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通过受控功能化来调整碳纳米管-镧系元素杂化分子配合物的磁性。

Tuning Magnetic Properties of a Carbon Nanotube-Lanthanide Hybrid Molecular Complex through Controlled Functionalization.

机构信息

Nano-Scale Transport Physics Laboratory, School of Physics, University of the Witwatersrand, Johannesburg Wits 2050, South Africa.

DSI-NRF Centre of Excellence in Strong Materials and School of Physics, University of the Witwatersrand, Johannesburg Wits 2050, South Africa.

出版信息

Molecules. 2021 Jan 22;26(3):563. doi: 10.3390/molecules26030563.

Abstract

Molecular magnets attached to carbon nanotubes (CNT) are being studied as potential candidates for developing spintronic and quantum technologies. However, the functionalization routes used to develop these hybrid systems can drastically affect their respective physiochemical properties. Due to the complexity of this systems, little work has been directed at establishing the correlation between the degree of functionalization and the magnetic character. Here, we demonstrate the chemical functionalization degree associated with molecular magnet loading can be utilized for controlled tuning the magnetic properties of a CNT-lanthanide hybrid complex. CNT functionalization degree was evaluated by interpreting minor Raman phonon modes in relation to the controlled reaction conditions. These findings were exploited in attaching a rare-earth-based molecular magnet (Gd-DTPA) to the CNTs. Inductively coupled plasma mass spectrometry, time-of-flight secondary ion mass spectrometry and super conducting quantum interference device (SQUID) measurements were used to elucidate the variation of magnetic character across the samples. This controlled Gd-DTPA loading on the CNT surface has led to a significant change in the nanotube intrinsic diamagnetism, showing antiferromagnetic coupling with increase in the Weiss temperature with respect to increased loading. This indicates that synthesis of a highly correlated spin system for developing novel spintronic technologies can be realized through a carbon-based hybrid material.

摘要

将分子磁体附着到碳纳米管 (CNT) 上,正在被研究作为开发自旋电子学和量子技术的潜在候选物。然而,用于开发这些混合系统的功能化途径可能会极大地影响它们各自的物理化学性质。由于这些系统的复杂性,很少有工作致力于建立功能化程度与磁性之间的相关性。在这里,我们证明了与分子磁体负载相关的化学功能化程度可用于控制调整 CNT-镧系元素混合复合物的磁性。通过解释与受控反应条件有关的较小拉曼声子模式来评估 CNT 的功能化程度。这些发现被用于将基于稀土的分子磁体 (Gd-DTPA) 附着到 CNT 上。电感耦合等离子体质谱法、飞行时间二次离子质谱法和超导量子干涉装置 (SQUID) 测量被用于阐明样品之间磁性特征的变化。这种对 CNT 表面的受控 Gd-DTPA 负载导致了纳米管固有抗磁性的显著变化,表现出随着负载增加而增加的 Weiss 温度的反铁磁耦合。这表明可以通过碳基混合材料来实现开发新型自旋电子技术的高关联自旋系统的合成。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5223/7866014/5319e1354a54/molecules-26-00563-g001.jpg

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