2018The Journal of Physical Chemistry CRequires access

Time-Dependent Density Functional Theory Study on Higher Low-Lying Excited States of Au25(SR)18–

Masanori Ebina, Takeshi Iwasa, Yu Harabuchi, Tetsuya Taketsugu

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Abstract

Gold–thiolate clusters of [Au 25 (SR) 18 ] − are known to show multiple photoluminescence below and above 2.0 eV. Although recent theoretical studies have clarified the lowest energy emission from the S 1 state originating from the Au 13 core, the relaxation mechanism responsible for the higher-energy emissions remains unclear. Here, we present a theoretical study on the higher low-lying excited states of [Au 25 (SR) 18 ] − (R = Me, EtPh: methyl, phenylethyl) using time-dependent density functional theory computations to gain further insights. In particular, we focused on the S 7 state because there is a large energy gap between S 6 and S 7 at the ground state geometry. Two minimum structures that are found for the S 7 state of [Au 25 (SMe) 18 ] − show different natures, namely, the Au sp-intraband and d-sp interband transitions. The intraband excited state has an energy close to the lower excited state, whereas the interband excited state has a substantial energy gap. Considering the underestimation of the excitation energy, the calculated emission energy originating from the S 7 interband excited state is reasonably assigned to the highest-energy emission.

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What this paper is about

Gold–thiolate clusters of [Au 25 (SR) 18 ] − are known to show multiple photoluminescence below and above 2.0 eV. Although recent theoretical studies have clarified the lowest energy emission from the S 1 state originating from the Au 13 core, the relaxation mechanism responsible for the higher-energy emissions remains unclear. Here, we present a theoretical study on the higher low-lying excited states of [Au 25 (SR) 18 ] − (R = Me, EtPh: methyl, phenylethyl) using time-dependent density functional theory computations to gain further insights. In particular, we focused on the S 7 state because there is a large energy gap between S 6 and S 7 at the ground state geometry. Two minimum structures that are found for the S 7 state of [Au 25 (SMe) 18 ] − show different natures, namely, the Au sp-intraband and d-sp interband transitions. The intraband excited state has an energy close to the lower excited state, whereas the interband excited state has a substantial energy gap. Considering the underestimation of the excitation energy, the calculated emission energy originating from the S 7 interband excited state is reasonably assigned to the highest-energy emission.

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Available abstract

Gold–thiolate clusters of [Au 25 (SR) 18 ] − are known to show multiple photoluminescence below and above 2.0 eV. Although recent theoretical studies have clarified the lowest energy emission from the S 1 state originating from the Au 13 core, the relaxation mechanism responsible for the higher-energy emissions remains unclear. Here, we present a theoretical study on the higher low-lying excited states of [Au 25 (SR) 18 ] − (R = Me, EtPh: methyl, phenylethyl) using time-dependent density functional theory computations to gain further insights. In particular, we focused on the S 7 state because there is a large energy gap between S 6 and S 7 at the ground state geometry. Two minimum structures that are found for the S 7 state of [Au 25 (SMe) 18 ] − show different natures, namely, the Au sp-intraband and d-sp interband transitions. The intraband excited state has an energy close to the lower excited state, whereas the interband excited state has a substantial energy gap. Considering the underestimation of the excitation energy, the calculated emission energy originating from the S 7 interband excited state is reasonably assigned to the highest-energy emission.

Key concepts: Excited state, Atomic physics, Excitation, Density functional theory, Ground state, Relaxation (psychology), Energy (signal processing), Photoluminescence

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