Highlights

Scalable Gate Architecture for a One-Dimensional Array of Semiconductor Spin Qubits

D. M. Zajac, T. M. Hazard, X. Mi, E. Nielsen, and J. R. Petta

Phys. Rev. Applied 6, 054013 (2016) - Published 28 November, 2016

Long coherence times render electron spins in quantum dots promising for scaled-up quantum computation, but large arrays of semiconductor spin qubits have yet to be realized. The authors take the next steps in scaling by demonstrating an array of nine quantum dots with low electron occupancy, reproducible single-dot characteristics, and full charge-state readout. Beyond quantum information science, this also represents a major advance for the quantum-dot community, where double and triple quantum dots have been the standard for over a decade.

Preserving the Sequence of a Biopolymer’s Monomers as They Enter an Electrospray Mass Spectrometer

William Maulbetsch, Benjamin Wiener, William Poole, Joseph Bush, and Derek Stein

Phys. Rev. Applied 6, 054006 (2016) - Published 17 November, 2016

Reliable, simple, inexpensive methods for sequencing proteins, RNA, or DNA are of obvious interest across biology and medicine. The authors theoretically investigate the conditions under which the monomers of a biopolymer will retain their sequential order against the randomizing effects of Brownian motion, after being cleaved from the polymer while approaching the tip of an electrospray ion source. Their analysis confirms the feasibility of identifying a single protein molecule by delivering its amino acids in order to a mass spectrometer, with 95% likelihood of measuring the correct sequence.

Injection Locking of Quantum-Dot Microlasers Operating in the Few-Photon Regime

Elisabeth Schlottmann, Steffen Holzinger, Benjamin Lingnau, Kathy Lüdge, Christian Schneider, Martin Kamp, Sven Höfling, Janik Wolters, and Stephan Reitzenstein

Phys. Rev. Applied 6, 044023 (2016) - Published 31 October, 2016

Injection locking is a common technique to control the frequency of a conventional, macroscopic oscillator, but how does a tiny device operating in the quantum regime behave? To answer, the authors study external control of microscopic lasers governed by cavity quantum electrodynamics. Surprisingly, in such devices both stationary oscillations synchronized to the external signal and oscillations at the solitary frequency occur simultaneously. This “partial injection” phenomenon is unique to nonlinear oscillators excited with a few tens of quanta, and is relevant to applications in optomechanics, spintronics, and integrated photonics.

Three-Dimensional Wiring for Extensible Quantum Computing: The Quantum Socket

J. H. Béjanin, T. G. McConkey, J. R. Rinehart, C. T. Earnest, C. R. H. McRae, D. Shiri, J. D. Bateman, Y. Rohanizadegan, B. Penava, P. Breul, S. Royak, M. Zapatka, A. G. Fowler, and M. Mariantoni

Phys. Rev. Applied 6, 044010 (2016) - Published 18 October, 2016

Reimagining and miniaturizing the huge machines of the World War II era was a great step in the history of computing. Now quantum computers face a similar developmental step, on the way to tomorrow’s compact, scalable systems. In analogy with sockets in traditional electronics, the authors present a link for classical control hardware and solid-state qubits, with exceptional properties at microwave frequencies and cryogenic temperatures. This technology should bring us within a few years to a key milestone in quantum computing: quantum error-correction implemented for hundreds of physical qubits.

Origin and Reduction of 1/f Magnetic Flux Noise in Superconducting Devices

P. Kumar, S. Sendelbach, M. A. Beck, J. W. Freeland, Zhe Wang, Hui Wang, Clare C. Yu, R. Q. Wu, D. P. Pappas, and R. McDermott

Phys. Rev. Applied 6, 041001 (2016) - Published 18 October, 2016

Low-frequency 1/f noise in magnetic flux is a dominant source of dephasing in superconducting qubits. Its origin has been a longstanding open question in condensed matter and device physics. The authors identify adsorbed O2 (paramagnetic, due to its spin triplet state) as the major contributor to magnetism and flux noise in superconducting thin-film devices, and show that improving a sample’s vacuum environment leads to significant noise reduction. These results open the door to improved superconducting sensors and qubits with enhanced coherence times.

Dipolar Rings of Microscopic Ellipsoids: Magnetic Manipulation and Cell Entrapment

Fernando Martinez-Pedrero, Andrejs Cebers, and Pietro Tierno

Phys. Rev. Applied 6, 034002 (2016) - Published 8 September, 2016

Dipolar particles are building blocks in several fields of science and technology, but making rings from interacting ferromagnetic colloids is challenging, due to strong thermal fluctuations at the microscale. This study shows that, under the right conditions, magnetic microparticles can spontaneously form dipolar rings. The authors fabricate anisotropic hematite ellipsoids dispersed in water, which self-assemble into colloidal ribbons that transform into rings. These rings can be controlled with a static or oscillating magnetic field, to encircle, transport, and release a biological cell in a microfluidic device, for example.

