| Literature DB >> 28827679 |
Jiangang Zhu1, Guangming Zhao2, Igor Savukov3, Lan Yang4.
Abstract
We demonstrate a magnetometer using polymer encapsulated whispering-gallery-mode microcavity actuated by a micro-magnet. The magnetic field induces force on the micro-magnet causing deformation in the polymer around the microcavity. Subsequently the microcavity detects the change in the refractive index of the polymer resulted from the deformation. This magnetometer works in the frequency range of hertz-to-kilohertz range and achieves a sensitivity of 880 pT/Hz1/2 at 200 Hz in a micro-scale sensor volume. Polymer encapsulation of the magnetometer and fiber optical connection ensures environmental robustness and practicality of the sensor.Entities:
Year: 2017 PMID: 28827679 PMCID: PMC5566442 DOI: 10.1038/s41598-017-08875-1
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1Illustration of the experimental setup of the microcavity magnetometer. The chip (green) with microtoroids and a tapered fiber (green) are encapsulated under polymer. The micro-magnet (cube) is glued above the microtoroid. Inset shows a magnified view of the microtoroid and the tapered fiber.
Figure 2Experimental results. (a) Response of the optical resonance to the varying magnetic fields. Upper panel: driving current of the magnetic coil; Middle panel: optical resonance mode showing thermal heating effect caused by the probe laser (triangular lineshape), and overlaying oscillating signal in response to the magnetic field; Lower panel: time varying components of the optical resonance signal in the middle panel. (b) Detailed view of the data between the two green lines in (a). (c) Power spectrum of the signal in the lower panel of (a) between time 2 s and 3 s.
Figure 3Frequency and amplitude response. (a) Frequency response and (b) amplitude response of the microcavity magnetometer.
Figure 4Experimental results for sensitivity. (a) The optical resonance mode used for testing shows a Q factor of 1.19 × 106. Laser wavelength is 980 nm. (b) Oscillating Coil current with amplitude of 2.5 mA. (c) Measured response from the microcavity magnetometer. (d) Power spectrum of the magnetometer signal showing a peak at 200 Hz with SNR of about 39 dB. Time domain data acquiring window is 1 s.