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Simone Montangero

University of Padua · IT
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Area of research
Atomic and Molecular Physics, and Optics · Artificial Intelligence
Research interest
Research interests include Physics, Computer science, Quantum, Quantum computer, Quantum entanglement, and Tensor (intrinsic definition).
h-index
citations
2,697
works
30
NIH funding
primary concept
email

Recent publications

Tensor networks for lattice gauge theories beyond one dimension
Communications Physics 2025cited by 12position: lastdoi
Quantum Computing for High-Energy Physics: State of the Art and Challenges
PRX Quantum 2024cited by 173position: middledoi
Digital Quantum Simulation of a (1+1)D SU(2) Lattice Gauge Theory with Ion Qudits
PRX Quantum 2024cited by 26position: middledoi
Simulating <mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML"><mml:mo>(</mml:mo><mml:mn>2</mml:mn><mml:mo>+</mml:mo><mml:mn>1</mml:mn><mml:mo>)</mml:mo><mml:mi mathvariant="normal">D</mml:mi></mml:math> SU(2) Yang-Mills lattice gauge theory at finite density with tensor networks
Physical Review Research 2024cited by 25position: lastdoi
QuOCS: The quantum optimal control suite
Computer Physics Communications 2023cited by 36position: lastdoi
Entanglement entropy production in Quantum Neural Networks
Quantum 2023cited by 28position: middledoi
Quantum Computing for High-Energy Physics: State of the Art and Challenges
arXiv (Cornell University) 2023cited by 25position: middledoi
A randomized measurement toolbox for an interacting Rydberg-atom quantum simulator
New Journal of Physics 2023cited by 20position: middledoi
One decade of quantum optimal control in the chopped random basis
Reports on Progress in Physics 2022cited by 103position: lastdoi
Error budgeting for a controlled-phase gate with strontium-88 Rydberg atoms
Research Padua Archive (University of Padua) 2022cited by 87position: middledoi
Is quantum computing green? An estimate for an energy-efficiency quantum advantage
Quantum Science and Technology 2022cited by 52position: lastdoi
Adaptive-weighted tree tensor networks for disordered quantum many-body systems
Physical review. B./Physical review. B 2022cited by 23position: lastdoi
Robust magnetometry with single nitrogen-vacancy centers via two-step optimization
Physical review. A/Physical review, A 2022cited by 21position: middledoi
Entanglement generation in<mml:math xmlns:mml="http://www.w3.org/1998/Math/MathML" display="inline"><mml:mrow><mml:mo stretchy="false">(</mml:mo><mml:mn>1</mml:mn><mml:mo>+</mml:mo><mml:mn>1</mml:mn><mml:mo stretchy="false">)</mml:mo><mml:mi mathvariant="normal">D</mml:mi></mml:mrow></mml:math>QED scattering processes
Physical review. D/Physical review. D. 2021cited by 66position: lastdoi
Demonstration of Quantum Brachistochrones between Distant States of an Atom
Physical Review X 2021cited by 64position: middledoi
Efficient Tensor Network <i>Ansatz</i> for High-Dimensional Quantum Many-Body Problems
Physical Review Letters 2021cited by 60position: lastdoi
Quantum-inspired machine learning on high-energy physics data
Padua Research Archive (University of Padova) 2021cited by 43position: lastdoi
Two-Particle Interference with Double Twin-Atom Beams
Physical Review Letters 2021cited by 28position: middledoi
Entangled quantum cellular automata, physical complexity, and Goldilocks rules
arXiv (Cornell University) 2020cited by 32position: middledoi
Superfluid-to-Mott transition in a Bose-Hubbard ring: Persistent currents and defect formation
Physical review. A/Physical review, A 2020cited by 23position: lastdoi
Generation and manipulation of Schrödinger cat states in Rydberg atom arrays
Science 2019cited by 633position: middledoi
Simulating lattice gauge theories within quantum technologies
Apollo (University of Cambridge) 2019cited by 483position: middledoi
Tensor network simulation of an SU(3) lattice gauge theory in 1D
Physical review. D/Physical review. D. 2019cited by 39position: lastdoi
Introduction to Tensor Network Methods
2018cited by 106position: firstdoi
Remote optimization of an ultracold atoms experiment by experts and citizen scientists
Proceedings of the National Academy of Sciences 2018cited by 78position: middledoi
Fractional quantum Hall effect in the interacting Hofstadter model via tensor networks
Physical review. B./Physical review. B 2017cited by 78position: lastdoi
Information Theoretical Analysis of Quantum Optimal Control
Physical Review Letters 2014cited by 115position: lastdoi
Transitionless quantum driving in open quantum systems
New Journal of Physics 2014cited by 84position: middledoi
Unconstrained tree tensor network: An adaptive gauge picture for enhanced performance
Physical Review B 2014cited by 80position: lastdoi
Controlling the transport of an ion: classical and quantum mechanical solutions
New Journal of Physics 2014cited by 54position: middledoi

Grants

No grants ingested yet.

Frequent collaborators

Tommaso Calarco · Aarhus University9 papers (2014–2023)Pietro Silvi · University of Padua7 papers (2014–2025)Giuseppe Magnifico · University of Padua5 papers (2021–2025)Simone Notarnicola · University of Padua4 papers (2020–2023) · 3 papers (2014–2020)Phila Rembold · University of Padua3 papers (2019–2023) · 3 papers (2022–2023)Rosario Fazio · National University of Singapore3 papers (2014–2020)Daniel Jaschke · University of Padua3 papers (2022–2025)Timo Felser · University of Padua2 papers (2021–2021)Matteo Rizzi · Johannes Gutenberg University Mainz2 papers (2014–2017)Fedor Jelezko · Zhejiang University2 papers (2022–2023)Marco Rigobello · University of Padua2 papers (2021–2025) · 2 papers (2022–2023)Marco Rossignolo · University of Padua2 papers (2019–2023)Giovanni Cataldi · University of Padua2 papers (2024–2025) · 2 papers (2021–2021) · 2 papers (2017–2019)Alice Pagano · University of Padua2 papers (2022–2023)Ottó Elíasson · Aarhus University1 papers (2018–2018)
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