Li Nian-Ling, Wei Jianyu, Ran Xiao-Yun, Li Jing, Shen Li, Zhang Fawang, Dai Qi, Wang Wei, Li Kun, Wan Xian-Kai
Key Laboratory of Green Chemistry and Technology of Ministry of Education, College of Chemistry, Sichuan University, Chengdu, Sichuan, 610065, P.R. China.
School of Materials and New Energy, Ningxia University, Yinchuan, Ningxia, 750021, P.R. China.
Angew Chem Int Ed Engl. 2025 May;64(19):e202503036. doi: 10.1002/anie.202503036. Epub 2025 Mar 5.
High-nuclearity intermetallic nanoclusters are important for investigating the evolution of alloy materials from atoms to plasmonic alloy nanoparticles. However, the synthesis of large-size alloy nanoclusters (∼2 nm) is still challenging. In this work, an all-alkynyl protected trimetallic nanocluster of unprecedented size, AuAg Cu(PhCC)(BF) (x = 0-20) (1) (PhCC = phenylacetylene), has been synthesized and its total structure determined by single crystal X-ray diffraction (SCXRD). The metal core of 1 is rod-like in structure, with a length of 1.92 nm and a width of 1.45 nm. Cluster 1 contains a concentric metal kernel in the manner of shell-by-shell arrangements of AuAg@AuAg@(AgCu) protected by 68 PhCC ligands with 15 distinct alkynyl-metal binding configurations. Theoretic calculation reveals that 1 features a HOMO-LUMO energy gap of 0.29 eV. This suggests that 1 is situated at the boundary of the transition from a molecular to a metallic state. Remarkably, compared to other reported Au/Ag/Cu/Pd based nanoclusters, 1 exhibits significantly enhanced photothermal conversion capability. A substantial temperature rise of ∼51.5 °C within 5 min (λ = 660 nm, 0.5 W cm) and a record high photothermal conversion efficiency of 84.7% at 12 µM in N,N-dimethylformamide (DMF) were observed. Time-resolved transient absorption (TA) spectroscopy reveals that the electron-phonon coupling (τ) of excited 1 occurs on the femtosecond timescale, resulting in an ultrafast electronic relaxation process and excellent photothermal performance. Cluster 1, when employed as a photothermal material, shows promise in biothermal therapy, photothermal catalysis, and photothermal imaging.
高核金属间纳米团簇对于研究合金材料从原子到等离子体合金纳米颗粒的演化过程具有重要意义。然而,合成大尺寸(约2纳米)的合金纳米团簇仍然具有挑战性。在这项工作中,合成了一种尺寸前所未有的全炔基保护的三金属纳米团簇AuAgCu(PhC≡C)(BF)(x = 0 - 20)(1)(PhC≡C = 苯乙炔),并通过单晶X射线衍射(SCXRD)确定了其完整结构。1的金属核结构呈棒状,长度为1.92纳米,宽度为1.45纳米。团簇1包含一个同心金属核,其结构为AuAg@AuAg@(AgCu)逐层排列,由68个PhC≡C配体保护,具有15种不同的炔基金属结合构型。理论计算表明,1的HOMO-LUMO能隙为0.29电子伏特。这表明1处于从分子态到金属态转变的边界。值得注意的是,与其他报道的基于Au/Ag/Cu/Pd的纳米团簇相比,1表现出显著增强的光热转换能力。在5分钟内(λ = 660纳米,0.5瓦/平方厘米)观察到温度大幅升高约51.5℃,在N,N-二甲基甲酰胺(DMF)中12微摩尔浓度下的光热转换效率达到创纪录的84.7%。时间分辨瞬态吸收(TA)光谱表明,激发态1的电子-声子耦合(τ)发生在飞秒时间尺度上,导致超快的电子弛豫过程和优异的光热性能。团簇1作为光热材料,在生物热疗、光热催化和光热成像方面显示出应用前景。