Literature DB >> 33572285

Pulsed Optically Pumped Magnetometers: Addressing Dead Time and Bandwidth for the Unshielded Magnetorelaxometry of Magnetic Nanoparticles.

Aaron Jaufenthaler1, Thomas Kornack2, Victor Lebedev3, Mark E Limes2, Rainer Körber3, Maik Liebl3, Daniel Baumgarten1,4.   

Abstract

Magnetic nanoparticles (MNP) offer a large variety of promising applications in medicine thanks to their exciting physical properties, e.g., magnetic hyperthermia and magnetic drug targeting. For these applications, it is crucial to quantify the amount of MNP in their specific binding state. This information can be obtained by means of magnetorelaxometry (MRX), where the relaxation of previously aligned magnetic moments of MNP is measured. Current MRX with optically pumped magnetometers (OPM) is limited by OPM recovery time after the shut-off of the external magnetic field for MNP alignment, therewith preventing the detection of fast relaxing MNP. We present a setup for OPM-MRX measurements using a commercially available pulsed free-precession OPM, where the use of a high power pulsed pump laser in the sensor enables a system recovery time in the microsecond range. Besides, magnetometer raw data processing techniques for Larmor frequency analysis are proposed and compared in this paper. Due to the high bandwidth (≥100 kHz) and high dynamic range of our OPM, a software gradiometer in a compact enclosure allows for unshielded MRX measurements in a laboratory environment. When operated in the MRX mode with non-optimal pumping performance, the OPM shows an unshielded gradiometric noise floor of about 600 fT/cm/Hz for a 2.3 cm baseline. The noise floor is flat up to 1 kHz and increases then linearly with the frequency. We demonstrate that quantitative unshielded MRX measurements of fast relaxing, water suspended MNP is possible with the novel OPM-MRX concept, confirmed by the accurately derived iron amount ratios of MNP samples. The detection limit of the current setup is about 1.37 μg of iron for a liquid BNF-MNP-sample (Bionized NanoFerrite) with a volume of 100 μL.

Entities:  

Keywords:  free-precession decay; high bandwidth; low dead time; magnetic nanoparticles; magnetorelaxometry; optically pumped magnetometer; portable setup; pulsed magnetometer; unshielded

Year:  2021        PMID: 33572285      PMCID: PMC7915455          DOI: 10.3390/s21041212

Source DB:  PubMed          Journal:  Sensors (Basel)        ISSN: 1424-8220            Impact factor:   3.576


  20 in total

1.  A subfemtotesla multichannel atomic magnetometer.

Authors:  I K Kominis; T W Kornack; J C Allred; M V Romalis
Journal:  Nature       Date:  2003-04-10       Impact factor: 49.962

2.  Relaxometry and Dephasing Imaging of Superparamagnetic Magnetite Nanoparticles Using a Single Qubit.

Authors:  Dominik Schmid-Lorch; Thomas Häberle; Friedemann Reinhard; Andrea Zappe; Michael Slota; Lapo Bogani; Amit Finkler; Jörg Wrachtrup
Journal:  Nano Lett       Date:  2015-07-30       Impact factor: 11.189

3.  Giant Magnetoresistive Biosensor Array for Detecting Magnetorelaxation.

Authors:  Xiahan Zhou; Chih-Cheng Huang; Drew A Hall
Journal:  IEEE Trans Biomed Circuits Syst       Date:  2017-08       Impact factor: 3.833

4.  Magnetic Source Imaging Using a Pulsed Optically Pumped Magnetometer Array.

Authors:  Amir Borna; Tony R Carter; Paul DeRego; Conrad D James; Peter D D Schwindt
Journal:  IEEE Trans Instrum Meas       Date:  2018-07-23       Impact factor: 4.016

5.  Nearly complete regression of tumors via collective behavior of magnetic nanoparticles in hyperthermia.

Authors:  C L Dennis; A J Jackson; J A Borchers; P J Hoopes; R Strawbridge; A R Foreman; J van Lierop; C Grüttner; R Ivkov
Journal:  Nanotechnology       Date:  2009-09-03       Impact factor: 3.874

6.  Fast and accurate fitting and filtering of noisy exponentials in Legendre space.

Authors:  Guobin Bao; Detlev Schild
Journal:  PLoS One       Date:  2014-03-06       Impact factor: 3.240

Review 7.  Integrated Giant Magnetoresistance Technology for Approachable Weak Biomagnetic Signal Detections.

Authors:  Hui-Min Shen; Liang Hu; Xin Fu
Journal:  Sensors (Basel)       Date:  2018-01-07       Impact factor: 3.576

8.  Quantitative 2D Magnetorelaxometry Imaging of Magnetic Nanoparticles using Optically Pumped Magnetometers.

Authors:  Aaron Jaufenthaler; Peter Schier; Thomas Middelmann; Maik Liebl; Frank Wiekhorst; Daniel Baumgarten
Journal:  Sensors (Basel)       Date:  2020-01-29       Impact factor: 3.576

9.  Magnetometer with nitrogen-vacancy center in a bulk diamond for detecting magnetic nanoparticles in biomedical applications.

Authors:  Akihiro Kuwahata; Takahiro Kitaizumi; Kota Saichi; Takumi Sato; Ryuji Igarashi; Takeshi Ohshima; Yuta Masuyama; Takayuki Iwasaki; Mutsuko Hatano; Fedor Jelezko; Moriaki Kusakabe; Takashi Yatsui; Masaki Sekino
Journal:  Sci Rep       Date:  2020-02-12       Impact factor: 4.379

Review 10.  A review of demodulation techniques for multifrequency atomic force microscopy.

Authors:  David M Harcombe; Michael G Ruppert; Andrew J Fleming
Journal:  Beilstein J Nanotechnol       Date:  2020-01-07       Impact factor: 3.649

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Journal:  Nat Commun       Date:  2022-08-08       Impact factor: 17.694

2.  A digital alkali spin maser.

Authors:  Stuart Ingleby; Paul Griffin; Terry Dyer; Marcin Mrozowski; Erling Riis
Journal:  Sci Rep       Date:  2022-07-28       Impact factor: 4.996

Review 3.  Microfluidic Synthesis, Control, and Sensing of Magnetic Nanoparticles: A Review.

Authors:  Roozbeh Abedini-Nassab; Mahrad Pouryosef Miandoab; Merivan Şaşmaz
Journal:  Micromachines (Basel)       Date:  2021-06-29       Impact factor: 2.891

  3 in total

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