Highlights

Attomolar Detection of Low-Molecular Weight Antibiotics Using Midinfrared-Resonant Toroidal Plasmonic Metachip Technology

Arash Ahmadivand, Burak Gerislioglu, Zeinab Ramezani, and S. Amir Ghoreishi

Phys. Rev. Applied 12, 034018 (2019) - Published 11 September, 2019

The rise of toroidal plasmonic metamaterial sensors has revitalized the precision of optical immunobiosensors. While detection at ultralow concentrations with conventional midinfrared plasmonic biosensors is challenging, toroidal metamaterial technology has enabled the development of ultrasensitive, label-free recognition and detection of low-weight biological objects at femto- and attomolar concentrations. The proposed metasensor is able to detect about 600 Kantrex molecules in 200 mm3 of solution. This remarkable performance stems from the exquisite sensitivity of robustly squeezed electromagnetic fields in the toroidal plasmonic metastructures.

Magnetic Tunnel Junctions Based on Ferroelectric Hf0.5Zr0.5O2 Tunnel Barriers

Yingfen Wei, Sylvia Matzen, Thomas Maroutian, Guillaume Agnus, Mart Salverda, Pavan Nukala, Qihong Chen, Jianting Ye, Philippe Lecoeur, and Beatriz Noheda

Phys. Rev. Applied 12, 031001 (2019) - Published 6 September, 2019

Multiferroic tunnel junctions (MFTJs), featuring a ferroelectric tunnel barrier between ferromagnetic electrodes, could offer important advantages for memory and logic devices, with four nonvolatile states that can be accessed resistively. Rather than using a classic perovskite material for the barrier, the authors use the recently discovered ferroelectric Hf0.5Zr0.5O2 to fabricate standalone, highly homogeneous wire-bonded devices (at micrometer scale, in proof of principle) exhibiting four-state memory functionality. This work thus shows a clear path forward for the development of next-generation memory, logic and synaptic devices.

Modular Analysis of Arbitrary Dipolar Scatterers

Viktar S. Asadchy and Sergei A. Tretyakov

Phys. Rev. Applied 12, 024059 (2019) - Published 28 August, 2019

Analysis and optimization of the electromagnetic response of material constituents, such as atoms, molecules, or meta-atoms, is challenging. This study demonstrates that the most general dipolar response of any small scatterer can be conceptually decomposed into a set of basic, fundamental polarization phenomena. The results enable immediate, complete characterization of the electromagnetic properties of an arbitrary material or metamaterial (in the linear regime). With this approach, if you can imagine a material system, you can know its behavior—and optimize it.

Elastic Weyl Points and Surface Arc States in Three-Dimensional Structures

Xiaotian Shi, Rajesh Chaunsali, Feng Li, and Jinkyu Yang

Phys. Rev. Applied 12, 024058 (2019) - Published 28 August, 2019

The study of elastic wave propagation is relevant to many engineering applications, such as crashworthiness, nondestructive testing, and energy harvesting. The authors discuss how elastic energy can be guided along the surface of a three-dimensional mechanical structure, without any penetration to its core. The mechanical design here is inspired by the recent discovery of Weyl semimetals. Using full numerical simulations, they demonstrate robust wave propagation on the surface of a fuselagelike hollow structure, with no backscattering at corners or surface defects.

Designing an All-Carbon Membrane for Water Desalination

David Tománek and Andrii Kyrylchuk

Phys. Rev. Applied 12, 024054 (2019) - Published 26 August, 2019

Potable water, while key to human survival, is relatively scarce. Seawater is plentiful, but its desalination by reverse osmosis requires membranes that pass water molecules, but reject ions and debris. The performance of current polymer membranes is limited by insufficiency in selective ion rejection, mechanical strength, thermal stability, resilience to cleaning agents, and electrical conductance. The authors’ atomistic computational design of a membrane with layers of graphite oxide, carbon nanotubes, and carbon-based fabric addresses all of those limitations and promises significant performance improvement at low cost, through its microscopic insight into the desalination process.

