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Dive into the research topics where Matthias Pernpeintner is active.

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Featured researches published by Matthias Pernpeintner.


Physical Review Letters | 2013

Experimental Test of the Spin Mixing Interface Conductivity Concept

Mathias Weiler; Matthias Althammer; Michael Schreier; Johannes Lotze; Matthias Pernpeintner; Sibylle Meyer; Hans Huebl; Rudolf Gross; Akashdeep Kamra; Jiang Xiao; Yan-Ting Chen; HuJun Jiao; Gerrit E. W. Bauer; Sebastian T. B. Goennenwein

We perform a quantitative, comparative study of the spin pumping, spin Seebeck, and spin Hall magnetoresistance effects, all detected via the inverse spin Hall effect in a series of over 20 yttrium iron garnet/Pt samples. Our experimental results fully support present, exclusively spin current-based, theoretical models using a single set of plausible parameters for spin mixing conductance, spin Hall angle, and spin diffusion length. Our findings establish the purely spintronic nature of the aforementioned effects and provide a quantitative description, in particular, of the spin Seebeck effect.


Applied Physics Letters | 2015

Non-local magnetoresistance in YIG/Pt nanostructures

Sebastian T. B. Goennenwein; Richard Schlitz; Matthias Pernpeintner; Kathrin Ganzhorn; Matthias Althammer; Rudolf Gross; Hans Huebl

We study the local and non-local magnetoresistance of thin Pt strips deposited onto yttrium iron garnet. The local magnetoresistive response, inferred from the voltage drop measured along one given Pt strip upon current-biasing it, shows the characteristic magnetization orientation dependence of the spin Hall magnetoresistance. We simultaneously also record the non-local voltage appearing along a second, electrically isolated, Pt strip, separated from the current carrying one by a gap of a few 100 nm. The corresponding non-local magnetoresistance exhibits the symmetry expected for a magnon spin accumulation-driven process, confirming the results recently put forward by Cornelissen et al. [1]. Our magnetotransport data, taken at a series of different temperatures as a function of magnetic field orientation, rotating the externally applied field in three mutually orthogonal planes, show that the mechanisms behind the spin Hall and the non-local magnetoresistance are qualitatively different. In particular, the non-local magnetoresistance vanishes at liquid Helium temperatures, while the spin Hall magnetoresistance prevails.


Physical Review Letters | 2015

Quantum state engineering with circuit electromechanical three-body interactions.

Mehdi Abdi; Matthias Pernpeintner; Rudolf Gross; Hans Huebl; Michael J. Hartmann

We propose a hybrid system with quantum mechanical three-body interactions between photons, phonons, and qubit excitations. These interactions take place in a circuit quantum electrodynamical architecture with a superconducting microwave resonator coupled to a transmon qubit whose shunt capacitance is free to mechanically oscillate. We show that this system design features a three-mode polariton-mechanical mode and a nonlinear transmon-mechanical mode interaction in the strong coupling regime. Together with the strong resonator-transmon interaction, these properties provide intriguing opportunities for manipulations of this hybrid quantum system. We show, in particular, the feasibility of cooling the mechanical motion down to its ground state and preparing various nonclassical states including mechanical Fock and cat states and hybrid tripartite entangled states.


Applied Physics Letters | 2014

Circuit electromechanics with a non-metallized nanobeam

Matthias Pernpeintner; Thomas Faust; Fredrik Hocke; J. P. Kotthaus; Eva M. Weig; Hans Huebl; Rudolf Gross

M. Pernpeintner, T. Faust, F. Hocke, J. P. Kotthaus, E. M. Weig, H. Huebl, and R. Gross Walther-Meisner-Institut, Bayerische Akademie der Wissenschaften, D-85748 Garching, Germany Nanosystems Initiative Munich, Schellingstrase 4, D-80799 M€ unchen, Germany Physik-Department, Technische Universit€ at M€ unchen, D-85748 Garching, Germany Center for NanoScience (CeNS) and Fakult€ at f€ ur Physik, Ludwig-Maximilians-Universit€ at, D-80799 M€ unchen, Germany Department of Physics, University of Konstanz, D-78457 Konstanz, Germany