Hydrogen-Free Liquid-Helium Recovery Plants: The Solution for Low-Temperature Flow Impedance Blocking

M. Gabal, A. Arauzo, A. Camón, M. Castrillo, E. Guerrero, M. P. Lozano, M. P. Pina, J. Sesé, S. Spagna, J. Diederichs, G. Rayner, J. Sloan, F. Galli, W. van der Geest, C. Haberstroh, N. Dittmar, A. Oca, F. Grau, A. Fernandes, and C. Rillo

Phys. Rev. Applied 6, 024017 (2016) - Published 26 August, 2016

Cryogenic systems in laboratories and hospitals worldwide require liquid helium, a precious natural resource that must be carefully conserved. This means recycling, on a large scale, but even traces of H2 can clog the capillary plumbing in a recovery plant—a common, chronic problem that is very time-consuming, expensive, and disruptive to supplies. The authors propose a microscopic mechanism to understand plugging due to the presence of non-solid molecular hydrogen in liquid He. They also describe the development and testing of purification solutions that have proved highly effective in producing “clean helium” at considerably reduced operating costs.

Superconducting Switch for Fast On-Chip Routing of Quantum Microwave Fields

M. Pechal, J.-C. Besse, M. Mondal, M. Oppliger, S. Gasparinetti, and A. Wallraff

Phys. Rev. Applied 6, 024009 (2016) - Published 11 August, 2016

For a quantum computer, switching a signal carried by single microwave photons is desirable in scaling up superconducting circuitry. The authors design and build such a switch, integrate it on a chip with a single-photon source, and prove that it works with nonclassical microwave input. Their device offers negligible heating, relatively large bandwidth, low nonlinearity, and single-pole double-throw switching in mere nanoseconds. It is well suited for applications where signal routing must be controlled by real-time feedback, as in multiplexing qubit control and readout, or distributing entanglement in quantum networks.

Inkjet Printing of Viscous Monodisperse Microdroplets by Laser-Induced Flow Focusing

Paul Delrot, Miguel A. Modestino, François Gallaire, Demetri Psaltis, and Christophe Moser

Phys. Rev. Applied 6, 024003 (2016) - Published 8 August, 2016

Generating microdroplets of viscous fluids is crucial to “drop-on-demand” applications ranging from inkjet printing to additive manufacturing, but is dogged by the clogging of microscale nozzles. In this study a flow-focusing phenomenon, resulting from a laser-induced shock wave, is used to produce monodisperse viscous droplets smaller than the nozzle from which they fly. The authors prove that this technique can even be used to print a biologically relevant sample without spoiling its functionality.

Electric Power Generation from Earth’s Rotation through its Own Magnetic Field

Christopher F. Chyba and Kevin P. Hand

Phys. Rev. Applied 6, 014017 (2016) - Published 29 July, 2016

There is a simple proof that it is impossible to produce electricity using Earth’s rotation through the nonrotating component of its own magnetic field. However, the authors have identified a loophole in that proof, and it appears that power generation could be possible in a laboratory system. Experimental verification of this result could carry implications for a clean-energy future.

Single-Beam Optical Conveyor Belt for Chiral Particles

David E. Fernandes and Mário G. Silveirinha

Phys. Rev. Applied 6, 014016 (2016) - Published 27 July, 2016

Conventional wisdom suggests that when a beam of light illuminates a particle, the radiation pressure pushes it in the direction of the light flow, i.e. downstream. However, under the right conditions, the particles can be made to move upstream, toward the light source. Here the authors describe a means to transport engineered chiral nanoparticles with an “optical conveyor belt” that can move in either direction. Simply controlling the helicity of the incoming wave enables switching between persistent attractive or repulsive optical forces, with just one beam and no optical traps.

Probing the Nuclear Spin-Lattice Relaxation Time at the Nanoscale

J. J. T. Wagenaar, A. M. J. den Haan, J. M. de Voogd, L. Bossoni, T. A. de Jong, M. de Wit, K. M. Bastiaans, D. J. Thoen, A. Endo, T. M. Klapwijk, J. Zaanen, and T. H. Oosterkamp

Phys. Rev. Applied 6, 014007 (2016) - Published 15 July, 2016

The nuclear spin-lattice relaxation time T1 is an important probe of the electronic properties of solids, but here traditional NMR methods struggle due to weak signals, so advanced tools like magnetic resonance force microscopy (MRFM) are needed. The authors extend high-resolution MRFM to measure T1 at a temperature of 42 mK, a 100-fold improvement, with a 1000-fold increase in volume sensitivity. This opens up the possibility to measure the magnetic properties of oxide interfaces, topological insulators, high-Tc superconductors, and other strongly correlated electron systems.

Micro-Tug-of-War: A Selective Control Mechanism for Magnetic Swimmers

Panayiota Katsamba and Eric Lauga

Phys. Rev. Applied 5, 064019 (2016) - Published 30 June, 2016

In developing artificial swimmers for use in noninvasive medicine, control of multiple microbots is of paramount importance. This study exploits the nonlinear behavior of a magnetized helix driven by a rotating magnetic field, by considering motors in which helices of opposite handedness dynamically compete against one another. One can design a velocity profile that is nonnegligible only within a chosen interval of operating frequencies, thus providing a selective control mechanism for the active matter. Arbitrarily complex velocity-frequency relationships are possible.

