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超组装FeO纳米颗粒的手性磁光性质

Chiral Magneto-Optical Properties of Supra-Assembled FeO Nanoparticles.

作者信息

Maqbool Qysar, Jung Arum, Won Sojeong, Cho Jinhan, Son Jeong Gon, Yeom Bongjun

机构信息

Department of Chemical Engineering, Hanyang University, Seoul 04763, Republic of Korea.

Institute of Nano Science and Technology, Hanyang University, Seoul 04763, Republic of Korea.

出版信息

ACS Appl Mater Interfaces. 2021 Nov 17;13(45):54301-54307. doi: 10.1021/acsami.1c16954. Epub 2021 Nov 8.

Abstract

Research on the chiral magneto-optical properties of inorganic nanomaterials has enabled novel applications in advanced optical and electronic devices. However, the corresponding chiral magneto-optical responses have only been studied under strong magnetic fields of ≥1 T, which limits the wider application of these novel materials. In this paper, we report on the enhanced chiral magneto-optical activity of supra-assembled FeO magnetite nanoparticles in the visible range at weak magnetic fields of 1.5 mT. The spherical supra-assembled particles with a diameter of ∼90 nm prepared by solvothermal synthesis had single-crystal-like structures, which resulted from the oriented attachment of nanograins. They exhibited superparamagnetic behavior even with a relatively large supraparticle diameter that exceeded the size limit for superparamagnetism. This can be attributed to the small size of nanograins with a diameter of ∼12 nm that constitute the suprastructured particles. Magnetic circular dichroism (MCD) measurements at magnetic fields of 1.5 mT showed distinct chiral magneto-optical activity from charge transfer transitions of magnetite in the visible range. For the supraparticles with lower crystallinity, the MCD peaks in the 250-550 nm range assigned as the ligand-to-metal charge transfer (LMCT) and the inter-sublattice charge transfer (ISCT) show increased intensities in comparison to those with higher crystallinity samples. On the contrary, the higher crystallinity sample shows higher MCD intensities near 600-700 nm for the intervalence charge transfer (IVCT) transition. The differences in MCD responses can be attributed to the crystallinity determined by the reaction time, lattice distortion near grain boundaries of the constituent nanocrystals, and dipolar interactions in the supra-assembled structures.

摘要

无机纳米材料手性磁光性质的研究已在先进光学和电子器件中实现了新应用。然而,相应的手性磁光响应仅在≥1 T的强磁场下进行了研究,这限制了这些新型材料的更广泛应用。在本文中,我们报道了超组装FeO磁铁矿纳米颗粒在1.5 mT弱磁场下在可见光范围内增强的手性磁光活性。通过溶剂热合成制备的直径约为90 nm的球形超组装颗粒具有类似单晶的结构,这是由纳米晶粒的定向附着导致的。即使超颗粒直径相对较大,超过了超顺磁性的尺寸极限,它们仍表现出超顺磁性行为。这可归因于构成超结构颗粒的直径约为12 nm的纳米晶粒尺寸较小。在1.5 mT磁场下的磁圆二色性(MCD)测量表明,在可见光范围内,磁铁矿的电荷转移跃迁具有明显的手性磁光活性。对于结晶度较低的超颗粒,在250 - 550 nm范围内归属于配体到金属电荷转移(LMCT)和亚晶格间电荷转移(ISCT)的MCD峰与结晶度较高的样品相比强度增加。相反,对于价间电荷转移(IVCT)跃迁,结晶度较高的样品在600 - 700 nm附近显示出更高的MCD强度。MCD响应的差异可归因于由反应时间决定的结晶度、组成纳米晶体晶界附近的晶格畸变以及超组装结构中的偶极相互作用。

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