Taming Atomic Defects for Quantum Functions
@inproceedings{Hus2022TamingAD, title={Taming Atomic Defects for Quantum Functions}, author={Saban M. Hus and An‐Ping Li}, year={2022} }
and the publisher, by accepting the article for publication, acknowledges that the US government retains a nonexclusive, paid-up, irrevocable, worldwide license to publish or reproduce the published form of this manuscript, or allow others to do so, for US government purposes. DOE will provide public access to these results of federally sponsored research in accordance with the DOE Public Access Plan (http://energy.gov/downloads/doe-public-access-plan). Taming Atomic Defects for Quantum…
References
SHOWING 1-10 OF 14 REFERENCES
Topological quantum matter with ultracold gases in optical lattices
- Physics
- 2016
Using optical lattices to trap ultracold atoms provides a powerful platform for probing topological phases, analogues to those found in condensed matter. But as these systems are highly tunable, they…
Quantum emitters in two dimensions
- PhysicsScience
- 2017
Two-dimensional materials offer potential for developing integrated quantum technologies based on solid-state, on-demand single-photon emitters coupled to optical resonators and waveguides that serve as building blocks for high-density, on chip quantum circuits.
Detection of the Spin-Chemical Potential in Topological Insulators Using Spin-Polarized Four-Probe STM.
- PhysicsPhysical review letters
- 2017
A new method for the detection of the spin-chemical potential in topological insulators using spin-polarized four-probe scanning tunneling microscopy is demonstrated, opening a new avenue to access the intrinsic spin transport associated with pristine TSS.
Large Spin-Orbit Splitting of Deep In-Gap Defect States of Engineered Sulfur Vacancies in Monolayer WS_{2}.
- Materials Science, PhysicsPhysical review letters
- 2019
Direct imaging of the defect orbitals reveal that the large splitting of 252±4 meV between these defect states is induced by spin-orbit coupling.
Single photon emitters in exfoliated WSe2 structures.
- PhysicsNature nanotechnology
- 2015
Complete optical micro-spectroscopy studies of thin layers of tungsten diselenide (WSe2), a representative semiconducting dichalcogenide with a bandgap in the visible spectral range, discover centres that, at low temperatures, give rise to sharp emission lines (100 μeV linewidth).
Graphene nanoribbons for quantum electronics
- PhysicsNature Reviews Physics
- 2021
Graphene nanoribbons (GNRs) are a family of one-dimensional (1D) materials carved from graphene lattice. GNRs possess high mobility and current carrying capability, sizable bandgap, and versatile…
Atomic‐Scale Manipulation and In Situ Characterization with Scanning Tunneling Microscopy
- PhysicsAdvanced Functional Materials
- 2019
Scanning tunneling microscope (STM) has presented a revolutionary methodology to nanoscience and nanotechnology. It enables imaging of the topography of surfaces, mapping the distribution of…
3D Imaging and Manipulation of Subsurface Selenium Vacancies in PdSe_{2}.
- Materials SciencePhysical review letters
- 2018
Two-dimensional materials such as layered transition-metal dichalcogenides (TMDs) are ideal platforms for studying defect behaviors, an essential step towards defect engineering for novel material…
Observation of single-defect memristor in an MoS2 atomic sheet
- ChemistryNature Nanotechnology
- 2020
These findings provide an atomistic understanding of non-volatile switching and open a new direction in precision defect engineering, down to a single defect, towards achieving the smallest memristor for applications in ultra-dense memory, neuromorphic computing and radio-frequency communication systems.