Journal of Applied Physics | 2016

A versatile platform for magnetostriction measurements in thin films

Matthias Pernpeintner; Rasmus B. Holländer; Maximilian J. Seitner; Eva M. Weig; Rudolf Gross; Sebastian T. B. Goennenwein; Hans Huebl

We present a versatile nanomechanical sensing platform for the investigation of magnetostriction in thin films. It is based on a doubly clamped silicon nitride nanobeam resonator covered with a thin magnetostrictive film. Changing the magnetization direction within the film plane by an applied magnetic field generates a magnetoelastic stress and thus changes the resonance frequency of the nanobeam. A measurement of the resulting resonance frequency shift, e.g., by optical interferometry, allows to quantitatively determine the magnetostriction constants of the thin film. In a proof-of-principle experiment, we determine the magnetostriction constants of a 10 nm thick polycrystalline cobalt film, showing very good agreement with literature values. The presented technique aims, in particular, for the precise measurement of magnetostriction in a variety of (conducting and insulating) thin films, which can be deposited by, e.g., electron beam deposition, thermal evaporation, or sputtering.


Applied Physics Letters | 2018

Ultrawide-range photon number calibration using a hybrid system combining nano-electromechanics and superconducting circuit quantum electrodynamics

Philip Schmidt; Daniel Schwienbacher; Matthias Pernpeintner; F. Wulschner; F. Deppe; A. Marx; Rudolf Gross; Hans Huebl

We present a hybrid system consisting of a superconducting coplanar waveguide resonator coupled to a nanomechanical string and a transmon qubit acting as nonlinear circuit element. We perform spectroscopy for both the transmon qubit and the nanomechanical string. Measuring the ac-Stark shift on the transmon qubit as well as the electromechanically induced absorption on the string allows us to determine the average photon number in the microwave resonator in both the low and high power regimes. In this way, we measure photon numbers that are up to nine orders of magnitude apart. We find a quantitative agreement between the calibration of photon numbers in the microwave resonator using the two methods. Our experiments demonstrate the successful combination of superconducting circuit quantum electrodynamics and nano-electromechanics on a single chip.


EPJ Quantum Technology | 2016

Tunable coupling of transmission-line microwave resonators mediated by an rf SQUID

F. Wulschner; Jan Goetz; Fabian R Koessel; E. Hoffmann; A. Baust; P. Eder; M. Fischer; M. Haeberlein; M. Schwarz; Matthias Pernpeintner; Edwar Xie; L. Zhong; Christoph W. Zollitsch; Borja Peropadre; Juan-Jose Garcia Ripoll; E. Solano; Kirill G. Fedorov; E. P. Menzel; F. Deppe; A. Marx; Rudolf Gross


Physical review applied | 2018

Frequency Control and Coherent Excitation Transfer in a Nanostring-resonator Network

Matthias Pernpeintner; Philip Schmidt; Daniel Schwienbacher; Rudolf Gross; Hans Huebl


Bulletin of the American Physical Society | 2018

Magnetoelasticity of CoFe thin films

Daniel Schwienbacher; Matthias Pernpeintner; Mathias Weiler; Eric R. J. Edwards; Hans T. Nembach; Justin M. Shaw; Rudolf Gross; Hans Huebl


Archive | 2017

Characterizing spin transport: detection of spin accumulation via magnetic stray field

Matthias Pernpeintner; Akashdeep Kamra; S. T. B. Goennenwein; Hans Huebl

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Hans Huebl

Nanosystems Initiative Munich

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Daniel Schwienbacher

Nanosystems Initiative Munich

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Philip Schmidt

Nanosystems Initiative Munich

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Fredrik Hocke

Nanosystems Initiative Munich

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Akashdeep Kamra

Delft University of Technology

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A. Baust

Nanosystems Initiative Munich

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Edwar Xie

Nanosystems Initiative Munich

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L. Zhong

Nanosystems Initiative Munich

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