Fetal Magnetocardiography Using Optically Pumped Magnetometers: A Literature Review
Abstract
1. Introduction
2. Materials and Methods
3. Results
3.1. Early Studies
3.1.1. Proof-of-Concept OPM-Based Fetal Magnetocardiography
3.1.2. Conformal Multichannel OPM Array
3.2. Clinical Studies—Madison Program
3.2.1. Clinical Evaluation Against SQUID Systems
3.2.2. Compact OPM System for Clinical Fetal Magnetocardiography
3.3. Clinical Studies—Little Rock Program
3.3.1. Pilot Evaluation of Adaptable OPM Arrays
3.3.2. Clinical Evaluation of Adaptable OPM Arrays for Fetal Heart Rate Variability Assessment
3.3.3. Prototype Bed-Based OPM System
3.3.4. Stand-Alone Bed-Based OPM System
3.3.5. OPM-Based Fetal Movement Assessment
3.3.6. Factors Influencing OPM-fMCG Signal Quality
3.4. Clinical Studies—Munich Program
3.4.1. Hospital-Based Implementation of OPM-fMCG
3.4.2. Establishment of Gestational-Age-Specific Reference Intervals
4. Discussion
5. Conclusions
6. Future Directions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ECG | Electrocardiography |
| FHRV | Fetal heart rate variability |
| fMCG | Fetal magnetocardiography |
| IAS | Inherited arrhythmia syndrome |
| ICA | Independent component analysis |
| LQTS | Long QT syndrome |
| MEG | Magnetoencephalography |
| MSR | Magnetically-shielded room |
| OP | Orthogonal projection |
| OPM | Optically pumped magnetometer |
| POMN | Projection operator based on minimum norm |
| RMSSD | Root mean square of successive differences |
| SDNN | Standard deviation of normal-to-normal beat intervals |
| SNR | Signal-to-noise ratio |
| SQUID | Superconducting Quantum Interference Device |
| TdP | Torsades de Pointes |
| ICS | Splined Independent Component Subtraction |
Appendix A. Structured Literature Search and Review Methods
Appendix A.1. Research Question and Objective
| PICOS | Included | Excluded |
|---|---|---|
| Population | Pregnant women or pregnant people carrying a fetus of any gestational age; normal pregnancies or pregnancies with suspected or known fetal cardiac rhythm or conduction abnormalities. | Non-human studies; animal studies; cell lines; phantoms; ex vivo tissue only; adult-only or neonatal-only populations without fetal in vivo pregnancy data. |
| Intervention | Fetal magnetocardiography performed using optically pumped magnetometry, optically pumped magnetometers, optical magnetometers, atomic magnetometers, SERF magnetometers, or closely equivalent OPM-based fetal cardiac magnetic recording systems. | SQUID-only fetal magnetocardiography; fetal echocardiography, CTG, fetal ECG, or postnatal ECG without OPM-based fetal magnetocardiography; fetal magnetoencephalography without fetal cardiac outcomes. |
| Comparator | No comparator required | Comparator-only studies without OPM-based fetal magnetocardiography. |
| Outcomes | Clinically interpretable fetal cardiac outcomes, including fetal heart rate, fetal heart rate variability, rhythm assessment, arrhythmia or conduction assessment, P/PR/QRS/QT/QTc/RR intervals, waveform detectability, diagnostic-quality signal acquisition, agreement with clinical comparators, maternal tolerability, safety, or clinical utility. | Purely technical outcomes only, such as sensor noise, shielding performance, algorithm performance, simulation accuracy, or phantom validation, without in vivo pregnant-human fetal cardiac data. |