Temporal Pattern Recognition with Delayed-Feedback Spin-Torque Nano-Oscillators

M. Riou, J. Torrejon, B. Garitaine, F. Abreu Araujo, P. Bortolotti, V. Cros, S. Tsunegi, K. Yakushiji, A. Fukushima, H. Kubota, S. Yuasa, D. Querlioz, M.D. Stiles, and J. Grollier

Phys. Rev. Applied 12, 024049 (2019) - Published 23 August, 2019

The recent demonstration of neuromorphic computing with spin-torque nano-oscillators points to substantial energy-saving in data analysis. However, the limited intrinsic memory of these devices (much less than a microsecond) limits their utility for analyzing temporal sequences. Here the authors overcome the short memory of a spin-torque oscillator by using a feedback loop with a delay of 1 μs, reducing the error rate during temporal-pattern classification by 99%. In addition, they determine optimal operating point of the oscillator, in terms of the current and magnetic field, to take advantage of this memory for recognition tasks.

Maximum Efficiencies and Performance-Limiting Factors of Inorganic and Hybrid Perovskite Solar Cells

Yoshitsune Kato, Shohei Fujimoto, Masayuki Kozawa, and Hiroyuki Fujiwara

Phys. Rev. Applied 12, 024039 (2019) - Published 20 August, 2019

The maximum conversion efficiencies of photovoltaic devices and performance-limiting factors of practical solar cells remain ambiguous, and thus the strict determination of current technological limits is of significant importance. This study develops an analytical scheme that allows the evaluation of realistic maximum-power conversion efficiencies of important inorganic and hybrid perovskite solar cells in conventional thin-film form. The authors show that, although efficiencies greater than 30% can be achieved for absorber layers with sharp absorption edges, many record-efficiency polycrystalline solar cells are limited by open-circuit voltage and fill-factor losses.

Magnetic Proximity Effect in a van der Waals Moiré Superlattice

Qingjun Tong, Mingxing Chen, and Wang Yao

Phys. Rev. Applied 12, 024031 (2019) - Published 16 August, 2019

Understanding the magnetic proximity effect in a van der Waals heterostructure made of monolayers of semiconductor and ferromagnet is of great interest, considering its potential applications in spin control. This article presents a general method to study the problem, combining ab initio and tight-binding calculations. The results reveal that a spin-polarized miniband with a localized state forms in the heterostructure, and can be tuned magnetically, mechanically, or electrically. The authors furthermore propose some programmable spintronic nanodevices with various functionalities, for applications in scalable quantum computation and high-density quantum circuits.

From Multiple- to Single-Pulse All-Optical Helicity-Dependent Switching in Ferromagnetic Co/Pt Multilayers

G. Kichin, M. Hehn, J. Gorchon, G. Malinowski, J. Hohlfeld, and S. Mangin

Phys. Rev. Applied 12, 024019 (2019) - Published 9 August, 2019

All-optical helicity-dependent switching of ferromagnetic thin films using ultrafast laser pulses could be very interesting for data storage applications, but has been held back, because a large number of pulses are needed to write information. This study shows that full switching is obtained for a narrow window of laser fluence and pulse duration. It also shows that a few tens of pulses are enough to switch magnetization, and that even a single pulse can have a significant effect. These results will require a reassessment of the theoretical descriptions of optical spin control that have developed over the last decade.

Indium as a High-Cooling-Power Nuclear Refrigerant for Quantum Nanoelectronics

Nikolai Yurttagül, Matthew Sarsby, and Attila Geresdi

Phys. Rev. Applied 12, 011005 (2019) - Published 31 July, 2019

Solid-state quantum electronics relies on efficient cooling of the electrons in nanoscale devices, which is typically done indirectly, via the insulating substrate of the chip. The weak electron-phonon coupling at low temperatures is, then, a roadblock on the route to ultralow temperatures. The authors demonstrate that on-chip nuclear demagnetization, using indium as the nuclear refrigerant, bypasses this bottleneck, owing to the high integration density and strong electron-nucleus coupling of In. The results showcase an enabling technology for physical discoveries and applications at ultralow electron temperatures, in or below the millikelvin regime.

