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Featured researches published by Daniel Malz.


international conference on optical mems and nanophotonics | 2018

Nonreciprocal Reconfigurable Microwave Optomechanical Circuit

Nathan Bernier; Laszlo Daniel Toth; A. Koottandavida; Marie Ioannou; Daniel Malz; Andreas Nunnenkamp; Alexey Feofanov; Tobias J. Kippenberg

Nonreciprocal microwave devices are ubiquitous in radar and radio communication and indispensable in the readout chains of superconducting quantum circuits. Since they commonly rely on ferrite materials requiring large magnetic fields that make them bulky and lossy, there has been significant interest in magnetic-field-free on-chip alternatives, such as those recently implemented using the Josephson nonlinearity. Here, we realize reconfigurable nonreciprocal transmission between two microwave modes using purely optomechanical interactions in a superconducting electromechanical circuit. The scheme relies on the interference in two mechanical modes that mediate coupling between the microwave cavities and requires no magnetic field. We analyse the isolation, transmission and the noise properties of this nonreciprocal circuit. Finally, we show how quantum-limited circulators can be realized with the same principle. All-optomechanically mediated nonreciprocity demonstrated here can also be extended to directional amplifiers, and it forms the basis towards realizing topological states of light and sound.Nonreciprocal optical devices traditionally rely on magnetic fields and magnetic-free approaches are rather recent. Here, Bernier et al. propose and demonstrate a purely optomechanical circulator with reconfigurable transmission without the need for direct coupling between input and output modes.


Physical Review Letters | 2018

Quantum-Limited Directional Amplifiers with Optomechanics

Daniel Malz; Laszlo Daniel Toth; Nathan Bernier; Alexey Feofanov; Tobias J. Kippenberg; Andreas Nunnenkamp

Directional amplifiers are an important resource in quantum-information processing, as they protect sensitive quantum systems from excess noise. Here, we propose an implementation of phase-preserving and phase-sensitive directional amplifiers for microwave signals in an electromechanical setup comprising two microwave cavities and two mechanical resonators. We show that both can reach their respective quantum limits on added noise. In the reverse direction, they emit thermal noise stemming from the mechanical resonators; we discuss how this noise can be suppressed, a crucial aspect for technological applications. The isolation bandwidth in both is of the order of the mechanical linewidth divided by the amplitude gain. We derive the bandwidth and gain-bandwidth product for both and find that the phase-sensitive amplifier has an unlimited gain-bandwidth product. Our study represents an important step toward flexible, on-chip integrated nonreciprocal amplifiers of microwave signals.


Physical Review A | 2016

Optomechanical dual-beam backaction-evading measurement beyond the rotating-wave approximation

Daniel Malz; Andreas Nunnenkamp

Royal Society (University Research Fellowship), Winton Programme for the Physics of Sustainability


Physical Review A | 2016

Floquet approach to bichromatically driven cavity-optomechanical systems

Daniel Malz; Andreas Nunnenkamp

We develop a Floquet approach to solve time-periodic quantum Langevin equations in the steady state. We show that two-time correlation functions of system operators can be expanded in a Fourier series and that a generalized Wiener--Khinchin theorem relates the Fourier transform of their zeroth Fourier component to the measured spectrum. We apply our framework to bichromatically driven cavity optomechanical systems, a setting in which mechanical oscillators have recently been prepared in quantum-squeezed states. Our method provides an intuitive way to calculate the power spectral densities for time-periodic quantum Langevin equations in arbitrary rotating frames.


Physical Review A | 2017

Quantum noise spectra for periodically driven cavity optomechanics

E. B. Aranas; M. Javed Akram; Daniel Malz; T. S. Monteiro

A growing number of experimental setups in cavity optomechanics exploit periodically driven fields. However, such setups are not amenable to analysis by using simple, yet powerful, closed-form expressions of linearized optomechanics, which have provided so much of our present understanding of experimental optomechanics. In the present paper, we formulate a method to calculate quantum noise spectra in modulated optomechanical systems, which we analyze, compare, and discuss with two other recently proposed solutions: we term these (i) frequency-shifted operators, (ii) Floquet [Phys. Rev. A 94, 023803 (2016)], and (iii) iterative analysis [New J. Phys. 18, 113021 (2016)]. We prove that (i) and (ii) yield equivalent noise spectra and find that (iii) is an analytical approximation to (i) for weak modulations. We calculate the noise spectra of a doubly modulated system describing experiments of levitated particles in hybrid electro-optical traps. We show excellent agreement with Langevin stochastic simulations in the thermal regime and predict squeezing in the quantum regime. Finally, we reveal how otherwise-inaccessible spectral components of a modulated system can be measured in heterodyne detection through an appropriate choice of modulation frequencies.


Physical Review B | 2018

Current rectification in a double quantum dot through fermionic reservoir engineering

Daniel Malz; Andreas Nunnenkamp


international conference on optical mems and nanophotonics | 2018

Quantum Motional Sideband Asymmetry in the Presence of Kerr-Type Nonlinearities

Liu Qiu; Itay Shomroni; Marie Ioannou; Daniel Malz; Andreas Nunnenkamp; Tobias J. Kippenberg


conference on lasers and electro optics | 2018

Effect of Thermal Nonlinearities on Sideband Asymmetry Measurements in Quantum Optomechanics

Itay Shomroni; Liu Qiu; Marie Ioannou; Daniel Malz; Andreas Nunnenkamp; Tobias J. Kippenberg


arXiv: Quantum Physics | 2018

Motional Sideband Asymmetry in Quantum Optomechanics in the Presence of Kerr-type Nonlinearities

Liu Qiu; Itay Shomroni; Marie Ioannou; Daniel Malz; Andreas Nunnenkamp; Tobias J. Kippenberg


arXiv: Quantum Physics | 2018

Optical Backaction-Evading Measurement of a Mechanical Oscillator.

Itay Shomroni; Liu Qiu; Daniel Malz; Andreas Nunnenkamp; Tobias J. Kippenberg

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Tobias J. Kippenberg

École Polytechnique Fédérale de Lausanne

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Itay Shomroni

École Polytechnique Fédérale de Lausanne

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Liu Qiu

École Polytechnique Fédérale de Lausanne

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Marie Ioannou

École Polytechnique Fédérale de Lausanne

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Alexey Feofanov

École Polytechnique Fédérale de Lausanne

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Laszlo Daniel Toth

École Polytechnique Fédérale de Lausanne

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Nathan Bernier

École Polytechnique Fédérale de Lausanne

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E. B. Aranas

University College London

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T. S. Monteiro

University College London

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