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Institution

ICFO – The Institute of Photonic Sciences

FacilityBarcelona, Spain
About: ICFO – The Institute of Photonic Sciences is a facility organization based out in Barcelona, Spain. It is known for research contribution in the topics: Quantum & Quantum entanglement. The organization has 872 authors who have published 1965 publications receiving 56273 citations.


Papers
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Journal ArticleDOI
TL;DR: In this paper, a semi-definite program is proposed to solve the quantum marginal problem for symmetric $d$-level systems, which is built upon an efficient semi-Definite program that determines the compatibility conditions of an $m$-body reduced density with a global density matrix supported on the symmetric space and illustrates the applicability of the method in central quantum information problems.
Abstract: In this paper, we present a method to solve the quantum marginal problem for symmetric $d$-level systems The method is built upon an efficient semi-definite program that determines the compatibility conditions of an $m$-body reduced density with a global $n$-body density matrix supported on the symmetric space We illustrate the applicability of the method in central quantum information problems with several exemplary case studies Namely, (i) a fast variational ansatz to optimize local Hamiltonians over symmetric states, (ii) a method to optimize symmetric, few-body Bell operators over symmetric states and (iii) a set of sufficient conditions to determine which symmetric states cannot be self-tested from few-body observables As a by-product of our findings, we also provide a generic, analytical correspondence between arbitrary superpositions of $n$-qubit Dicke states and translationally-invariant diagonal matrix product states of bond dimension $n$

18 citations

Journal ArticleDOI
TL;DR: In this article, a graphene-based phononic crystal (PnC) was proposed to enable acoustic transmission to be electrostatically tuned from transparency to opacity, in a noninvasive manner.
Abstract: Ultrasonic waves are now recognized as a key element not only for signal processing in wireless communication (as in your mobile phone), but also for information transfer between different physical systems. Here one of the most promising platforms is the phononic crystal (PnC). However, the dispersion relation in conventional PnCs is based on passive, not active (adaptable), structures. To overcome this drawback, the authors propose a graphene-based PnC that enables acoustic transmission to be electrostatically tuned from transparency to opacity, in a noninvasive manner. This architecture can extend the utility of PnCs and acoustic phonons for applications.

18 citations

Journal ArticleDOI
TL;DR: A simple and fundamental numeric scheme dubbed as ab initio optimization principle (AOP) is proposed for the ground states of translational invariant strongly correlated quantum lattice models, providing a unified perspective that is previously missing in this fields.
Abstract: In this work, a simple and fundamental numeric scheme dubbed as ab initio optimization principle (AOP) is proposed for the ground states of translational invariant strongly correlated quantum lattice models. The idea is to transform a nondeterministic-polynomial-hard ground-state simulation with infinite degrees of freedom into a single optimization problem of a local function with finite number of physical and ancillary degrees of freedom. This work contributes mainly in the following aspects: (1) AOP provides a simple and efficient scheme to simulate the ground state by solving a local optimization problem. Its solution contains two kinds of boundary states, one of which play the role of the entanglement bath that mimics the interactions between a supercell and the infinite environment, and the other gives the ground state in a tensor network (TN) form. (2) In the sense of TN, a novel decomposition named as tensor ring decomposition (TRD) is proposed to implement AOP. Instead of following the contraction-truncation scheme used by many existing TN-based algorithms, TRD solves the contraction of a uniform TN in an opposite way by encoding the contraction in a set of self-consistent equations that automatically reconstruct the whole TN, making the simulation simple and unified; (3) AOP inherits and develops the ideas of different well-established methods, including the density matrix renormalization group (DMRG), infinite time-evolving block decimation (iTEBD), network contractor dynamics, density matrix embedding theory, etc., providing a unified perspective that is previously missing in this fields. (4) AOP as well as TRD give novel implications to existing TN-based algorithms: A modified iTEBD is suggested and the two-dimensional (2D) AOP is argued to be an intrinsic 2D extension of DMRG that is based on infinite projected entangled pair state. This paper is focused on one-dimensional quantum models to present AOP. The benchmark is given on a transverse Ising chain and 2D classical Ising model, showing the remarkable efficiency and accuracy of the AOP.

18 citations

Journal ArticleDOI
TL;DR: Fundamental insights into spontaneous and stimulated electron–photon interactions mediated by localized surface plasmon resonances at the tips of a gold nanostar are provided with key implications for research on (quantum) coherent optical phenomena at the nanoscale.
Abstract: We demonstrate spatially-resolved measurements of spontaneous and stimulated electron-photon interactions in nanoscale optical near fields using electron energy-loss spectroscopy (EELS), cathodoluminescence spectroscopy (CL), and photon-induced near-field electron microscopy (PINEM). Specifically, we study resonant surface plasmon modes that are tightly confined to the tip apexes of an Au nanostar, enabling a direct correlation of EELS, CL, and PINEM on the same physical structure at the nanometer length scale. Complemented by numerical electromagnetic boundary-element method calculations, we discuss the spontaneous and stimulated electron-photon interaction strength and spatial dependence of our EELS, CL and PINEM distributions. We demonstrate that in the limit of an isolated tip mode, spatial variations in the electron-near field coupling are fully determined by the modal electric field profile, irrespective of the spontaneous (in EELS and CL) or stimulated nature (in PINEM) of the process. Yet we show that coupling to the tip modes crucially depends on the incident electron energy with a maximum at a few keV, depending on the proximity of the interaction to the tip apex. Our results provide elementary insights into spontaneous and stimulated electron-light-matter interactions at the nanoscale that have key implications for research on (quantum) coherent optical phenomena in electron microscopy.

18 citations

Journal ArticleDOI
TL;DR: This work synthesizes optically programmable trapping potentials for indirect excitons of bilayer heterostructures for the functionalisation of emerging exciton-based opto-electronic circuits and creates new opportunities to improve state-of-the-art technologies for the study of collective quantum behavior of exciton.
Abstract: With atomic systems, optically programmed trapping potentials have led to remarkable progress in quantum optics and quantum information science. Programmable trapping potentials could have a similar impact on studies of semiconductor quasi-particles, particularly excitons. However, engineering such potentials inside a semiconductor heterostructure remains an outstanding challenge and optical techniques have not yet achieved a high degree of control. Here, we synthesize optically programmable trapping potentials for indirect excitons of bilayer heterostructures. Our approach relies on the injection and spatial patterning of charges trapped in a field-effect device. We thereby imprint in-situ and on-demand electrostatic traps into which we optically inject cold and dense ensembles of excitons. This technique creates new opportunities to improve state-of-the-art technologies for the study of collective quantum behavior of excitons and also for the functionalisation of emerging exciton-based opto-electronic circuits.

18 citations


Authors

Showing all 928 results

NameH-indexPapersCitations
Maciej Lewenstein10493147362
F. Javier García de Abajo7535130221
Antonio Acín7232419984
Frank H. L. Koppens6923932754
Romain Quidant6824818262
Leszek Kaczmarek6730215985
Sefaattin Tongay6525420628
Zhipei Sun6527027030
Lluis Torner6456617978
Georg Heinze6335416391
Yaroslav V. Kartashov5448711174
Francesco Ricci5429515492
Gerasimos Konstantatos5316019627
Niek F. van Hulst5317812400
Turgut Durduran5328910525
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Performance
Metrics
No. of papers from the Institution in previous years
YearPapers
20239
202261
2021269
2020308
2019287
2018285