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通过层层配体工程抑制核振动提高了金纳米团簇的光致发光效率。

Suppression of kernel vibrations by layer-by-layer ligand engineering boosts photoluminescence efficiency of gold nanoclusters.

机构信息

State Key Laboratory of Integrated Optoelectronics, College of Electronic Science and Engineering, Jilin University, Changchun, 130012, P. R. China.

Innovation Center of Energy Material and Chemistry; College of Chemistry and Chemical Engineering, Inner Mongolia University, Hohhot, 010021, P. R. China.

出版信息

Nat Commun. 2023 Feb 7;14(1):658. doi: 10.1038/s41467-023-36387-2.

Abstract

The restriction of structural vibration has assumed great importance in attaining bright emission of luminescent metal nanoclusters (NCs), where tremendous efforts are devoted to manipulating the surface landscape yet remain challenges for modulation of the structural vibration of the metal kernel. Here, we report efficient suppression of kernel vibration achieving enhancement in emission intensity, by rigidifying the surface of metal NCs and propagating as-developed strains into the metal core. Specifically, a layer-by-layer triple-ligands surface engineering is deployed to allow the solution-phase Au NCs with strong metal core-dictated fluorescence, up to the high absolute quantum yields of 90.3 ± 3.5%. The as-rigidified surface imposed by synergistic supramolecular interactions greatly influences the low-frequency acoustic vibration of the metal kernel, resulting in a subtle change in vibration frequency but a reduction in amplitude of oscillation. This scenario therewith impedes the non-radiative relaxation of electron dynamics, rendering the Au NCs with strong emission. The presented study exemplifies the linkage between surface chemistry and core-state emission of metal NCs, and proposes a strategy for brighter emitting metal NCs by regulating their interior metal core-involved motion.

摘要

在实现发光金属纳米团簇(NCs)的明亮发射方面,结构振动的限制具有重要意义,人们投入了大量精力来操纵表面形貌,但对于调节金属核的结构振动仍然存在挑战。在这里,我们通过使金属 NCs 的表面变硬并将所开发的应变传播到金属核中来实现核振动的有效抑制,从而实现发射强度的增强。具体来说,采用层层三重配体表面工程,使具有强金属核主导荧光的溶液相 Au NCs 达到高达 90.3±3.5%的高绝对量子产率。协同超分子相互作用施加的刚性表面极大地影响了金属核的低频声振动,导致振动频率发生微小变化,但振荡幅度减小。这种情况阻碍了电子动力学的非辐射弛豫,使 Au NCs 具有强烈的发射。本研究例证了金属 NCs 的表面化学与核态发射之间的联系,并提出了通过调节其内部金属核相关运动来制备更亮发射金属 NCs 的策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/1b73/9902523/dd1a16de63f5/41467_2023_36387_Fig1_HTML.jpg

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