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1.
Phys Rev Lett ; 123(9): 096802, 2019 Aug 30.
Artículo en Inglés | MEDLINE | ID: mdl-31524477

RESUMEN

Twisted graphene bilayers provide a versatile platform to engineer metamaterials with novel emergent properties by exploiting the resulting geometric moiré superlattice. Such superlattices are known to host bulk valley currents at tiny angles (α≈0.3°) and flat bands at magic angles (α≈1°). We show that tuning the twist angle to α^{*}≈0.8° generates flat bands away from charge neutrality with a triangular superlattice periodicity. When doped with ±6 electrons per moiré cell, these bands are half-filled and electronic interactions produce a symmetry-broken ground state (Stoner instability) with spin-polarized regions that order ferromagnetically. Application of an interlayer electric field breaks inversion symmetry and introduces valley-dependent dispersion that quenches the magnetic order. With these results, we propose a solid-state platform that realizes electrically tunable strong correlations.

2.
Phys Rev Lett ; 120(18): 183603, 2018 May 04.
Artículo en Inglés | MEDLINE | ID: mdl-29775339

RESUMEN

We explore the influence of dissipation on a paradigmatic driven-dissipative model where a collection of two level atoms interact with both quadratures of a quantum cavity mode. The closed system exhibits multiple phase transitions involving discrete and continuous symmetries breaking and all phases culminate in a multicritical point. In the open system, we show that infinitesimal dissipation erases the phase with broken continuous symmetry and radically alters the model's phase diagram. The multicritical point now becomes brittle and splits into two tricritical points where first- and second-order symmetry-breaking transitions meet. A quantum fluctuations analysis shows that, surprisingly, the tricritical points exhibit anomalous finite fluctuations, as opposed to standard tricritical points arising in ^{3}He-^{4}He mixtures. Our work has direct implications for a variety of fields, including cold atoms and ions in optical cavities, circuit-quantum electrodynamics as well as optomechanical systems.

3.
Nano Lett ; 15(9): 6003-8, 2015 Sep 09.
Artículo en Inglés | MEDLINE | ID: mdl-26280388

RESUMEN

We present an electronic transport experiment in graphene where both classical and quantum mechanical charge detector back-action on a quantum dot are investigated. The device consists of two stacked graphene quantum dots separated by a thin layer of boron nitride. This device is fabricated by van der Waals stacking and is equipped with separate source and drain contacts to both dots. By applying a finite bias to one quantum dot, a current is induced in the other unbiased dot. We present an explanation of the observed measurement-induced current based on strong capacitive coupling and energy dependent tunneling barriers, breaking the spatial symmetry in the unbiased system. This is a special feature of graphene-based quantum devices. The experimental observation of transport in classically forbidden regimes is understood by considering higher-order quantum mechanical back-action mechanisms.

4.
Phys Rev Lett ; 115(19): 195303, 2015 Nov 06.
Artículo en Inglés | MEDLINE | ID: mdl-26588394

RESUMEN

We propose a realistic scheme to detect the 4D quantum Hall effect using ultracold atoms. Based on contemporary technology, motion along a synthetic fourth dimension can be accomplished through controlled transitions between internal states of atoms arranged in a 3D optical lattice. From a semiclassical analysis, we identify the linear and nonlinear quantized current responses of our 4D model, relating these to the topology of the Bloch bands. We then propose experimental protocols, based on current or center-of-mass-drift measurements, to extract the topological second Chern number. Our proposal sets the stage for the exploration of novel topological phases in higher dimensions.

5.
Phys Rev Lett ; 115(16): 166603, 2015 Oct 16.
Artículo en Inglés | MEDLINE | ID: mdl-26550890

RESUMEN

Quantum engineering requires controllable artificial systems with quantum coherence exceeding the device size and operation time. This can be achieved with geometrically confined low-dimensional electronic structures embedded within ultraclean materials, with prominent examples being artificial atoms (quantum dots) and quantum corrals (electronic cavities). Combining the two structures, we implement a mesoscopic coupled dot-cavity system in a high-mobility two-dimensional electron gas, and obtain an extended spin-singlet state in the regime of strong dot-cavity coupling. Engineering such extended quantum states presents a viable route for nonlocal spin coupling that is applicable for quantum information processing.

6.
J Evid Based Soc Work (2019) ; 18(1): 85-100, 2021.
Artículo en Inglés | MEDLINE | ID: mdl-32856563

RESUMEN

Purpose: This study sought to explore the lived experience of trained social work students as first responders in a shared war reality. Method: Data were gathered from three focus groups conducted with social work students following their professional intervention during a period of protracted warfare. Results: The main theme depicts a movement from an experience of uncertainty to certainty, as the students shifted from being subjects under threat to being object-helpers on duty. Discussion: The findings highlight the interactive nature of individual and environmental aspects of resilience as a dynamic process in the face of adversity. Practical implications are discussed in the context of first responders' resilience in a shared war reality. Conclusion: First responders must experience certainty in order to function effectively. To provide more support to novice helpers, a first responders training program should be implemented as part of the mandatory curriculum of social work studies.


Asunto(s)
Conflictos Armados , Socorristas , Trabajadores Sociales/psicología , Femenino , Grupos Focales , Humanos , Capacitación en Servicio , Israel , Masculino , Investigación Cualitativa , Resiliencia Psicológica
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