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胶体金属纳米粒子中从超原子到等离子体介导的磁圆二色性的演变跨越了非金属到金属的范围。

The Evolution from Superatom- to Plasmon-Mediated Magnetic Circular Dichroism in Colloidal Metal Nanoparticles Spanning the Nonmetallic to Metallic Limits.

机构信息

Department of Chemistry, Pennsylvania State University, University Park, Pennsylvania 16802, United States.

Department of Chemistry, Bucknell University, Lewisburg, Pennsylvania 17837, United States.

出版信息

J Phys Chem Lett. 2023 Jun 8;14(22):5210-5215. doi: 10.1021/acs.jpclett.3c01170. Epub 2023 May 31.

Abstract

The magneto-optical absorption properties of colloidal metal nanoclusters spanning nonmetallic to metallic regimes were examined using variable-temperature variable-field magnetic circular dichroism (VTVH-MCD) spectroscopy. Charge neutral Au(SCH) exhibited MCD spectra dominated by Faraday C-terms, consistent with expectations for a nonmetallic paramagnetic nanocluster. This response is reconciled by the open-shell superatom configuration of Au(SCH). Metallic and plasmon-supporting Au(pMBA) exhibited temperature-independent VTVH-MCD spectra dominated by Faraday A-terms. Au(SCH), which is intermediate to the metallic and nonmetallic limits, showed the most complex VTVH-MCD response of the three nanoclusters, consisting of 19 distinguishable peaks spanning the visible and near-infrared (3.0-1.4 eV). Variable-temperature analysis suggested that none of these transitions originated from plasmon excitation. However, evidence for both paramagnetic and mixed (i.e., nondiscrete) transitions of Au(SCH) was observed. These results highlight the complexity of gold nanocluster electronic transitions that emerge as sizes approach metallic length scales. Nanoclusters in this regime may provide opportunities for tailoring the magneto-optical properties of colloidal nanostructures.

摘要

使用变温变场磁圆二色性(VTVH-MCD)光谱研究了跨越非金属到金属区域的胶体金属纳米团簇的磁光吸收特性。带电荷中性的 Au(SCH)表现出主要由法拉第 C 项主导的 MCD 谱,与非金属顺磁纳米团簇的预期一致。Au(SCH)的开壳超原子构型解释了这种响应。金属和支持等离子体的 Au(pMBA)表现出温度独立的 VTVH-MCD 谱,主要由法拉第 A 项主导。Au(SCH)处于金属和非金属极限之间,表现出三种纳米团簇中最复杂的 VTVH-MCD 响应,由跨越可见和近红外(3.0-1.4 eV)的 19 个可区分的峰组成。变温分析表明,这些跃迁都不是源于等离子体激发。然而,观察到 Au(SCH)的顺磁和混合(即非离散)跃迁的证据。这些结果突出了金纳米团簇电子跃迁的复杂性,因为它们的尺寸接近金属长度尺度。在这个区域的纳米团簇可能为调整胶体纳米结构的磁光特性提供机会。

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