Chai Yahong, Feng Feng, Li Qilong, Yu Chanchan, Feng Xueyan, Lu Pan, Yu Xiaolin, Ge Maofa, Wang Xiuyu, Yao Li
Beijing National Laboratory for Molecular Science , Institute of Chemistry, Chinese Academy of Sciences , CAS Research/Education Center for Excellence in Molecular Sciences, Zhongguancun North First Street 2 , Beijing 100190 , China.
University of Chinese Academy of Sciences , Beijing 100049 , China.
J Am Chem Soc. 2019 Feb 27;141(8):3366-3370. doi: 10.1021/jacs.8b12888. Epub 2019 Feb 13.
Exchange coupled bimagnetic core/shell nanoparticles are promising for emerging multiferroic and spintronic technologies compared with traditional, single-phase materials, as they deliver numerous appealing effects, such as large exchange bias, tailored coercivities, and tunable blocking temperatures. However, it remains a challenge to manipulate their magnetic properties via exchange coupling due to the lack of a straightforward method that enables the general preparation of desired composites. Here we report a robust and general one-pot approach for the synthesis of different kinds of bimagnetic core/shell nanostructures (BMCS NSs). The formation of highly crystalline and monodisperse BMCS NSs adopted a self-adaptive sequential growth, circumventing the employment of complex temperature control and elaborate seeded growth techniques. As a result of large lattice misfit, the presence of interfacial imperfections as an extra source of anisotropy induced diverse exchange coupling interactions in ferro-ferrimagnetic and ferro-antiferromagnetic systems, which had great effects on the improvement of the magnetic properties of BMCS NSs. We envision that this new strategy will open up exciting opportunities toward large-scalable production of such high-quality BMCS NSs, thereby greatly potentiating the prospective applications of nanomagnetic materials.
与传统的单相材料相比,交换耦合双磁核/壳纳米粒子在新兴的多铁性和自旋电子技术方面具有广阔前景,因为它们具有许多吸引人的效应,如大的交换偏置、可定制的矫顽力和可调的阻塞温度。然而,由于缺乏一种能够普遍制备所需复合材料的直接方法,通过交换耦合来操纵其磁性能仍然是一个挑战。在此,我们报道了一种用于合成不同种类双磁核/壳纳米结构(BMCS NSs)的强大且通用的一锅法。高度结晶且单分散的BMCS NSs的形成采用了自适应顺序生长,避免了使用复杂的温度控制和精细的种子生长技术。由于大的晶格失配,界面缺陷作为各向异性的额外来源,在铁磁 - 亚铁磁和铁磁 - 反铁磁系统中诱导了多种交换耦合相互作用,这对BMCS NSs磁性能的改善有很大影响。我们设想,这种新策略将为大规模生产此类高质量BMCS NSs带来令人兴奋的数据,从而极大地增强纳米磁性材料的潜在应用。