Strain-restricted transfer of ferromagnetic electrodes for constructing reproducibly superior-quality spintronic devices

Spintronic device is the fundamental platform for spin-related academic and practical studies. However, conventional techniques with energetic deposition or boorish transfer of ferromagnetic metal inevitably introduce uncontrollable damage and undesired contamination in various spin-transport-channe...

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Veröffentlicht in:Nature communications 2024-01, Vol.15 (1), p.865-10, Article 865
Hauptverfasser: Guo, Lidan, Gu, Xianrong, Hu, Shunhua, Sun, Wenchao, Zhang, Rui, Qin, Yang, Meng, Ke, Lu, Xiangqian, Liu, Yayun, Wang, Jiaxing, Ma, Peijie, Zhang, Cheng, Guo, Ankang, Yang, Tingting, Yang, Xueli, Wang, Guorui, Liu, Yaling, Wang, Kai, Mi, Wenbo, Zhang, Chuang, Jiang, Lang, Liu, Luqi, Zheng, Kun, Qin, Wei, Yan, Wenjing, Sun, Xiangnan
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Sprache:eng
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Zusammenfassung:Spintronic device is the fundamental platform for spin-related academic and practical studies. However, conventional techniques with energetic deposition or boorish transfer of ferromagnetic metal inevitably introduce uncontrollable damage and undesired contamination in various spin-transport-channel materials, leading to partially attenuated and widely distributed spintronic device performances. These issues will eventually confuse the conclusions of academic studies and limit the practical applications of spintronics. Here we propose a polymer-assistant strain-restricted transfer technique that allows perfectly transferring the pre-patterned ferromagnetic electrodes onto channel materials without any damage and change on the properties of magnetism, interface, and channel. This technique is found productive for pursuing superior-quality spintronic devices with high controllability and reproducibility. It can also apply to various-kind (organic, inorganic, organic-inorganic hybrid, or carbon-based) and diverse-morphology (smooth, rough, even discontinuous) channel materials. This technique can be very useful for reliable device construction and will facilitate the technological transition of spintronic study. To optimize the interfacial quality and electrode magnetism in spintronic devices, the authors develop an electrode transfer technique that can greatly improve device interfacial quality, performance and reproducibility, universal to various spacers.
ISSN:2041-1723
2041-1723
DOI:10.1038/s41467-024-45200-7