Tailoring Superconductivity in Large-Area Single<i>-</i>Layer NbSe<sub>2</sub> via Self-Assembled Molecular Adlayers.

Calavalle, Francesco; Dreher, Paul; Surdendran, Ananthu P; Wan, Wen; Timpel, Melanie; Verucchi, Roberto; Rogero, Celia; Bauch, Thilo et al. · Nano Lett · 2021

basic_science · Level V

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Abstract

Two-dimensional transition metal dichalcogenides (TMDs) represent an ideal testbench for the search of materials by design, because their optoelectronic properties can be manipulated through surface engineering and molecular functionalization. However, the impact of molecules on intrinsic physical properties of TMDs, such as superconductivity, remains largely unexplored. In this work, the critical temperature (<i>T</i><sub>C</sub>) of large-area NbSe<sub>2</sub> monolayers is manipulated, employing ultrathin molecular adlayers. Spectroscopic evidence indicates that aligned molecular dipoles within the self-assembled layers act as a fixed gate terminal, collectively generating a macroscopic electrostatic field on NbSe<sub>2</sub>. This results in an ∼55% increase and a 70% decrease in <i>T</i><sub>C</sub> depending on the electric field polarity, which is controlled via molecular selection. The reported functionalization, which improves the air stability of NbSe<sub>2</sub>, is efficient, practical, up-scalable, and suited to functionalize large-area TMDs. Our results indicate the potential of hybrid 2D materials as a novel platform for tunable superconductivity.