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On-the-Fly Synthesis of Freestanding Spin-Crossover Architectures With Tunable Magnetic Propertiesopen access

Authors
Ngo, Anh TuanAguila, DavidVale, Joao PedroSevim, SemihMattera, MicheleDiaz-Marcos, JordiPons, RamonAromi, GuillemJang, BumjinPane, SalvadorMayor, Tiago SottoPalacios-Corella, MarioPuigmarti-Luis, Josep
Issue Date
Jun-2025
Publisher
WILEY-V C H VERLAG GMBH
Keywords
3D flow focusing; controlled concentration gradients; functional composites; hybrid composites; printing
Citation
ADVANCED MATERIALS, pp 1 - 11
Pages
11
Indexed
SCIE
SCOPUS
Journal Title
ADVANCED MATERIALS
Start Page
1
End Page
11
URI
https://scholarworks.bwise.kr/erica/handle/2021.sw.erica/125683
DOI
10.1002/adma.202420492
ISSN
0935-9648
1521-4095
Abstract
Spin-crossover (SCO) molecular-based switches have shown promise across a range of applications since their discovery, including sensing, information storage, actuators, and displays. Yet limited processability remains a barrier to their real-world implementation, as traditional methods for integrating SCO materials into polymer matrices are often complex, expensive, and prone to producing uneven material distributions. Herein, we demonstrate how 3D flow-focusing chemistry enables unprecedented control for the direct fabrication of SCO composite materials, addressing key challenges in processability, scalability, and cost. By using a 3D coaxial flow-focusing microfluidic device, we simultaneously synthesize [Fe(Htrz)2(trz)](BF4) and achieve its homogeneous incorporation into alginate fibers in a continuous manner. The device's versatility allows for precise manipulation of the reaction-diffusion (RD) zone, resulting in SCO composite fibers with tunable physicochemical and magnetic properties. Additionally, we demonstrate the ability to isolate these fibers as freestanding architectures and highlight the potential for printing them with defined shapes. Finally, we show that the 3D control of the RD zone granted by continuous flow microfluidic devices offers precise spatiotemporal control over the distribution of SCO complexes within the fibers, effectively encoding SCO materials into them. SCO-encoded fibers can seamlessly combine adaptability and functionality, offering innovative solutions for application-specific customization.
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ERICA 공학대학 (DEPARTMENT OF ROBOT ENGINEERING)
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