Subharmonic lock-in detection and its optimization for femtosecond noise correlation spectroscopy

Author:

Weiss M. A.1ORCID,Herbst F. S.1ORCID,Eggert S.1ORCID,Nakajima M.2ORCID,Leitenstorfer A.1ORCID,Goennenwein S. T. B.1ORCID,Kurihara T.3ORCID

Affiliation:

1. Department of Physics, University of Konstanz 1 , D-78457 Konstanz, Germany

2. Institute of Laser Engineering, Osaka University 2 , 565-0871 Osaka, Japan

3. The Institute for Solid State Physics, The University of Tokyo 3 , 277-8581 Kashiwa, Japan

Abstract

Although often viewed as detrimental, fluctuations carry valuable information about the physical system from which they emerge. Femtosecond noise correlation spectroscopy (FemNoC) has recently been established to probe the ultrafast fluctuation dynamics of thermally populated magnons by measurement of their amplitude autocorrelation. Subharmonic lock-in detection is the key technique in this method, allowing us to extract the pulse-to-pulse polarization fluctuations of two femtosecond optical pulse trains transmitted through a magnetic sample. Here, we present a thorough technical description of the subharmonic demodulation technique and the FemNoC measurement system. We mathematically model the data acquisition process and identify the essential parameters that critically influence the signal-to-noise ratio of the signals. Comparing the model calculations to real datasets allows validating the predicted parameter dependences and provides a means to optimize FemNoC experiments.

Funder

Japan Society for the Promotion of Science

Deutsche Forschungsgemeinschaft

Publisher

AIP Publishing

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