| Study design | Original in vivo human studies, including prospective or retrospective clinical studies, feasibility studies, diagnostic or comparative studies, cohorts, case series, and clinically informative case reports. | Reviews, systematic reviews, meta-analyses, editorials, comments, letters, protocols, conference abstracts without sufficient original clinical data (but full peer-reviewed conference proceedings containing adequate original data were eligible), educational articles, methodological-only papers, and purely technical development reports. |
Appendix A.2. Search Strategy
| PubMed | 14 June 2026 | |
|---|---|---|
| #1 (Population) | (fMCG[tiab] OR fetal MCG[tiab] OR “foetal MCG”[tiab] OR ((fetal[tiab] OR foetal[tiab] OR fetus[tiab] OR foetus[tiab]) AND magnetocardiograph*[tiab])) | 1741 |
| #2 (Intervention) | (OPM[tiab] OR OPMs[tiab] OR “optically pumped”[tiab] OR ((optical[tiab] OR atomic[tiab]) AND magnetometer*[tiab]) OR SERF[tiab] OR “spin-exchange relaxation-free”[tiab] OR “spin exchange relaxation free”[tiab] OR QuSpin[tiab]) | 5135 |
| #1 AND #2 | 21 |
| Embase | 14 June 2026 | |
|---|---|---|
| #1 (Population) | (‘magnetocardiography’/exp OR fMCG:ti,ab,kw OR ‘fetal MCG’:ti,ab,kw OR ((fetal:ti,ab,kw OR foetal:ti,ab,kw OR fetus:ti,ab,kw OR foetus:ti,ab,kw OR pregnan*:ti,ab,kw OR gestation*:ti,ab,kw OR prenatal:ti,ab,kw OR antenatal:ti,ab,kw) AND (magnetocardiograph*:ti,ab,kw OR magnetocardiogram*:ti,ab,kw OR MCG:ti,ab,kw OR ‘cardiac magnetic field*’:ti,ab,kw))) | 4237 |
| #2 (Intervention) | (OPM:ti,ab,kw OR OPMs:ti,ab,kw OR ‘optically pumped’:ti,ab,kw OR ‘optical pumping’:ti,ab,kw OR ((optical:ti,ab,kw OR atomic:ti,ab,kw OR alkali:ti,ab,kw OR quantum:ti,ab,kw) AND magnetometr*:ti,ab,kw) OR ‘magnetic sensor*’:ti,ab,kw OR SERF:ti,ab,kw OR ‘spin-exchange relaxation-free’:ti,ab,kw OR ‘spin exchange relaxation free’:ti,ab,kw OR QuSpin:ti,ab,kw) | 4845 |
| #1 AND #2 | 89 | |
| #1 AND #2 | filter: Article, Article in press, Conference abstracts | 72 |
| Scopus | 14 June 2026 | |
|---|---|---|
| #1 (Population) | TITLE-ABS-KEY(fMCG OR “fetal MCG” OR ((fetal OR foetal OR fetus OR foetus OR pregnan* OR gestation* OR prenatal OR antenatal) AND (magnetocardiograph* OR magnetocardiogram* OR MCG OR “cardiac magnetic field*”))) | 3986 |
| #2 (Intervention) | TITLE-ABS-KEY(OPM OR OPMs OR “optically pumped” OR “optical pumping” OR ((optical OR atomic OR alkali OR quantum) AND magnetometr*) OR “magnetic sensor*” OR SERF OR “spin-exchange relaxation-free” OR “spin exchange relaxation free” OR QuSpin) | 73,849 |
| #1 AND #2 | 32 | |
| #1 AND #2 | filter: Article, Conference paper | 24 |
Appendix A.3. Exclusion Criteria
- No title/abstract available or not in English.
- Not an original study.
- Non-human, animal, phantom, simulation, ex vivo-only, or tissue-only study.
- Not an in vivo pregnant-human fetal study.
- OPM-based fetal magnetocardiography not used.
- No clinically interpretable fetal cardiac outcome reported (purely technical, hardware, sensor, shielding, algorithmic, or methodological study without original pregnant-human fetal cardiac data).
- Ineligible publication type, including review, systematic review, meta-analysis, editorial, commentary, letter, protocol, conference abstract, or educational article.
