TY - JOUR
T1 - Strain-coupled, crystalline polymer-inorganic interfaces for efficient magnetoelectric sensing
AU - He, Binbin
AU - He, Yuanyuan
AU - Wang, Wenhui
AU - Sun, Yingzhi
AU - Kong, Shengwen
AU - Huang, Jin
AU - Ru, Yunfei
AU - Qin, Bingchao
AU - Ren, Huili
AU - He, Jing
AU - Zhao, Tianyi
AU - Li, Jing
AU - Lu, Jiong
AU - Zhao, Li Dong
AU - Liu, Mingjie
N1 - Publisher Copyright:
Copyright © 2025 the authors, some rights reserved.
PY - 2025/8/7
Y1 - 2025/8/7
N2 - Magnetoelectric sensing holds promise for flexible sensors, offering precise detection of both electric and magnetic fields with minimal power consumption. However, its practical use has been constrained by weak magnetoelectric effects and limited overall performance, particularly under mechanical strain. Herein, we fabricated robust magnetoelectric polymer-inorganic nanocomposites through an interfacial cocrystallization strategy. By leveraging diazonium chemistry on vanadium diselenide (Vse2) monolayers, we created a submolecular-flat interface between ferromagnetic Vse2 and ferroelectric poly(vinylidene fluoride) (PVDF) nanocrystals. this highly crystalline interface has few mobile polymer chains and thus limits energy dissipation and enhances interfacial energy transfer. the scalable composite films show exceptional magnetoelectric performance, with a magnetocapacitive coefficient of 23.6%. these films enable ultrafast magnetoelectric detection, approaching a 10-fold increase in speed compared with conventional sensors, and offer opportunities for integrating multifunctional materials such as thermoelectric coolers into wearable devices.
AB - Magnetoelectric sensing holds promise for flexible sensors, offering precise detection of both electric and magnetic fields with minimal power consumption. However, its practical use has been constrained by weak magnetoelectric effects and limited overall performance, particularly under mechanical strain. Herein, we fabricated robust magnetoelectric polymer-inorganic nanocomposites through an interfacial cocrystallization strategy. By leveraging diazonium chemistry on vanadium diselenide (Vse2) monolayers, we created a submolecular-flat interface between ferromagnetic Vse2 and ferroelectric poly(vinylidene fluoride) (PVDF) nanocrystals. this highly crystalline interface has few mobile polymer chains and thus limits energy dissipation and enhances interfacial energy transfer. the scalable composite films show exceptional magnetoelectric performance, with a magnetocapacitive coefficient of 23.6%. these films enable ultrafast magnetoelectric detection, approaching a 10-fold increase in speed compared with conventional sensors, and offer opportunities for integrating multifunctional materials such as thermoelectric coolers into wearable devices.
UR - https://www.scopus.com/pages/publications/105013290214
U2 - 10.1126/science.adt2741
DO - 10.1126/science.adt2741
M3 - 文章
C2 - 40773548
AN - SCOPUS:105013290214
SN - 0036-8075
VL - 389
SP - 623
EP - 631
JO - Science
JF - Science
IS - 6760
ER -