Magnetic Shape Memory Turns to Nano: Microstructure Controlled Actuation of Free-Standing Nanodisks

被引:23
作者
Campanini, Marco [1 ,2 ]
Nasi, Lucia [1 ]
Fabbrici, Simone [1 ,3 ]
Casoli, Francesca [1 ]
Celegato, Federica [4 ]
Barrera, Gabriele [4 ]
Chiesi, Valentina [1 ]
Bedogni, Elena [5 ]
Magen, Cesar [6 ,7 ]
Grillo, Vincenzo [1 ,8 ]
Bertoni, Giovanni [1 ,9 ]
Righi, Lara [1 ,5 ]
Tiberto, Paola [4 ]
Albertini, Franca [1 ]
机构
[1] CNR, IMEM, Parco Area Sci 37-A, I-43124 Parma, Italy
[2] Empa, Ueberlandstr 129, CH-8600 Dubendorf, Switzerland
[3] MIST ER, Via P Gobetti 101, I-40129 Bologna, Italy
[4] INRIM, Str Cacce 91, I-10135 Turin, Italy
[5] Univ Parma, Dipartimento Sci Chim, I-43121 Parma, Italy
[6] Univ Zaragoza, CSIC, ICMA, E-50009 Zaragoza, Spain
[7] Univ Zaragoza, Inst Nanociencia Aragon, LMA, Zaragoza 50018, Spain
[8] S3 CNR, Via Campi 213A, I-41125 Modena, Italy
[9] Ist Italiano Tecnol, Via Morego 30, I-16163 Genoa, Italy
关键词
Lorentz microscopy and electron microscopy techniques; magnetic field/temperature actuation of magnetic shape memory materials; magnetic shape memory free standing nanodisks; martensitic microstructure; multifunctional Heusler compounds; MN-GA FILMS; LORENTZ MICROSCOPY; CELL; PARTICLES; THICKNESS; REVERSAL;
D O I
10.1002/smll.201803027
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Magnetic shape memory materials hold a great promise for next-generation actuation devices and systems for energy conversion, thanks to the intimate coupling between structure and magnetism in their martensitic phase. Here novel magnetic shape memory free-standing nanodisks are proposed, proving that the lack of the substrate constrains enables the exploitation of new microstructure-controlled actuation mechanisms by the combined application of different stimuli-i.e., temperature and magnetic field. The results show that a reversible areal strain (up to 5.5%) can be achieved and tuned in intensity and sign (i.e., areal contraction or expansion) by the application of a magnetic field. The mechanisms at the basis of the actuation are investigated by experiments performed at different length scales and directly visualized by several electron microscopy techniques, including electron holography, showing that thermo/magnetomechanical properties can be optimized by engineering the martensitic microstructure through epitaxial growth and lateral confinement. These findings represent a step forward toward the development of a new class of temperature-field controlled nanoactuators and smart nanomaterials.
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页数:9
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