Appendix A.4. Additional Searches
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| Reference | Year of Publication | Number of Pregnant Women | Population/Clinical Focus | Principal Contribution |
|---|---|---|---|---|
| Early studies | ||||
| Wyllie et al. [33] | 2012 | 1 | 1 healthy pregnancy; normal fetal rhythm at 31 weeks’ gestation | First proof-of-concept OPM-fMCG |
| Alem et al. [34] | 2015 | 1 | 1 healthy pregnancy; normal fetal rhythm at 32 weeks’ gestation | Flexible conformal multichannel OPM array |
| Clinical studies—Madison program | ||||
| Batie et al. [35] | 2018 | 15 | 8 uncomplicated pregnancies; 7 pregnancies with fetal arrhythmia or high risk of fetal arrhythmia, including marked QT prolongation/LQTS, functional AV block, ventricular bigeminy or tachycardia, low atrial rhythm, and atrial or ventricular ectopy | First clinical comparison with SQUID |
| Strand et al. [36] | 2019 | 24 | 6 uncomplicated pregnancies; 2 pregnancies with high-risk obstetric conditions; 16 pregnancies with fetal arrhythmia or risk of arrhythmia attributed to clinical findings or family history | Compact OPM-fMCG platform |
| Clinical studies—Little Rock program | ||||
| Escalona-Vargas et al. [37] | 2020 | 3 | 3 low-risk uncomplicated pregnancies; normal fetal rhythm | Flexible adaptable sensor array |
| Escalona-Vargas et al. [38] | 2020 | 24 | 24 healthy uncomplicated singleton pregnancies, 28–38 weeks’ gestation | Clinical evaluation of flexible arrays for FHRV |
| Escalona-Vargas et al. [39] | 2024 | 15 | 15 healthy pregnancies; additional proof-of-concept recording in a fetus with abnormal rhythm | Prototype bed-based system |
| Escalona-Vargas et al. [40] | 2025 | 22 | 22 pregnancies undergoing serial paired OPM–SQUID recordings; predominantly low-risk pregnancies with normal fetal rhythm | Stand-alone integrated OPM-fMCG platform |
| Escalona-Vargas et al. [41] | 2025 | 4 | 4 low-risk pregnancies, 28–36 weeks’ gestation; fetal movement and heart-rate assessment | Simultaneous fetal movement assessment |
| Ramirez et al. [42] | 2026 | 32 | 32 pregnant participants with longitudinal recordings at 28–38 weeks’ gestation; evaluation of maternal and fetal determinants of signal quality and waveform detectability | Determinants of OPM-fMCG signal quality |
| Clinical studies—Munich program | ||||
| Wurm et al. [43] | 2023 | 7 | 7 uncomplicated pregnancies, 26–36 weeks’ gestation; normal fetal rhythm | Hospital implementation |
| Wacker-Gussmann et al. [44] | 2026 | 57 | 57 healthy women with uncomplicated singleton pregnancies, 25–40 weeks’ gestation; five recordings excluded because of low SNR or magnetic artefact | First gestational-age-specific reference intervals |
| Reference | Experimental Setup | fMCG Separation Methods | Preprocessing/Noise Reduction Techniques | Shielding Environment |
|---|---|---|---|---|
| Early studies | ||||
| Wyllie et al. [33] | Custom-built SERF OPM array (4 channels; 2 channels closer to the fetus, 2 channels closer to mother’s heart); comparison with a 7-channel vector SQUID magnetometer (21 detectors; Tristan Vector Magnetometer, Tristan Inc., San Diego). | Eigenvector-based spatial filtering to separate fetal and maternal MCG [45]. | Active hardware gradiometry (feedback compensation); 80 Hz low-pass filter; 60 Hz comb filter; Autocorrelation-based beat alignment for averaging. | MSR with a noise floor of approximately 5 fT/√Hz |
| Alem et al. [34] | 25-channel microfabricated SERF OPM array mounted on three flexible belts (two over the abdomen, one over the chest); 16 of 25 sensors used for analysis (9 rejected due to excessive noise); the sensors were configured in a software lock-in detection (20 kHz acquisition, 1.7 kHz modulation). | OP using maternal MCG signal-space vectors [46]; ICA using the second-order blind-identification algorithm (SOBI) [47]; simultaneous chest and abdominal recordings used to characterize maternal and fetal MCG. | 40 Hz low-pass filter; 0.5 Hz high-pass filter; rejection of noisy channels; QRS detection and autocorrelation/R-peak alignment for averaging. | 7-layer BMSR II MSR (remanent field < 1 nT, shielding factor ≈ 10,000 at 0.1 Hz) |
| Clinical studies—Madison program | ||||