Nontensorial Transformation Optics

C. García-Meca and C. Barceló

Phys. Rev. Applied 5, 064008 (2016) - Published 17 June, 2016

Transformation optics allows one to design electromagnetic media to modify the trajectory of light in complex ways, as in an invisibility cloak. In this approach, an electromagnetic field undergoes a rotation and scaling, which restricts the achievable functionalities. What if there were another way? The authors present an alternative transformation theory that preserves a field’s orientation and amplitude, allowing different effects and applications, including devices that feel no local electromagnetic force, which would help to shield systems from damage at high energies.

Near-Field Integration of a SiN Nanobeam and a SiO2 Microcavity for Heisenberg-Limited Displacement Sensing

R. Schilling, H. Schütz, A. H. Ghadimi, V. Sudhir, D. J. Wilson, and T. J. Kippenberg

Phys. Rev. Applied 5, 054019 (2016) - Published 26 May, 2016

Optomechanical devices afford high-precision detection in optics experiments and a host of potential hybrid quantum sensing applications, without cryogenics. In this study, advanced fabrication techniques allow a nanomechanical resonator to be placed within the evanescent near field of a high-Q optical microcavity. This enables the resonator’s motion to be monitored with an efficiency near the maximum allowed by the Heisenberg uncertainty principle, even at room temperature.

Integrated Optical Memory Based on Laser-Written Waveguides

Giacomo Corrielli, Alessandro Seri, Margherita Mazzera, Roberto Osellame, and Hugues de Riedmatten

Phys. Rev. Applied 5, 054013 (2016) - Published 18 May, 2016

Quantum memory is an essential building block for applications in quantum information science, where scalability and integrability are needed for progress toward large-scale architectures. The authors present a platform for integrated photonic memory, based on laser-written waveguides in rare-earth-doped crystals. The coherence properties of the optically active ions persist after micromachining, enabling proof-of-principle light storage using the full atomic-frequency-comb protocol. This is a pioneering demonstration of on-demand optical memory on a chip.

Giant Photoresponsivity of Midinfrared Hyperbolic Metamaterials in the Photon-Assisted-Tunneling Regime

Pai-Yen Chen, Mehdi Hajizadegan, Maryam Sakhdari, and Andrea Alù

Phys. Rev. Applied 5, 041001 (2016) - Published 28 April, 2016

Conventional solar cells cannot collect energy from abundant midinfrared light, because there are no suitable semiconductors of the right band gap. Hyperbolic metamaterials (HMMs) are proposed to realize broadband, omnidirectional, sensitive diodes operating in this spectral region. The authors show how the slow-light modes supported by HMMs can trap incident radiation in metal-insulator-metal tunnel junctions, for ultrafast optical rectification and photon-to-electron energy conversion that is orders of magnitude more efficient than in conventional optical rectennas.

Relating Charge Transport, Contact Properties, and Recombination to Open-Circuit Voltage in Sandwich-Type Thin-Film Solar Cells

Oskar J. Sandberg, Anton Sundqvist, Mathias Nyman, and Ronald Österbacka

Phys. Rev. Applied 5, 044005 (2016) - Published 12 April, 2016

Thin-film solar cells are at the forefront of current energy research. A detailed theory to define how charges recombine—and so how performance is reduced—at electrical contacts to these films is lacking. This study derives analytic expressions that directly relate the open-circuit voltage to contact, material, and device properties. Drift-diffusion simulations verify their analytical expressions, and agree well with experiments.

Manipulating the Magnetization of a Nanomagnet with Surface Acoustic Waves: Spin-Rotation Mechanism

Eugene M. Chudnovsky and Reem Jaafar

Phys. Rev. Applied 5, 031002 (2016) - Published 31 March, 2016

A century ago, Samuel Barnett magnetized a large body by mechanical rotation, and Albert Einstein and Wander de Haas observed rotation of a solid produced by a change in its magnetization. These effects are weak when the rotation is slow, but local mechanical rotations produced by high-frequency surface acoustic waves (SAWs) are very fast. The authors show that one can reverse the moment of a nanomagnet on a solid’s surface via SAWs generated by short voltage pulses, for logic and memory applications.

Thermomagnetic Mechanism for Self-Cooling Cables

Luca de’ Medici

Phys. Rev. Applied 5, 024001 (2016) - Published 1 February, 2016

Cables carry strong electric currents in long-distance power transmission, and in coils generating strong magnetic fields for MRI scanners, maglev trains, and particle accelerators. Low temperatures are helpful for everyday resistive cables, and necessary for superconducting ones. The author shows how a coating of thermomagnetic material could handily extract heat via a power cable’s own field, to assist or even replace cooling by cryogenic fluids.

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