Room-Temperature Organic Spintronic Devices with Wide Range Magnetocurrent Tuning and Multifunctionality via Electro-Optical Compensation Strategy

IF 26.8 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY Advanced Materials Pub Date : 2025-02-03 DOI:10.1002/adma.202417995
Ke Meng, Min Li, Lidan Guo, Rui Zhang, Ankang Guo, Mingzhe Liu, Xianrong Gu, Yang Qin, Tingting Yang, Xueli Yang, Shunhua Hu, Cheng Zhang, Ruiheng Zheng, Meng Wu, Xiangnan Sun
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Abstract

In spintronics, devices exhibiting large, widely tunable magnetocurrent (MC) values at room temperature are particularly appealing due to their potential in advanced sensing, data storage, and multifunctional technologies. Organic semiconductors (OSCs), with their rich and unique spin-dependent and (opto-)electronic properties, hold significant promise for realizing such devices. However, current organic devices are constrained by limited design strategies, yielding MC values typically confined to tens of percent, thereby restricting their potential for multifunctional applications. Here, this study introduces an electro-optical compensation strategy to modulate MC values, which synergistically integrates and manages the interplays among carrier transport, spin-dependent reactions, and photogenerated carrier dynamics in OSCs-based devices. This approach achieves ultrahigh room-temperature MC values of +13 200% and −10 600% in the designed devices, with continuous and precise tunability over this range—marking a breakthrough in organic spintronic devices. Building on this achievement, by integrating multiple controllable parameters—light, bias, magnetic field, and mechanical flexibility—into a single device, a flexible, room-temperature, multifunctional device is activated, functioning as the high-sensitivity magnetic field sensor, composite field sensor, magnetic current inverter, and magnetically-controlled artificial synaptic, etc. These findings open an avenue for designing high-performance, multifunctional devices with broad implications for future spintronic-related technologies.

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基于电光补偿策略的大范围磁流调谐和多功能室温有机自旋电子器件
在自旋电子学中,由于其在先进传感、数据存储和多功能技术方面的潜力,在室温下表现出大的、广泛可调的磁流(MC)值的器件特别具有吸引力。有机半导体(OSCs)具有丰富而独特的自旋依赖和(光电)电子特性,在实现此类器件方面具有重要的前景。然而,目前的有机器件受限于有限的设计策略,产生的MC值通常限制在10%,从而限制了其多功能应用的潜力。在此,本研究引入了一种电光补偿策略来调制MC值,该策略协同整合和管理基于osc的器件中载流子输运、自旋依赖反应和光生载流子动力学之间的相互作用。该方法在设计的器件中实现了+13 200%和- 10 600%的超高室温MC值,并且在此范围内具有连续和精确的可调性-标志着有机自旋电子器件的突破。在此基础上,通过将光、偏置、磁场和机械柔性等多个可控参数集成到一个器件中,激活了一个柔性的、室温的多功能器件,可作为高灵敏度磁场传感器、复合磁场传感器、磁电流逆变器和磁控人工突触等。这些发现为设计高性能、多功能的器件开辟了一条道路,对未来的自旋电子相关技术具有广泛的意义。
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来源期刊
Advanced Materials
Advanced Materials 工程技术-材料科学:综合
CiteScore
43.00
自引率
4.10%
发文量
2182
审稿时长
2 months
期刊介绍: Advanced Materials, one of the world's most prestigious journals and the foundation of the Advanced portfolio, is the home of choice for best-in-class materials science for more than 30 years. Following this fast-growing and interdisciplinary field, we are considering and publishing the most important discoveries on any and all materials from materials scientists, chemists, physicists, engineers as well as health and life scientists and bringing you the latest results and trends in modern materials-related research every week.
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