| Batie et al. [35] | QuSpin QZFM OPM array mounted in a 3D-printed holder (from 3 up to 8 sensors in a 3 × 3 grid with 3.81 cm spacing, center occupied by a support post); comparison with a SQUID magnetometer (Model 624, Tristan Technologies). | Signal processing to remove maternal and environmental interference (method not specified). | Signal processing to remove maternal and environmental interference (method not specified). | 2-shell MSR |
| Strand et al. [36] | 10-sensor QuSpin QZFM OPM array (12-slot 3D-printed holder arranged in a 9 × 9 cm offset square grid, with two corner slots left vacant); comparison with a 7-channel vector SQUID gradiometer (21 SQUID sensors; Tristan 624 Biomagnetometer); OPMs measured two orthogonal magnetic field components; subjects were measured prone for OPM-CS and supine (or on one side if necessary) for SQUID-MSR and OPM-MSR. | Maternal MCG was removed using ICA (Splined Independent Component Subtraction—ICS) [48]. | Band-pass filtering (1–80 Hz); Linear Minimum Mean-Square Error (LMMSE) spatial filter to attenuate environmental and other interference [49]; autocorrelation-based beat alignment for averaging (50 consecutive beats) | 3-shell open-ended cylindrical mu-metal shield (OPM-CS); additional comparison using the same OPM array in a 2-shell mu-metal magnetically shielded room (OPM-MSR) and the SQUID gradiometer in the 2-shell mu-metal MSR (SQUID-MSR); residual DC magnetic field nulled to ≈10 nT using triaxial compensation coils |
| Clinical studies—Little Rock program | ||||
| Escalona-Vargas et al. [37] | 14-channel OPM array configured using 3D-printed adaptable sensor holders (sensor spacing 3 cm); no details of the OPM model are provided; measurements performed in three maternal positions (leaning backward, leaning forward, prone); fetal heart localized by ultrasound before recordings; 6-min recordings from three healthy pregnant women. | Projection operator algorithm based on minimum norm (POMN) for maternal MCG attenuation and fetal MCG extraction [50]. | Band-pass filter (0.5–50 Hz); notch filter (power line attenuation); wavelet transform-based detrending to remove low-frequency baseline drift [51]; R-peak detection using the Hilbert transform [52]; time averaging. | No shielding details reported. |
| Escalona-Vargas et al. [38] | 14-channel QuSpin QZFM Gen-1.0 QZFM OPM array (7 sensors, dual-axis operation); sensors mounted in 3D-printed flexible grid/belt (3 cm sensor spacing) positioned over the maternal abdomen; measurements performed in two maternal positions (leaning forward and leaning backward); fetal heart localized by ultrasound before each recording; 1 kHz sampling rate; two 6-min recordings per session in 24 healthy pregnant women (28–38 weeks GA). | POMN for maternal MCG attenuation and fetal MCG extraction. | Notch filter (power line attenuation); band-pass filter (0.5–50 Hz); principal component analysis (PCA) implemented in the Brainstorm software package (version not specified) for additional noise attenuation; wavelet transform-based detrending; R-peak detection using the Hilbert transform; manual correction of missing/spurious fetal heartbeats; grand averaging | No shielding details reported. |
| Escalona-Vargas et al. [39] | 14 QuSpin OPMs (QZFM Gen-1.0, operated in dual-axis); 3D-printed prototype grid mounted in a customized bed; 3-layer magnetically shielded room (Vakuumschmelze; Hanau, Germany) with active triaxial Helmholtz coils for residual field compensation; prone position with sensors in contact with the maternal abdomen; ultrasound-guided sensor placement; back-to-back comparison with the 151-channel SARA SQUID system. | POMN for maternal MCG attenuation and fetal MCG extraction. | Band-pass filter (0.5–50 Hz); R-peak detection using the Hilbert transform; cubic spline interpolation for uniformly sampled R–R intervals; signal grand averaging | 3-layer MSR (Vakuumschmelze; Hanau, Germany) with active triaxial Helmholtz coils for residual field compensation |
| Escalona-Vargas et al. [40] | 14 QuSpin QZFM OPMs (Gen-2 and Gen-3, 28 channels operated in dual-axis mode); customized bed-based stand-alone system with adjustable belly-shaped sensor holder; 1 kHz sampling; subjects measured prone in a “donut-hole” mattress; comparison with the 151-channel SARA SQUID system. | POMN for maternal MCG attenuation and fetal MCG extraction. | Notch filter; 4th-order Butterworth band-pass filter (0.5–50 Hz); ICA (Infomax variant [53], implemented in the Brainstorm) for background noise attenuation; manual rejection of bad channels/segments and ICA component selection; R-peak detection using the Hilbert transform; signal grand averaging | 3-layer cylindrical mu-metal shield (3.05 m long × 1.83 m diameter) with passive shielding, degaussing system and active compensation coil; residual field < 15 nT; average noise floor 11 fT/√Hz (10–200 Hz). |
