared to 179 mV in its F-rich counterpart.
  • MoS2/Ti3C2Tx-9 showed an overpotential of 179 mV versus 209 mV for the F-rich form.
  • Optimized catalysts demonstrated improved H* adsorption via enriched -O groups.

Abstract

MXenes, a rapidly expanding family of two-dimensional (2D) materials derived from MAX phase ceramics, have emerged as transformative candidates for electrocatalysis. However, the inherent heterogeneity of surface terminations (e.g., -F, -O, -OH) inherited from synthesis often limits their potential for the hydrogen evolution reaction (HER). Herein, we report a facile surface engineering strategy to precisely modulate the surface chemistry of Ti3C2Tx by selectively converting detrimental -F terminations into catalytically advantageous -O groups via n-butyllithium treatment. By systematically tuning the -O/-F ratios, we demonstrate a significant enhancement in HER activity for both Pt/Ti3C2Tx and MoS2/Ti3C2Tx heterostructures. Our findings reveal that the optimized O-rich catalysts, Pt/Ti3C2Tx-9 (121 mV vs. 179 mV) and MoS2/Ti3C2Tx-9 (179 mV vs. 209 mV) achieve dramatically reduced overpotentials as compared to the parental F-rich analogues. Density functional theory (DFT) calculations combined with experimental characterizations unravel different enhancing mechanisms: enriched -O groups facilitate electron depletion from Pt nanoparticles to enhance H* adsorption, while conversely inducing electron accumulation on Mo sites to alleviate excessive H* binding. This work establishes a scalable methodology for tailoring the surface chemistry of MXene-based functional ceramics and provides profound insights into interfacial electronic modulation for highly efficient hydrogen production.

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Cite This Study

Gong et al. (2026) studied this question.

synapsesocial.com/papers/6a0d4e9df03e14405aa99dfbhttps://doi.org/10.26599/jac.2026.9221323
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Tuned interfacial hydrogen bonds for enhanced H2 electrocatalysis kinetics on Ti2C MXenes2026
  2. 22D/2D Heterojunction Interfaces of 1T-MoS2 and Ti3C2 MXene: Designing High-Performance Catalyst for the Hydrogen Evolution Reaction2025
  3. 3Surface Termination (−O, −F or −OH) and Metal Doping on the HER Activity of Mo<sub>2</sub>CT<sub>x</sub> MXene2024 · 3 citations
  4. 4Engineering Mo <sub>2</sub> TiC <sub>2</sub> T <sub> <i>x</i> </sub> MXene Electrocatalyst via Metal‐Ion Intercalation Toward Efficient Hydrogen Evolution Reaction2025
  5. 5Surface-Tuned Ti <sub>3</sub> C <sub>2</sub> T <sub> <i>x</i> </sub> MXene Nanofiber Catalyst Decorated with Electrodeposited Nickel for High-Performance Hydrogen Evolution in Alkaline Media2026