Ferroelectronics Lab

Understanding and utilizing non-volatile properties of materials

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New Publication! “Composite Spin Hall Conductivity from Non-collinear Antiferromagnetic Order”

May 4, 2023 By Matt Webb

Abstract: Non-collinear antiferromagnets are an exciting new platform for studying intrinsic spin Hall effects, phenomena that arise from the materials’ band structure, Berry phase curvature, and linear , the spin Hall conductivities in the non-collinear state exhibit the predicted orientation-dependent anisotropy, opening the possibility for new devices with selectable spin polarization. O ur work demonstrates symmetry control through the magnetic lattice as a pathway to tailored functionality in magnetoelectronic systems.

Full text available from Advanced Materials.

Filed Under: Publications Tagged With: magnetism, Nguyen Vu, Pat Kezer, Peter Meisenheimer, Steve Novakov

New Publication! “Adaptive Magnetoactive Soft Composites for Modular and Reconfigurable Actuators”

March 27, 2023 By Matt Webb

Abstract: Magnetoactive soft materials, typically composed of magnetic particles dispersed in a soft polymer matrix, are finding many applications in soft robotics due to their reversible and remote shape transformations under magnetic fields. To achieve complex shape transformations, anisotropic, and heterogeneous magnetization profiles must be programmed in the material. However, once programmed and assembled, magnetic soft actuators cannot be easily reconfigured, repurposed, or repaired, which limits their application, their durability, and versatility in their design. Here, magnetoactive soft composites are developed from squid-derived biopolymers and NdFeB microparticles with tunable ferromagnetic and thermomechanical properties. By leveraging reversible crosslinking nanostructures in the biopolymer matrix, a healing-assisted assembly process is developed that allows for on-demand reconfiguration and magnetic reprogramming of magnetoactive composites. This concept in multi-material modular actuators is demonstrated with programmable deformation modes, self-healing properties to recover their function after mechanical damage, and shape-memory behavior to lock in their preferred configuration and un-actuated catch states. These dynamic magnetic soft composites can enable the modular design and assembly of new types of magnetic actuators, not only eliminating device vulnerabilities through healing and repair but also by providing adaptive mechanisms to reconfigure their function on demand.

Full text available from Advanced Functional Materials.

Filed Under: Publications Tagged With: device, magnetism

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News

  • New Publication! “Signatures of quantum spin liquid state and unconventional transport in thin film TbInO3” October 31, 2025
  • Tony Chiang Defends His Thesis, Earning a PhD! Congratulations Tony! August 19, 2025
  • New Publication! Sub-100 Ω/□ sheet resistance of GaN HEMT with ScAlN barrier August 10, 2025

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About

Our research is at the intersection of multiple disciplines, drawing on principles and methodologies from materials science, chemistry, physics, and electrical engineering. Our mission is to pioneer … Read More

News

New Publication! “Signatures of quantum spin liquid state and unconventional transport in thin film TbInO3”

October 31, 2025 By Avery-Ryan Ansbro

Tony Chiang Defends His Thesis, Earning a PhD! Congratulations Tony!

August 19, 2025 By Avery-Ryan Ansbro

Contact

Ferroelectronics Lab
Address: 2030 H.H. Dow

T: (734) 763-6914
E: jtheron@umich.edu
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