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May 31, 2026Small0 citations

Intrinsic Manipulation of Interfacial Water in Titanium Carbide MXene via Carbon Vacancy Engineering for Superior Pseudocapacitive Storage

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ZYZhiwei YangRHRenzhong HouCYChengzhi Yuan

Key Points

  • This research aims to explore the intrinsic engineering of interfacial water interactions in Ti3C2 MXene through carbon vacancy introduction.
  • Introduced carbon vacancies in Ti3C2 MXene to enhance surface electronegativity and optimize hydrogen bonding with water.
  • Evaluated electrochemical performance measurements, including scan rates and capacitance values, against near-stoichiometric counterparts.
  • Ti3C1.7 achieved a capacitance of 348 F g−1 at 5 mV s−1, a 47% increase over Ti3C2.0.
  • Co-engineered electrode attained a capacitance of 382 F g−1, retaining 45% capacitance at 5000 mV s−1.

Abstract

ABSTRACT The electrochemical performance of Ti 3 C 2 T x MXene arises from chemical and electrostatic interactions between its surface terminations and interlayer molecules. Moving beyond the conventional paradigm of relying on the intercalation of external guest species to modulate this network, this study addresses a more fundamental question: can the interaction environment be intrinsically engineered from within the MXene lattice? Here, carbon (C) vacancies are introduced as a precise strategy to polarize the surface electronic structure, specifically enhancing the electronegativity of oxygen terminations. This polarization strengthens the hydrogen bonding (H‐bonding) interactions with confined water, leading to the formation of a thermally stable, “active and fixed” interlayer architecture. This optimized structure results in a significant increase in intrinsic capacitance, with the Ti 3 C 1.7 electrode achieving 348 F g −1 at 5 mV s −1 , a 47% enhancement over the near‐stoichiometric Ti 3 C 2.0 . Subsequent anodic oxidation alleviated ion diffusion limitations at high rates, synergistically improving rate capability. The co‐engineered electrode achieved a high capacitance of 382 F g −1 while retaining 45% capacitance at an ultra‐high scan rate of 5000 mV s −1 . This work establishes the rational design of interfacial H‐bonding networks as a core principle for advanced MXene electrodes, offering a pathway to high energy and power densities.

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Cite This Study

Yang et al. (2026) studied this question.

synapsesocial.com/papers/6a1bd2845783ba022b6fdf60https://doi.org/10.1002/smll.73986
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