@article{2fc2af8726484e53a415bbe24b94f827,
title = "Coupled ferroelectricity and superconductivity in bilayer Td-MoTe2",
abstract = "Achieving electrostatic control of quantum phases is at the frontier of condensed matter research. Recent investigations have revealed superconductivity tunable by electrostatic doping in twisted graphene heterostructures and in two-dimensional semimetals such as WTe2 (refs. 1–5). Some of these systems have a polar crystal structure that gives rise to ferroelectricity, in which the interlayer polarization exhibits bistability driven by external electric fields6–8. Here we show that bilayer Td-MoTe2 simultaneously exhibits ferroelectric switching and superconductivity. Notably, a field-driven, first-order superconductor-to-normal transition is observed at its ferroelectric transition. Bilayer Td-MoTe2 also has a maximum in its superconducting transition temperature (Tc) as a function of carrier density and temperature, allowing independent control of the superconducting state as a function of both doping and polarization. We find that the maximum Tc is concomitant with compensated electron and hole carrier densities and vanishes when one of the Fermi pockets disappears with doping. We argue that this unusual polarization-sensitive two-dimensional superconductor is driven by an interband pairing interaction associated with nearly nested electron and hole Fermi pockets.",
author = "Apoorv Jindal and Amartyajyoti Saha and Zizhong Li and Takashi Taniguchi and Kenji Watanabe and Hone, \{James C.\} and Turan Birol and Fernandes, \{Rafael M.\} and Dean, \{Cory R.\} and Pasupathy, \{Abhay N.\} and Rhodes, \{Daniel A.\}",
note = "We thank A. Millis for discussions. The experimental portion of this research was primarily supported by the NSF MRSEC program through Columbia University in the Center for Precision-Assembled Quantum Materials under award no. DMR-2011738 (fabrication, measurements and data analysis). A.S., T.B. and R.M.F. (theoretical modelling) were supported by the National Science Foundation through the University of Minnesota MRSEC (grant no. DMR-2011401). D.A.R. and Z.L. (growth, measurements and data analysis) were supported by the University of Wisconsin-Madison, Office of the Vice Chancellor for Research and Graduate Education with funding from the Wisconsin Alumni Research Foundation. D.A.R. was partially supported by the NSF MRSEC program through the University of Wisconsin-Madison under award no. DMR-1720415. A.N.P. acknowledges salary support from the NSF via grant no. DMR-2004691, from AFOSR via grant no. FA9550-21-1-0378 by the ARO-MURI program with award no. W911NF-21-1-0327. K.W. and T.T. acknowledge support from the Element Strategy Initiative conducted by the MEXT, Japan (grant no. JPMXP0112101001) and JSPS KAKENHI (grant nos. 19H05790, 20H00354 and 21H05233).",
year = "2023",
month = jan,
day = "5",
doi = "10.1038/s41586-022-05521-3",
language = "English (US)",
volume = "613",
pages = "48--52",
journal = "Nature",
issn = "0028-0836",
publisher = "Nature Research",
number = "7942",
}