Literature DB >> 28195299

Nanoengineering of an Si/MnGe quantum dot superlattice for high Curie-temperature ferromagnetism.

Tianxiao Nie1, Xufeng Kou1, Jianshi Tang2, Yabin Fan1, Shengwei Lee3, Qinglin He1, Li-Te Chang1, Koichi Murata1, Yin Gen1, Kang L Wang1.   

Abstract

The realization and application of spintronic devices would be dramatically advanced if room-temperature ferromagnetism could be integrated into semiconductor nanostructures, especially when compatible with mature silicon technology. Herein, we report the observation of such a system - an Si/MnGe superlattice with quantum dots well aligned in the vertical direction successfully grown by molecular beam epitaxy. Such a unique system could take full advantage of the type-II energy band structure of the Si/Ge heterostructure, which could trap the holes inside MnGe QDs, significantly enhancing the hole-mediated ferromagnetism. Magnetic measurements indeed found that the superlattice structure exhibited a Curie temperature of above 400 K. Furthermore, zero-field cooling and field cooling curves could confirm the absence of ferromagnetic compounds, such as Ge8Mn11 (Tc ∼ 270 K) and Ge3Mn5 (Tc ∼ 296 K) in our system. Magnetotransport measurement revealed a clear magnetoresistance transition from negative to positive and a pronounced anomalous Hall effect. Such a unique Si/MnGe superlattice sets a new stage for strengthening ferromagnetism due to the enhanced hole-mediation by quantum confinement, which can be exploited for realizing the room-temperature Ge-based spin field-effect transistors in the future.

Entities:  

Year:  2017        PMID: 28195299     DOI: 10.1039/c6nr08688h

Source DB:  PubMed          Journal:  Nanoscale        ISSN: 2040-3364            Impact factor:   7.790


  1 in total

1.  High Curie Temperature Achieved in the Ferromagnetic MnxGe1-x/Si Quantum Dots Grown by Ion Beam Co-Sputtering.

Authors:  Xiaoxiao Duan; Shuming Ye; Jing Yang; Chen Li; Chunjiang Lu; Xinpeng He; Luran Zhang; Rongfei Wang; Feng Qiu; Jie Yang; Haoyang Cui; Chong Wang
Journal:  Nanomaterials (Basel)       Date:  2022-02-21       Impact factor: 5.076

  1 in total

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