inelastic electron tunneling
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2021 ◽  
Vol 7 (33) ◽  
pp. eabg2616
Author(s):  
Max Hänze ◽  
Gregory McMurtrie ◽  
Susanne Baumann ◽  
Luigi Malavolti ◽  
Susan N. Coppersmith ◽  
...  

Stochastic resonance, where noise synchronizes a system’s response to an external drive, is a wide-reaching phenomenon found in noisy systems spanning from the dynamics of neurons to the periodicity of ice ages. Quantum tunneling can extend stochastic resonance to the quantum realm. We demonstrate quantum stochastic resonance for magnetic transitions in atoms by inelastic electron tunneling with a scanning tunneling microscope. Stochastic resonance is shown deep in the quantum regime, where spin-state fluctuations are driven by tunneling of the magnetization, and in a semiclassical crossover region, where thermally excited electrons drive transitions between ground and excited states. Inducing synchronization by periodically modulating transition rates provides a general mechanism to determine real-time spin dynamics ranging from milliseconds to picoseconds.


2021 ◽  
Vol 12 (1) ◽  
Author(s):  
Haoliang Qian ◽  
Shilong Li ◽  
Su-Wen Hsu ◽  
Ching-Fu Chen ◽  
Fanglin Tian ◽  
...  

AbstractOn-chip plasmonic circuitry offers a promising route to meet the ever-increasing requirement for device density and data bandwidth in information processing. As the key building block, electrically-driven nanoscale plasmonic sources such as nanoLEDs, nanolasers, and nanojunctions have attracted intense interest in recent years. Among them, surface plasmon (SP) sources based on inelastic electron tunneling (IET) have been demonstrated as an appealing candidate owing to the ultrafast quantum-mechanical tunneling response and great tunability. However, the major barrier to the demonstrated IET-based SP sources is their low SP excitation efficiency due to the fact that elastic tunneling of electrons is much more efficient than inelastic tunneling. Here, we remove this barrier by introducing resonant inelastic electron tunneling (RIET)—follow a recent theoretical proposal—at the visible/near-infrared (NIR) frequencies and demonstrate highly-efficient electrically-driven SP sources. In our system, RIET is supported by a TiN/Al2O3 metallic quantum well (MQW) heterostructure, while monocrystalline silver nanorods (AgNRs) were used for the SP generation (localized surface plasmons (LSPs)). In principle, this RIET approach can push the external quantum efficiency (EQE) close to unity, opening up a new era of SP sources for not only high-performance plasmonic circuitry, but also advanced optical sensing applications.


2021 ◽  
Vol 33 (8) ◽  
pp. 2007299
Author(s):  
Prosper Ngabonziza ◽  
Yi Wang ◽  
Peter A. van Aken ◽  
Joachim Maier ◽  
Jochen Mannhart

2020 ◽  
Vol 6 (38) ◽  
pp. eabb5988 ◽  
Author(s):  
Bruno Schuler ◽  
Katherine A. Cochrane ◽  
Christoph Kastl ◽  
Edward S. Barnard ◽  
Edward Wong ◽  
...  

Quantum dot–like single-photon sources in transition metal dichalcogenides (TMDs) exhibit appealing quantum optical properties but lack a well-defined atomic structure and are subject to large spectral variability. Here, we demonstrate electrically stimulated photon emission from individual atomic defects in monolayer WS2 and directly correlate the emission with the local atomic and electronic structure. Radiative transitions are locally excited by sequential inelastic electron tunneling from a metallic tip into selected discrete defect states in the WS2 bandgap. Coupling to the optical far field is mediated by tip plasmons, which transduce the excess energy into a single photon. The applied tip-sample voltage determines the transition energy. Atomically resolved emission maps of individual point defects closely resemble electronic defect orbitals, the final states of the optical transitions. Inelastic charge carrier injection into localized defect states of two-dimensional materials provides a powerful platform for electrically driven, broadly tunable, atomic-scale single-photon sources.


2020 ◽  
Vol 8 ◽  
Author(s):  
Lufang Liu ◽  
Yue Xu ◽  
Jiajie Zhu ◽  
Pan Wang ◽  
Limin Tong ◽  
...  

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