TriMag Microrobots: 3D‐Printed Microrobots for Magnetic Actuation, Imaging, and Hyperthermia

L Liuxi Xing (Department of Biomedical Engineering and Institute for Quantitative Health Science and Engineering, Michigan State University) Y Yulu Cai (Department of Chemical Engineering and Material Science, Michigan State University) Y Yapei Zhang (Department of Biomedical Engineering and Institute for Quantitative Health Science and Engineering Michigan State University East Lansing MI 48824 USA) K Kevin Mozel (Department of Biomedical Engineering and Institute for Quantitative Health Science and Engineering Michigan State University East Lansing MI 48824 USA) Z Zhengxu Tang (Department of Biomedical Engineering and Institute for Quantitative Health Science and Engineering Michigan State University East Lansing MI 48824 USA) T Tengteng Tang (Department of Aerospace and Mechanical Engineering Arizona State University Tempe AZ 85281 USA) V Vittorio Mottini (Department of Biomedical Engineering and Institute for Quantitative Health Science and Engineering, Michigan State University) S Saumya Nigam (Precision Health Program Michigan State University East Lansing MI 48824 USA) B Bryan R. Smith (Department of Biomedical Engineering and Institute for Quantitative Health Science and Engineering Michigan State University East Lansing MI 48824 USA) I Ian Y Lee (Henry Ford Hospital Detroit MI 48202 USA) T Tavarekere N. Nagaraja (Henry Ford Hospital Detroit MI 48202 USA) P Ping Wang X Xiangjia Li (Department of Aerospace and Mechanical Engineering Arizona State University Tempe AZ 85281 USA) T Tong Gao J Jinxing Li

Abstract

Abstract Microrobots hold immense potential in biomedical applications, including drug delivery, disease diagnostics, and minimally invasive surgeries. However, two key challenges hinder their clinical translation: achieving scalable and precision fabrication, and enabling non‐invasive imaging and tracking within deep biological tissues. Magnetic particle imaging (MPI), a cutting‐edge imaging modality, addresses these challenges by detecting the magnetization of nanoparticles and visualizing superparamagnetic nanoparticles (SPIONs) with sub‐millimeter resolution, free from interference by biological tissues. This capability makes MPI an ideal tool for tracking magnetic microrobots in deep tissue environments. In this study, “TriMag” microrobots are introduced: 3D‐printed microrobots with three integrated magnetic functionalities—magnetic actuation, magnetic particle imaging, and magnetic hyperthermia. The TriMag microrobots are fabricated using an innovative method that combines two‐photon lithography for 3D printing biocompatible hydrogel structures with in situ chemical reactions to embed the hydrogel scaffold with Fe 3 O 4 nanoparticles for good MPI contrast and CoFe 2 O 4 nanoparticles for efficient magnetothermal heating. This approach enables scalable, precise fabrication of helical magnetic hydrogel microrobots. The resulting TriMag microrobots, with the synergistic effects of Fe 3 O 4 and CoFe 2 O 4 nanoparticles, demonstrate efficient magnetic actuation for controlled movement, precise imaging via MPI for imaging and tracking in biological fluid and organs, including porcine eye and mouse stomach, and magnetothermal heating for tumor ablation in a mouse model. By combining these capabilities, the fabrication and imaging approach provides a robust platform for non‐invasive monitoring and manipulation of microrobots for transformative applications in medical treatment and biological research.

Article Details

Volume / Issue Vol. 37, Issue 45
Published November 01, 2025
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (15)

L

Liuxi Xing

Department of Biomedical Engineering and Institute for Quantitative Health Science and Engineering, Michigan State University

Y

Yulu Cai

Department of Chemical Engineering and Material Science, Michigan State University

Y

Yapei Zhang

Department of Biomedical Engineering and Institute for Quantitative Health Science and Engineering Michigan State University East Lansing MI 48824 USA

K

Kevin Mozel

Department of Biomedical Engineering and Institute for Quantitative Health Science and Engineering Michigan State University East Lansing MI 48824 USA

Z

Zhengxu Tang

Department of Biomedical Engineering and Institute for Quantitative Health Science and Engineering Michigan State University East Lansing MI 48824 USA

T

Tengteng Tang

Department of Aerospace and Mechanical Engineering Arizona State University Tempe AZ 85281 USA

V

Vittorio Mottini

Department of Biomedical Engineering and Institute for Quantitative Health Science and Engineering, Michigan State University

S

Saumya Nigam

Precision Health Program Michigan State University East Lansing MI 48824 USA

B

Bryan R. Smith

Department of Biomedical Engineering and Institute for Quantitative Health Science and Engineering Michigan State University East Lansing MI 48824 USA

I

Ian Y Lee

Henry Ford Hospital Detroit MI 48202 USA

T

Tavarekere N. Nagaraja

Henry Ford Hospital Detroit MI 48202 USA

P

Ping Wang

X

Xiangjia Li

Department of Aerospace and Mechanical Engineering Arizona State University Tempe AZ 85281 USA

T

Tong Gao

J

Jinxing Li