Eco-sustainable magnetoresistive sensors towards disposable magnetoelectronics

L Lin Guo R Rui Xu (College & Hospital of Stomatology) P Proloy Taran Das E Eduardo Sergio Oliveros-Mata X Xuan Peng O Oleksandr V. Pylypovskyi R René Hübner (Institute of Ion Beam Physics and Materials Research) F Fabian Ganss X Xiaotao Wang Y Yi Li S Sebastian Gepp Y Yevhen Zabila X Xilai Bao S Shengbin Li Q Qihao Zhang (State Key Laboratory of Synthetic Chemistry, Shanghai Hong Kong Joint Laboratory in Chemical Synthesis, Department of Chemistry) I Igor Veremchuk Z Željko Janićijević L Larysa Baraban C Clemens Voigt S Sindy Mosch O Oliver Gutfleisch R Run-Wei Li D Denys Makarov

Abstract

Abstract This work presents a holistic integration of environmental sustainability and enhanced sensing performance throughout the full lifecycle of magnetoresistive sensors. Utilizing industry-scale screen-printing techniques combined with eco-friendly inks (formulated from engineered Fe/Fe 3 O 4 core-shell magnetic microparticles, bioderived polymeric binders, and water solvent), the fabrication process avoids harsh treatments and hazardous chemicals. The resulting sensors, constructed entirely from naturally sourced materials, inherently exhibit biocompatibility, biodegradability, and environmentally benign recyclability. These properties collectively demonstrate key attributes for a sustainable life cycle. Through rational engineering of the Fe/Fe 3 O 4 core-shell structure particles, two synergistic mechanisms are activated within the composite: spin-dependent hopping across Fe 3 O 4 shell grain boundaries and in situ magnetic flux concentration induced by Fe cores, thereby yielding an order-of-magnitude enhancement in low-field sensitivity relative to sputtered Fe film and printed Fe 3 O 4 particle-based counterparts, resulting in a higher magnetoresistance ratio at 10 mT relative to all printed magnetoresistive sensors reported previously. The convergence of eco-sustainability and high performance enables previously unattainable disposable magnetoelectronics, unlocking new opportunities for environmentally responsible and user-safe transient electronics and Internet of Things (IoT) applications.

Article Details

Volume / Issue Vol. 17, Issue 1
Published March 27, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (23)

L

Lin Guo

R

Rui Xu

College & Hospital of Stomatology

P

Proloy Taran Das

E

Eduardo Sergio Oliveros-Mata

X

Xuan Peng

O

Oleksandr V. Pylypovskyi

R

René Hübner

Institute of Ion Beam Physics and Materials Research

F

Fabian Ganss

X

Xiaotao Wang

Y

Yi Li

S

Sebastian Gepp

Y

Yevhen Zabila

X

Xilai Bao

S

Shengbin Li

Q

Qihao Zhang

State Key Laboratory of Synthetic Chemistry, Shanghai Hong Kong Joint Laboratory in Chemical Synthesis, Department of Chemistry

I

Igor Veremchuk

Z

Željko Janićijević

L

Larysa Baraban

C

Clemens Voigt

S

Sindy Mosch

O

Oliver Gutfleisch

R

Run-Wei Li

D

Denys Makarov