scispace - formally typeset
M

Michael S. Fuhrer

Researcher at Monash University

Publications -  329
Citations -  29591

Michael S. Fuhrer is an academic researcher from Monash University. The author has contributed to research in topics: Graphene & Carbon nanotube. The author has an hindex of 70, co-authored 309 publications receiving 26802 citations. Previous affiliations of Michael S. Fuhrer include University of California & University of New South Wales.

Papers
More filters
Journal ArticleDOI

Selective control of surface spin current in topological pyrite-type OsX2 (X = Se, Te) crystals

TL;DR: In this article, it was shown that the formation of low-energy states with symmetry-protected energy and direction-dependent spin textures on the (001) surface of these materials is a consequence of a transformation from a topologically trivial to nontrivial state, induced by spin orbit interactions.
Proceedings Article

Nanotube nanoelectronics

TL;DR: A review of nanoelectronic devices with nanotubes as the active element can be found in this article, with a focus on single walled carbon nanotube (SWNT) as the prototypical one-dimensional conductor.
Journal ArticleDOI

Dirac-point photocurrents due to photothermoelectric effect in non-uniform graphene devices

TL;DR: It is argued that gradients in charge carrier density give rise to a photothermoelectric effect (PTE) which is strongly peaked around charge neutrality, and the PTE effect in the presence of charge density gradients predicts the sign, spatial distribution, gate voltage dependence, and temperature dependence of the photoresponse in non-uniform graphene devices.
Journal ArticleDOI

Electronic bandstructure of in-plane ferroelectric van der Waals $\beta '-In_{2}Se_{3}$

TL;DR: In this paper, angle-resolved photoelectron spectroscopy was used to directly measure the electronic bandstructure of β-in-In-Se-3, and compare to hybrid density functional theory (DFT) calculations.
Journal ArticleDOI

Importance of interactions for the band structure of the topological Dirac semimetal Na 3 Bi

TL;DR: In this article, the authors measured the band dispersions of topological Dirac semimetal thin films using Fourier-transform scanning tunneling spectroscopy to image quasiparticle interference on the (001) surface of molecular-beam epitaxy-grown ${\mathrm{Na}}_{3}-mathm{Bi}$ thin films.