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等离子体纳米腔中单个分子的反卡莎发射

Anti-Kasha emissions of single molecules in a plasmonic nanocavity.

作者信息

Imada Hiroshi, Imai-Imada Miyabi, Ouyang Xingmei, Muranaka Atsuya, Kim Yousoo

机构信息

Surface and Interface Science Laboratory, RIKEN, 2-1 Hirosawa, Wako, Saitama 351-0198, Japan.

Molecular Structure Characterization Unit, RIKEN Center for Sustainable Resource Science, Wako, Saitama 351-0198, Japan.

出版信息

J Chem Phys. 2022 Sep 14;157(10):104302. doi: 10.1063/5.0102087.

Abstract

Kasha's rule generally holds true for solid-state molecular systems, where the rates of internal conversion and vibrational relaxation are sufficiently higher than the luminescence rate. In contrast, in systems where plasmons and matter interact strongly, the luminescence rate is significantly enhanced, leading to the emergence of luminescence that does not obey Kasha's rule. In this work, we investigate the anti-Kasha emissions of single molecules, free-base and magnesium naphthalocyanine (HNc and MgNc), in a plasmonic nanocavity formed between the tip of a scanning tunneling microscope (STM) and metal substrate. A narrow-line tunable laser was employed to precisely reveal the excited-state levels of a single molecule located under the tip and to selectively excite it into a specific excited state, followed by obtaining a STM-photoluminescence (STM-PL) spectrum to reveal the energy relaxation from the state. The excitation to higher-lying states of HNc caused various changes in the emission spectrum, such as broadening and the appearance of new peaks, implying the breakdown of Kasha's rule. These observations indicate emissions from the vibrationally excited states in the first singlet excited state (S) and second singlet excited state (S), as well as internal conversion from S to S. Moreover, we obtained direct evidence of electronic and vibronic transitions from the vibrationally excited states, from the STM-PL measurements of MgNc. The results obtained herein shed light on the energy dynamics of molecular systems under a plasmonic field and highlight the possibility of obtaining various energy-converting functions using anti-Kasha processes.

摘要

卡沙规则通常适用于固态分子系统,在该系统中,内转换和振动弛豫速率远高于发光速率。相比之下,在等离子体与物质强烈相互作用的系统中,发光速率会显著提高,导致出现不符合卡沙规则的发光现象。在这项工作中,我们研究了在扫描隧道显微镜(STM)尖端与金属衬底之间形成的等离子体纳米腔中,单分子、游离碱和萘酞菁镁(HNc和MgNc)的反卡沙发射。使用窄线可调谐激光器精确揭示位于尖端下方的单个分子的激发态能级,并将其选择性激发到特定激发态,随后获得STM光致发光(STM-PL)光谱以揭示该状态下的能量弛豫。对HNc较高激发态的激发导致发射光谱发生各种变化,如展宽和新峰出现,这意味着卡沙规则失效。这些观察结果表明,在第一单线态激发态(S)和第二单线态激发态(S)中,振动激发态会发生发射,以及从S到S的内转换。此外,通过对MgNc的STM-PL测量,我们获得了振动激发态电子和振转跃迁的直接证据。本文获得的结果揭示了等离子体场下分子系统的能量动力学,并突出了利用反卡沙过程获得各种能量转换功能的可能性。

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