| Escalona-Vargas et al. [41] | 14 QuSpin QZFM OPMs (Gen-2 and Gen-3, 28 channels operated in dual-axis mode); customized bed-based stand-alone system with adjustable belly-shaped sensor holder; 1 kHz sampling; HALO (QuSpin) used for sensor localization; subjects measured prone; ultrasound-guided fetal heart localization. | POMN for maternal MCG attenuation and fetal MCG extraction. | Notch filter; 4th-order Butterworth band-pass filter (1–50 Hz); ICA for background noise attenuation; R-peak detection using the Hilbert transform; visual inspection using Brainstorm. | 3-layer cylindrical mu-metal shield (3.05 m long × 1.83 m diameter); average noise floor 11 fT/√Hz (10–200 Hz); |
| Ramirez et al. [42] | Bed-based stand-alone array of 15 QuSpin QZFM OPMs (30 channels) (Gen-2 and Gen-3, dual-axis operation); custom bed with sensor array positioned directly beneath the maternal abdomen; recordings acquired at 1 kHz; participants measured in the prone position after ultrasound localization of the fetal heart. | POMN for maternal MCG attenuation and fetal MCG extraction. | ICA (Infomax variant, implemented in Brainstorm) used for background noise suppression. Fourth-order Butterworth band-pass filter (0.5–50 Hz); 60 Hz notch filter (1.5 Hz bandwidth); visual inspection and rejection of bad channels/artifacts; R-peak detection; averaging in 60 s windows for cardiac time interval (CTI) extraction. | 3-layer cylindrical magnetic shield (Magnetic Shields Ltd.) located inside an MSR shield reduced residual DC magnetic field to < 15 nT. |
| Clinical studies—Munich program | ||||
| Wurm et al. [43] | 8 QuSpin QZFM OPMs arranged in a 3 × 3 grid (5 cm spacing, center position unoccupied); dual-axis operation; sensors positioned 1.5 mm below the abdomen (8 mm above the sensitive volume); subjects measured in the prone position on a movable bed with an abdominal cutout. | ICA (FastICA implementation [54]) to separate fetal and maternal MCG. | 50 Hz notch filter; first-order Butterworth band-pass filter (3–75 Hz); matched filtering based on bispectral analysis [55]; heartbeat detection; averaging (up to 300 consecutive beats) to derive high-resolution fMCG waveforms. | 3-layer cylindrical person-sized mu-metal shield (97 cm diameter, 265 cm length) with noise floor ≈ 220 fT/√Hz (3–45 Hz); active triaxial magnetic field compensation reduced the ambient noise floor to ≈80 fT/√Hz. |
| Wacker-Gussmann et al. [44] | 16 QuSpin QZFM OPMs arranged in a 4 × 4 grid (5 cm spacing) below the abdomen; dual-axis operation; measurements performed in a subjects measured prone following ultrasound localization of the fetal heart; three recording runs of at least 10 min each. | ICA with manual maternal component identification. [48] | Digital band-pass filter (1–50 Hz); ICA used for maternal MCG and interference removal; averaging of 50–100 consecutive fetal QRS complexes. | 3-layer cylindrical person-sized magnetic shield with active triaxial magnetic field compensation (MR-3, Stefan Mayer Instruments); ambient noise floor ≈ 80 fT/√Hz; |
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Hren, R.; Marhl, U.; Dóczi, T.; Országh, E.; Jazbinšek, V.; Sander, T. Fetal Magnetocardiography Using Optically Pumped Magnetometers: A Literature Review. Biosensors 2026, 16, 487. https://doi.org/10.3390/bios16090487
Hren R, Marhl U, Dóczi T, Országh E, Jazbinšek V, Sander T. Fetal Magnetocardiography Using Optically Pumped Magnetometers: A Literature Review. Biosensors. 2026; 16(9):487. https://doi.org/10.3390/bios16090487
Chicago/Turabian StyleHren, Rok, Urban Marhl, Tamás Dóczi, Erika Országh, Vojko Jazbinšek, and Tilmann Sander. 2026. "Fetal Magnetocardiography Using Optically Pumped Magnetometers: A Literature Review" Biosensors 16, no. 9: 487. https://doi.org/10.3390/bios16090487
APA StyleHren, R., Marhl, U., Dóczi, T., Országh, E., Jazbinšek, V., & Sander, T. (2026). Fetal Magnetocardiography Using Optically Pumped Magnetometers: A Literature Review. Biosensors, 16(9), 487. https://doi.org/10.3390/bios16090487

