Enhanced Charge-Density-Wave Order and Suppressed Superconductivity in Intercalated Bulk $\mathrm{Nb}{\mathrm{Se}}_{2}$

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Main Authors: Shi, Huanhuan, Li, Qili, Baron, Antoine M. T., Méasson, Marie-Aude, Kang, Sangjun, Fuchs, Dirk, Henssler, Fabian, Haas, Alexander, Battistoni, Paolo, Maraytta, Nour, Merz, Michael, Haghighirad, Amir-Abbas, Wulfhekel, Wulf, Kübel, Christian, Tacon, Matthieu Le
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Published: 2026
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author Shi, Huanhuan
Li, Qili
Baron, Antoine M. T.
Méasson, Marie-Aude
Kang, Sangjun
Fuchs, Dirk
Henssler, Fabian
Haas, Alexander
Battistoni, Paolo
Maraytta, Nour
Merz, Michael
Haghighirad, Amir-Abbas
Wulfhekel, Wulf
Kübel, Christian
Tacon, Matthieu Le
author_facet Shi, Huanhuan
Li, Qili
Baron, Antoine M. T.
Méasson, Marie-Aude
Kang, Sangjun
Fuchs, Dirk
Henssler, Fabian
Haas, Alexander
Battistoni, Paolo
Maraytta, Nour
Merz, Michael
Haghighirad, Amir-Abbas
Wulfhekel, Wulf
Kübel, Christian
Tacon, Matthieu Le
contents The electronic ground states of transition-metal dichalcogenides are strongly shaped by reduced dimensionality, yet the properties of atomically thin layers remain difficult to probe due to their small size and environmental sensitivity. Here we demonstrate that controlled electrochemical intercalation of organic cations provides a robust bulk platform for accessing monolayer-like physics in NbSe$_2$. Intercalation of tetrapropylammonium and tetrabutylammonium expands the interlayer spacing by nearly a factor of two, electronically decoupling the NbSe$_2$ layers while simultaneously introducing well-defined charge doping. Using a combination of Raman spectroscopy, scanning tunneling microscopy, X-ray diffraction, and photoemission, we uncover a pronounced enhancement of the charge-density-wave transition temperature to $\sim 130$ K together with a strong suppression of superconductivity, reproducing the phase diagram observed in exfoliated monolayers. The enhanced charge-density-wave order and reduced $T_c$ arise from the combined effects of dimensionality reduction and electron injection, and are accompanied by distinct dip-hump anomalies in the tunneling spectra suggestive of collective mode excitations. Our results establish molecular intercalation as a powerful and scalable route for engineering competing orders in layered quantum materials.
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id arxiv_https___arxiv_org_abs_2601_14902
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Enhanced Charge-Density-Wave Order and Suppressed Superconductivity in Intercalated Bulk $\mathrm{Nb}{\mathrm{Se}}_{2}$
Shi, Huanhuan
Li, Qili
Baron, Antoine M. T.
Méasson, Marie-Aude
Kang, Sangjun
Fuchs, Dirk
Henssler, Fabian
Haas, Alexander
Battistoni, Paolo
Maraytta, Nour
Merz, Michael
Haghighirad, Amir-Abbas
Wulfhekel, Wulf
Kübel, Christian
Tacon, Matthieu Le
Superconductivity
The electronic ground states of transition-metal dichalcogenides are strongly shaped by reduced dimensionality, yet the properties of atomically thin layers remain difficult to probe due to their small size and environmental sensitivity. Here we demonstrate that controlled electrochemical intercalation of organic cations provides a robust bulk platform for accessing monolayer-like physics in NbSe$_2$. Intercalation of tetrapropylammonium and tetrabutylammonium expands the interlayer spacing by nearly a factor of two, electronically decoupling the NbSe$_2$ layers while simultaneously introducing well-defined charge doping. Using a combination of Raman spectroscopy, scanning tunneling microscopy, X-ray diffraction, and photoemission, we uncover a pronounced enhancement of the charge-density-wave transition temperature to $\sim 130$ K together with a strong suppression of superconductivity, reproducing the phase diagram observed in exfoliated monolayers. The enhanced charge-density-wave order and reduced $T_c$ arise from the combined effects of dimensionality reduction and electron injection, and are accompanied by distinct dip-hump anomalies in the tunneling spectra suggestive of collective mode excitations. Our results establish molecular intercalation as a powerful and scalable route for engineering competing orders in layered quantum materials.
title Enhanced Charge-Density-Wave Order and Suppressed Superconductivity in Intercalated Bulk $\mathrm{Nb}{\mathrm{Se}}_{2}$
topic Superconductivity
url https://arxiv.org/abs/2601.14902