Abstract The flexibility of nanoparticle films is a topic of rapidly growing interest in both scientific and engineering researches due to their numerous potential applications in a broad range of wearable electronics and biomedical devices. This article presents the elucidation of the properties of nanoparticle films. Here, a flexible film is fabricated based on polyethylene terephthalate (PET) and magnetic iron oxide at the nanoscale using layer-by-layer technology. The 2D thin flexible film material can be bent at different angles from 0° to 360°. With an increase in elastic deformation angles, the magnetocaloric effect of the film gradually increases in the alternating magnetic field. The test results from a vibrating sample magnetometer and a low-frequency impedance analyzer demonstrate that the film has a good magnetic response and anisotropy. The magnetocaloric effect and magnetic induction effect are controlled by deformation, providing a new idea for the application of elastic films. It combines the flexibility of the nanoparticle PET substrate and, in the future, it may be used for skin adhesion for administration and magnetic stimulation control.
Fund: Project supported by Scientific Research Funds (Grant No. 7001/700199) and Henan Provincial Department Scientific Research Project (Grant No. 22A430034).
Corresponding Authors:
Fengguo Fan
E-mail: fanfengguo@126.com
Cite this article:
Fengguo Fan(范凤国) and Lintong Duan(段林彤) Mechanical and magnetocaloric adjustable properties of Fe3O4/PET deformed nanoparticle film 2024 Chin. Phys. B 33 037502
[1] ia Y P, Ling Z G and Pan H L 2023 Chin. Phys. B32 027501 [2] Soriano D, Katsnelson M I and Fernandez-Rossier J 2020 Nano Lett.20 6225 [3] Jiang W, Hou Y F, Li S J, Fu Z G and Zhang P 2021 Chin. Phys. B30 127501 [4] Hu L B, David S H and Grüner G 2010 Chem. Rev.110 5790 [5] Zhao X, Wang K and Li B 2018 Anal. Chemi.90 7158 [6] Tyle R R, Jungil C, Bandodkar A J, Siddharth K, Philipp G, Limei T, Roozbeh G and John A R 2019 Chem. Rev.119 5461 [7] Loong L M, Lee W and Qiu X 2016 Adv. Mater.28 4983 [8] Liu W, Liu M and Ma R 2018 Adv. Funct. Mater.28 1705928 [9] Yong Z, Ming L and Shen L 2017 ACS Nano11 8002 [10] Merabtine S, Zighem F and Garcia-Sanchez A 2018 Sci. Rep.-UK8 13695 [11] Zighem F, Bahoui A E and Moulin J 2014 J. Appl. Phys.116 1062 [12] Sun X, Bedoya-Pinto A and Llopis R 2014 Appl. Phys. Lett.105 083302 [13] Kozakova Z, Kuritka I, Kazantseva E N, Babayan V, Pastorek M, Machovsky M, Bazant P and Saha P 2015 Dalton T.44 21099 [14] Nabiyouni G, Julaee M, Ghanbari D, Aliabadi P C and Safaie N 2015 J. Ind. Eng. Chem.21 599 [15] Xie J, Zhang Y and Yan C 2014 Biomaterials35 9126 [16] Chen B, Sun J and Fan F 2018 Nanoscale10 7369 [17] Li Y, Hu K and Chen B 2017 Colloid. Surface. A520 348 [18] Fan F, Sun J and Chen B 2018 Sci. China. Mater.61 1 [19] Merabtine S, Zighem F, Garcia-Sanchez A 2018 Sci. Rep.-UK8 13695 [20] Ochiai E I 1978 J. Chem. Educ.55 631 [21] Mohammeda D W, Ameena R B, Sierros K A, Bowenc J and Kukureka S N 2018 Thin Solid Films645 241 [22] Dai G, Zhan Q and Liu Y 2012 Appl. Phy. Lett.100 3238 [23] Sun J, Fan F and Wang P 2016 Chemphyschem.17 3377
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