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Atomic and Electronic Structure of a Multidomain GeTe Crystal.

Authors :
Frolov AS
Sánchez-Barriga J
Callaert C
Hadermann J
Fedorov AV
Usachov DY
Chaika AN
Walls BC
Zhussupbekov K
Shvets IV
Muntwiler M
Amati M
Gregoratti L
Varykhalov AY
Rader O
Yashina LV
Source :
ACS nano [ACS Nano] 2020 Dec 22; Vol. 14 (12), pp. 16576-16589. Date of Electronic Publication: 2020 Nov 02.
Publication Year :
2020

Abstract

Renewed interest in the ferroelectric semiconductor germanium telluride was recently triggered by the direct observation of a giant Rashba effect and a 30-year-old dream about a functional spin field-effect transistor. In this respect, all-electrical control of the spin texture in this material in combination with ferroelectric properties at the nanoscale would create advanced functionalities in spintronics and data information processing. Here, we investigate the atomic and electronic properties of GeTe bulk single crystals and their (111) surfaces. We succeeded in growing crystals possessing solely inversion domains of ∼10 nm thickness parallel to each other. Using HAADF-TEM we observe two types of domain boundaries, one of them being similar in structure to the van der Waals gap in layered materials. This structure is responsible for the formation of surface domains with preferential Te-termination (∼68%) as we determined using photoelectron diffraction and XPS. The lateral dimensions of the surface domains are in the range of ∼10-100 nm, and both Ge- and Te-terminations reveal no reconstruction. Using spin-ARPES we establish an intrinsic quantitative relationship between the spin polarization of pure bulk states and the relative contribution of different terminations, a result that is consistent with a reversal of the spin texture of the bulk Rashba bands for opposite configurations of the ferroelectric polarization within individual nanodomains. Our findings are important for potential applications of ferroelectric Rashba semiconductors in nonvolatile spintronic devices with advanced memory and computing capabilities at the nanoscale.

Details

Language :
English
ISSN :
1936-086X
Volume :
14
Issue :
12
Database :
MEDLINE
Journal :
ACS nano
Publication Type :
Academic Journal
Accession number :
33136362
Full Text :
https://doi.org/10.1021/acsnano.0c05851