Computational Electromagnetics & Multiphysics Lab

Modeling electromagnetics and magnetization in next-generation materials and devices.

We develop high-performance computational methods for realistic systems involving electromagnetics, magnetization dynamics and statics, spintronics, elastics, heat transport, mechanical motion, and coherent X-ray imaging.

  • Electromagnetics
  • Magnetization
  • Spintronics
  • Elastics
  • Heat transport
  • CXDI
Coupled multiphysics model Nonlinear and linear electrodynamics at the center, coupled to magnetization, spintronic, elastic, thermal, ferroelectric, and moving-geometry models. NONLINEAR & LINEAR Electrodynamics fields + currents + waves Magnetizationdynamics + statics Spintronicstorques + transport Moving geometrydynamic meshes Elasticsstrain + phonons Thermalheat transport Ferroelectricspolarization
High-performanceAlgorithms and codes designed for computationally demanding material and device models.
MultiphysicsCoupled formulations spanning magnetic, electromagnetic, elastic, thermal, and mechanical effects.
Material and device-relevantRealistic materials and systems, from memory technologies to coherent X-ray imaging.
Research thrusts

Computation across coupled physical scales.

Our work combines physical modeling, numerical methods, and parallel computing to study materials and devices whose behavior cannot be captured by a single isolated mechanism.

01

Electromagnetics & micromagnetics

High-performance computational methods for electromagnetic fields, micromagnetic dynamics, and their coupling to realistic material and device models.

02

Coherent X-ray imaging

Computational methods for real-time three-dimensional coherent X-ray diffraction imaging and reconstruction of magnetic textures.

03

Memory & recording

Magnetic and ferroelectric memory and recording systems, including MRAM, FeRAM, PMR, HAMR, and ferroelectric recording.

04

Magnetoelastic spin dynamics

Spin-wave–phonon propagation and coupling among spin-transfer-torque and spin-orbit-torque oscillators.

05

Neural interfaces

Neural-network-enhanced EEG event recognition for device control, including integration with virtual-reality systems.

See research themes and active projects

Research in motion

Electromagnetic fields, magnetization, and realistic structures.

Selected visuals from the lab’s simulations and modeling work, including electromagnetic scattering, microstructure-resolved magnetics, and dynamic field visualization.

Human upper-body computational model colored by electromagnetic field intensity.
Computational electromagneticsFast integral-equation methods for electromagnetic scattering in complex geometries.
Three-dimensional polycrystalline material model with many differently colored grains.
Realistic magnetic materialsMicrostructure-resolved models for soft and permanent magnetic materials.
Panels showing simulated magnetic domain and skyrmion configurations under changing conditions.
Magnetization texturesSimulation and interpretation of complex magnetic states and their evolution.
Simulation movie

Dynamic visualization of a computed magnetic structure.

The movie gives visitors an immediate view of the lab’s simulation workflow and three-dimensional field visualization.

Selected publications

Recent results.

Selected journal articles from the lab’s recent work in high-performance computation, spin dynamics, coherent imaging, and topological magnetic systems.

2026Computer Physics Communications

Fast calculation of retarded potentials in multi-domain TDDFT

F. M. Shapira, V. Lomakin, A. Boag, and A. Natan.

Open publication
2025Applied Physics Letters

Spin wave assisted synchronization in 2D arrays of spin torque oscillators

F. Ai, J. Duan, and V. Lomakin.

Open publication
2025Nature Materials

Correlated spin wave generation and domain-wall oscillation in a topologically textured magnetic film

C. Liu, F. Ai, S. Reisbick, V. Lomakin, and Y. Zhu.

View in publication list

Browse all journal articles

Lab news

Recent milestones.

Conferences, student research, leadership, and degree milestones from the lab community.

August 2026

The lab and CMRR host TMRC 2026 at UC San Diego.

The 37th Magnetic Recording Conference brought three days of discussion on solid-state magnetic memory, storage architectures for AI, and recording beyond 3 Tbit/in².

2026

ENLACE interns present real-time EEG research.

Edith Elias and Diego Munos completed and presented a project on neural-network-based real-time EEG event detection.

July 2026

Prof. Lomakin begins term as CMRR Director.

Vitaliy Lomakin began serving as Director of the Center for Memory and Recording Research at UC San Diego.

2024

Fangzhou Ai completes Ph.D.

Dr. Ai defended work on high-performance computational techniques for X-ray imaging and micromagnetic analysis of periodic arrays.

All news

Join the lab

We welcome exceptional researchers.

The lab is open to outstanding Ph.D. students and postdoctoral researchers working at the intersection of computation, electromagnetics, magnetism, materials, imaging, and coupled physical systems.

Opportunities