Quantized Single-Ion-Channel Hodgkin-Huxley Model for Quantum Neurons

Tasio Gonzalez-Raya, Xiao-Hang Cheng, Iñigo L. Egusquiza, Xi Chen, Mikel Sanz, and Enrique Solano

Phys. Rev. Applied 12, 014037 (2019) - Published 22 July, 2019

The familiar Hodgkin-Huxley (HH) model describes transmission of a nerve impulse through an axon’s membrane in terms of the dynamics of connected electrical circuits, featuring capacitors, voltage sources, and memristors. The recent quantization of the memristor’s dynamics now allows study of a quantum version of the HH circuit. The authors reproduce the behavior of the single-ion-channel HH circuit in the quantum regime, and exploring the possibility of this setup to be the building block for bioinspired quantum neural networks. Their results will impact the fields of superconducting devices, neuromorphic quantum computing, and hardware-based solutions for quantum machine learning.

Non-Line-of-Sight Three-Dimensional Imaging with a Single-Pixel Camera

G. Musarra, A. Lyons, E. Conca, Y. Altmann, F. Villa, F. Zappa, M.J. Padgett, and D. Faccio

Phys. Rev. Applied 12, 011002 (2019) - Published 18 July, 2019

Three-dimensional (3D) reconstruction of a scene hidden from the direct line of sight is an emerging challenge, with applications in defense, security, and surveillance. The authors demonstrate 3D full-color retrieval of a hidden scene, from high-resolution time-of-flight information provided by a single-pixel camera. By combining a high-efficiency single-photon avalanche diode (SPAD) detector and a high-refresh-rate digital mirror device (DMD), this technique allows the 3D recovery of a hidden scene, with acquisition times of less than a second, and with no mechanical scanning parts.

Single-Source Multiaxis Cold-Atom Interferometer in a Centimeter-Scale Cell

Yun-Jhih Chen, Azure Hansen, Gregory W. Hoth, Eugene Ivanov, Bruno Pelle, John Kitching, and Elizabeth A. Donley

Phys. Rev. Applied 12, 014019 (2019) - Published 11 July, 2019

The use of matter-wave interferometry to detect inertial forces is already a powerful tool in precision measurement, but extending it beyond the lab to navigation applications requires optimization for compact setups. Here researchers characterize point-source atom interferometry (PSI) in a centimeter-scale cell, using an expanding cloud of cold atoms and an optical Raman interaction for simultaneous measurement of the system’s acceleration along the Raman laser beams plus its rotation vector projected into the plane perpendicular to the beams. The sensitivity measurements presented here inform the further development of quantum inertial sensing that balances size and performance.

Theory of Ion and Electron Transport Coupled with Biochemical Conversions in an Electroactive Biofilm

A.C.L. de Lichtervelde, A. ter Heijne, H.V.M. Hamelers, P.M. Biesheuvel, and J.E. Dykstra

Phys. Rev. Applied 12, 014018 (2019) - Published 10 July, 2019

Bioelectrochemical systems are an emerging technology for the recovery of electrical energy and chemicals from aqueous organic streams. Organic compounds are converted by bacteria that form a biofilm on the electrodes. To improve performance, a better understanding of the physical processes in these biofilms is needed. This study uses physics-based modeling to gain a theoretical understanding of the coupled transport and conversion processes of operating bioelectrochemical systems. Transport of organic molecules and electrons inside the biofilm does not limit current production significantly, but the accumulation of protons inside the biofilm can be a limiting factor.

Benefit from Photon Recycling at the Maximum-Power Point of State-of-the-Art Perovskite Solar Cells

Roberto Brenes, Madeleine Laitz, Joel Jean, Dane W. deQuilettes, and Vladimir Bulović

Phys. Rev. Applied 12, 014017 (2019) - Published 10 July, 2019

Self-absorption of internally radiated photons (“photon recycling”) is common in high-quality, direct-gap semiconductors, and can yield increased photovoltage in solar cells and enhanced emission efficiency in LEDs. For perovskite semiconductors, photon recycling is relatively unexplored, especially for devices under operating conditions. The authors develop a model to quantify the extent of photon recycling in state-of-the-art perovskite solar cells of varying nonradiative loss and geometry. They present clear experimental targets for material optoelectronic quality to harness photon recycling in solar cells, with major implications for achieving low-threshold lasing and efficient LEDs.

