Photothermal effects control ultrafast charge transport in titanium carbide MXenes
Abstract
Abstract Titanium carbide MXene (Ti₃C₂T ₓ ) is an emerging metallic material with promise for (opto)electronics and thermal management. Yet how photoexcitation—particularly via photogenerated thermal energy—modifies its charge carrier dynamics remains poorly understood. By combining time-resolved terahertz spectroscopy and transient reflectance measurements, we reveal a long-lived, photo-induced suppression of conductivity, which we attribute to efficient lattice heating and slow heat dissipation in Ti₃C₂T x . A systematic variation of pump photon energy reveals that this ‘negative’ photoconductivity can equivalently be induced by lattice temperature increases, indicating a thermal origin. Repetition-rate-dependent transient reflectance measurements further show residual heat persisting over 100 ns, substantially longer than in conventional metals. Our work presents a unified understanding of photothermal effects in Ti₃C₂T ₓ and their influence on non-equilibrium charge transport, underscoring its potential for photothermal electronics and light-to-thermal energy storage applications.
Article Details
Authors (14)
Wenhao Zheng
Academy for Advanced Interdisciplinary Science and Technology, Beijing Key Laboratory for Advanced Energy Materials and Technologies, State Key Laboratory for Advanced Metals and Materials
Hugh Ramsden
Stefano Ippolito
Max van Hemert
Danzhen Zhang
Teng Zhang
Dongqi Li
Faculty of Chemistry and Food Chemistry & Center for Advancing Electronics Dresden (cfaed)
Guanzhao Wen
Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany
Jaco J. Geuchies
Minghao Yu
Faculty of Chemistry and Food Chemistry & Center for Advancing Electronics Dresden (cfaed)
Xinliang Feng
Yury Gogotsi
Klaas-Jan Tielrooij
Hai I. Wang
Max Planck Institute for Polymer Research, Ackermannweg 10, Mainz 55128, Germany