Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Lingzhen Guo is active.

Publication


Featured researches published by Lingzhen Guo.


Physical Review B | 2015

Multiphoton dressing of an anharmonic superconducting many-level quantum circuit

Jochen Braumüller; Joel Cramer; Steffen Schlör; Hannes Rotzinger; Lucas Radtke; A. Lukashenko; Ping Yang; Sebastian T. Skacel; Sebastian Probst; Michael Marthaler; Lingzhen Guo; Alexey V. Ustinov; Martin Weides

We report on the investigation of a superconducting anharmonic multilevel circuit that is coupled to a harmonic readout resonator. We observe multiphoton transitions via virtual energy levels of our system up to the fifth excited state. The back-action of these higher-order excitations on our readout device is analyzed quantitatively and demonstrated to be in accordance with theoretical expectation. By applying a strong microwave drive we achieve multiphoton dressing within our anharmonic circuit which is dynamically coupled by a weak probe tone. The emerging higher-order Rabi sidebands and associated Autler-Townes splittings involving up to five levels of the investigated anharmonic circuit are observed. Experimental results are in good agreement with master-equation simulations.


Physical Review A | 2016

Effective long-distance interaction from short-distance interaction in a periodically driven one-dimensional classical system

Lingzhen Guo; Modan Liu; Michael Marthaler

We study the classical dynamics of many interacting particles in a periodically driven one-dimensional (1D) system. We show that under the rotating wave approximation (RWA), a short-distance 1D interaction (delta function or hard-core interaction) becomes a long-distance two-dimensional (2D) interaction which only depends on the distance in the phase space of the rotating frame. The RWA interaction describes the effect of the interaction on the slowly changing amplitude and phase of the oscillating particles, while the fast oscillations take on the role of a force carrier, which allows for interaction over much larger effective distances.


Physical Review Letters | 2013

Phase space crystals: A new way to create a quasienergy band structure

Lingzhen Guo; Michael Marthaler; Gerd Schön

A novel way to create a band structure of the quasienergy spectrum for driven systems is proposed based on the discrete symmetry in phase space. The system, e.g., an ion or ultracold atom trapped in a potential, shows no spatial periodicity, but it is driven by a time-dependent field coupling highly nonlinearly to one of its degrees of freedom (e.g., ∼q(n)). The band structure in quasienergy arises as a consequence of the n-fold discrete periodicity in phase space induced by this driving field. We propose an explicit model to realize such a phase space crystal and analyze its band structure in the frame of a tight-binding approximation. The phase space crystal opens new ways to engineer energy band structures, with the added advantage that its properties can be changed in situ by tuning the driving fields parameters.


New Journal of Physics | 2016

Synthesizing lattice structures in phase space

Lingzhen Guo; Michael Marthaler

In one dimensional systems, it is possible to create periodic structures in phase space through driving, which is called phase space crystals (Guo et al 2013 Phys. Rev. Lett. 111 205303). This is possible even if for particles trapped in a potential without periodicity. In this paper we discuss ultracold atoms in a driven optical lattice, which is a realization of such a phase space crystals. The corresponding lattice structure in phase space is complex and contains rich physics. A phase space lattice differs fundamentally from a lattice in real space, because its coordinate system, i.e., phase space, has a noncommutative geometry, which naturally provides an artificial gauge (magnetic) field. We study the behavior of the quasienergy band structure and investigate the dissipative dynamics. Synthesizing lattice structures in phase space provides a new platform to simulate the condensed matter phenomena and study the intriguing phenomena of driven systems far away from equilibrium.


New Journal of Physics | 2018

Floquet many-body engineering: topology and many-body physics in phase space lattices

Pengfei Liang; Michael Marthaler; Lingzhen Guo

Hamiltonians which are inaccessible in static systems can be engineered in periodically driven many-body systems, i.e., Floquet many-body systems. We propose to use interacting particles in a one-dimensional (1D) harmonic potential with periodic kicking to investigate two-dimensional topological and many-body physics. Depending on the driving parameters, the Floquet Hamiltonian of single kicked harmonic oscillator has various lattice structures in phase space. The noncommutative geometry of phase space gives rise to the topology of the system. We investigate the effective interactions of particles in phase space and find that the point-like contact interaction in quasi-1D real space becomes a long-rang Coulomb-like interaction in phase space, while the hardcore interaction in pure-1D real space becomes a confinement quark-like potential in phase space. We also find that the Floquet exchange interaction does not disappear even in the classical limit, and can be viewed as an effective long-range spin-spin interaction induced by collision. Our proposal may provide platforms to explore new physics and exotic phases by Floquet many-body engineering.


arXiv: Quantum Physics | 2012

The role of damping for the driven anharmonic quantum oscillator

Lingzhen Guo; Michael Marthaler; Stephan André; Gerd Schön

For the model of a linearly driven quantum anharmonic oscillator, the role of damping is investigated. We compare the position of the stable points in phase space obtained from a classical analysis to the result of a quantum mechanical analysis. The solution of the full master equation shows that the stable points behave qualitatively similar to the classical solution but with small modifications. Both the quantum effects and additional effects of temperature can be described by renormalizing the damping.


Physical Review A | 2012

Emission spectrum of the driven nonlinear oscillator

Stephan André; Lingzhen Guo; Vittorio Peano; Michael Marthaler; Gerd Schön


arXiv: Quantum Physics | 2018

Local Sensing with an AC Stark Spectrum Analyzer

Andre Schneider; Jochen Braumüller; Lingzhen Guo; Patrizia Stehle; Hannes Rotzinger; Michael Marthaler; Alexey V. Ustinov; Martin Weides


Physical Review A | 2018

Local sensing with the multilevel ac Stark effect

Andre Schneider; Jochen Braumüller; Lingzhen Guo; Patrizia Stehle; Hannes Rotzinger; Michael Marthaler; Alexey V. Ustinov; Martin Weides


DPG-Frühjahrstagung der Sektion Kondensierte Materie gemeinsam mit der EPS, Fachverband Tiefe Temperaturen, Berlin, 11.-16.März 2018 | 2018

Anharmonic quantum oscillator under field drive: probing te AC Stark shift of higher levels

Martin Weides; Andre Schneider; Patrizia Stehle; Jochen Braumueller; Hannes Rotzinger; Lingzhen Guo; Michael Marthaler; Alexey V. Ustinov

Collaboration


Dive into the Lingzhen Guo's collaboration.

Top Co-Authors

Avatar

Michael Marthaler

Karlsruhe Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

Hannes Rotzinger

Karlsruhe Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

Martin Weides

Karlsruhe Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

Alexey V. Ustinov

National University of Science and Technology

View shared research outputs
Top Co-Authors

Avatar

Andre Schneider

Karlsruhe Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

Gerd Schön

Karlsruhe Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

Jochen Braumüller

Karlsruhe Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

Patrizia Stehle

Karlsruhe Institute of Technology

View shared research outputs
Top Co-Authors

Avatar

Vittorio Peano

University of Erlangen-Nuremberg

View shared research outputs
Top Co-Authors

Avatar

Stephan André

Karlsruhe Institute of Technology

View shared research outputs
Researchain Logo
Decentralizing Knowledge