Holograms to Focus Arbitrary Ultrasonic Fields through the Skull

Sergio Jiménez-Gambín, Noé Jiménez, José María Benlloch, and Francisco Camarena

Phys. Rev. Applied 12, 014016 (2019) - Published 10 July, 2019

The precise control of ultrasound focused into the central nervous system (CNS) is limited mainly by strong phase aberrations due to refraction and attenuation by the skull. This study proposes the use of acoustic holograms to correct these phase aberrations, and also to conform arbitrary acoustic images inside the brain corresponding to CNS structures, such as the hippocampus. Experiments using a skull phantom are in excellent agreement with theory and simulations. Ultrasonic focusing can be observed for various target structures simultaneously, using an inexpensive 3D-printed acoustic holographic lens. These results open paths to innovative biomedical ultrasound applications.

Readiness of Quantum Optimization Machines for Industrial Applications

Alejandro Perdomo-Ortiz, Alexander Feldman, Asier Ozaeta, Sergei V. Isakov, Zheng Zhu, Bryan O’Gorman, Helmut G. Katzgraber, Alexander Diedrich, Hartmut Neven, Johan de Kleer, Brad Lackey, and Rupak Biswas

Phys. Rev. Applied 12, 014004 (2019) - Published 2 July, 2019

With quantum computing technologies nearing the era of quantum supremacy, and of commercialization, near-term devices need to be tested with application-driven benchmarks. Here the authors contribute a comprehensive assessment of the readiness of quantum optimization for a real industrial problem: fault diagnosis in digital circuits. From the perspective of physics and application, they investigate the impact of next-generation quantum annealers in direct comparison to state-of-the-art classical heuristics. Although more challenging in nature, these real-world problems provide insight on the real-world performance of quantum optimization machines.

Autonomous Deployment of a Solar Panel Using Elastic Origami and Distributed Shape-Memory-Polymer Actuators

Tian Chen, Osama R. Bilal, Robert Lang, Chiara Daraio, and Kristina Shea

Phys. Rev. Applied 11, 064069 (2019) - Published 28 June, 2019

Large-scale deployable solar panels are crucial for certain engineering applications. However, a complex network of actuators and power supplies are usually required to achieve deployment, and can be prone to failure. The single-degree-of-freedom design proposed here embeds shape-memory polymers within an elastic origami substrate, to achieve self-deployment through temperature change. The unexpected bifurcation during folding is studied by examining strain energy as a function of dihedral angle. By optimizing the geometry, tenfold self-deployment is achieved in under one minute. The results could benefit space exploration, as well as solar power generation in inaccessible areas.

Site-Selective Quantum Control in an Isotopically Enriched Si28/Si0.7Ge0.3 Quadruple Quantum Dot

A.J. Sigillito, J.C. Loy, D.M. Zajac, M.J. Gullans, L.F. Edge, and J.R. Petta

Phys. Rev. Applied 11, 061006 (2019) - Published 26 June, 2019

Quantum processors based on spin qubits in silicon offer high-fidelity quantum control, with single- and two-qubit operation approaching the fault-tolerance threshold. Challenges in fabricating and controlling large quantum dot arrays in silicon have limited previous studies to only two qubits. Here the authors build on a scalable device design to fabricate and control all four spin qubits in a quadruple-quantum-dot device. This achievement paves the way to multiqubit quantum information processing in silicon.

Real-Time Trajectory Control of Deterministically Produced Ions

C. Lopez, A. Trimeche, D. Comparat, and Y.J. Picard

Phys. Rev. Applied 11, 064049 (2019) - Published 21 June, 2019

The major challenge in improving deterministic single-ion sources is to control the position and momentum of each ion. Based on the extra information given by the electron created in a photoionization process, the trajectory of the correlated ion can be controlled, using a real-time feedback system. This versatile single-ion feedback control can be applied to different kinds of ion sources. This approach improves the spatial and temporal manipulation of charged particles (ions and electrons), and thus boosts applications in quantum technology and materials science, especially deterministic implantation.

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