Yao Xiannian, Duan Qingqing, Tong Junwei, Chang Yufang, Zhou Lianqun, Qin Gaowu, Zhang Xianmin
Key Laboratory for Anisotropy and Texture of Materials (Ministry of Education), School of Material Science and Engineering, Northeastern University, Shenyang 110819, China.
Computer Teaching and Researching Section, Shenyang Conservatory of Music, Shenyang 110818, China.
Materials (Basel). 2018 May 3;11(5):721. doi: 10.3390/ma11050721.
Organic spin devices utilizing the properties of both spin and charge inherent in electrons have attracted extensive research interest in the field of future electronic device development. In the last decade, magnetoresistance effects, including giant magetoresistance and tunneling magnetoresistance, have been observed in organic spintronics. Significant progress has been made in understanding spin-dependent transport phenomena, such as spin injection or tunneling, manipulation, and detection in organic spintronics. However, to date, materials that are effective for preparing organic spin devices for commercial applications are still lacking. In this report, we introduce basic knowledge of the fabrication and evaluation of organic spin devices, and review some remarkable applications for organic spin valves using molecular spacers. The current bottlenecks that hinder further enhancement for the performance of organic spin devices is also discussed. This report presents some research ideas for designing organic spin devices operated at room temperature.
利用电子固有的自旋和电荷特性的有机自旋器件在未来电子器件开发领域引起了广泛的研究兴趣。在过去十年中,在有机自旋电子学中观察到了磁阻效应,包括巨磁阻和隧穿磁阻。在理解有机自旋电子学中自旋相关的输运现象,如自旋注入或隧穿、操控和检测方面取得了重大进展。然而,迄今为止,仍缺乏对制备用于商业应用的有机自旋器件有效的材料。在本报告中,我们介绍了有机自旋器件制造和评估的基础知识,并回顾了一些使用分子间隔层的有机自旋阀的显著应用。还讨论了阻碍有机自旋器件性能进一步提高的当前瓶颈。本报告提出了一些设计在室温下工作的有机自旋器件的研究思路。