Diversification of Metallic Molecules through Derivatization Chemistry of Au25 Nanoclusters

被引:35
|
作者
Cao, Yitao [1 ]
Chen, Tiankai [1 ]
Yao, Qiaofeng [1 ]
Xie, Jianping [1 ]
机构
[1] Natl Univ Singapore, Dept Chem & Biomol Engn, Singapore 117585, Singapore
关键词
PROTECTED GOLD CLUSTERS; CRYSTAL-STRUCTURE; GROWTH; NANOPARTICLES; COMPLEXES; ORIGIN;
D O I
10.1021/acs.accounts.1c00481
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
CONSPECTUS: Derivatization is the fine chemistry that can produce chemical compounds from similar precursors and has been widely used in the field of organic synthesis to achieve diversification of molecular properties and functionalities. Ligand-protected metal nanoclusters (NCs) are metallic molecules with a definite molecular formula, well-defined molecular structure, and molecular-like physical and chemical properties. Unlike organic compounds, which have almost infinite species, until now only hundreds of metal NC species have been discovered, and only a few of them have been structurally resolved. Therefore, the diversification of NC species and functions is highly desirable in nanoscience and nanochemistry. As an efficient approach for generating a library of compounds from a given precursor, derivatization chemistry is not only applicable in producing new organic compounds but also a promising strategy for generating new metal NC species with intriguing properties and functions. The key to the derivatization of metal NCs is to design an efficient derivatization reaction suitable for metal NCs and spontaneously realize the customization of this special macromolecule (metallic molecule) at the atomic and molecular level. In this Account, we use the flagship thiolate-protected NC Au25SR18 (SR denotes a thiolate ligand) as a model to illustrate the derivatization chemistry of metal NCs. In the past 3 years we have developed various derivatization reactions of Au25SR18, including isomerization, redox, ligand addition, alloying, and self-assembly reactions. We discuss the mechanisms that govern these reactions to realize precise customization of the NC structure, size, surface, composition, and interactions. It is particularly noteworthy that advanced techniques such as real-time electrospray ionization mass spectrometry and NMR spectroscopy enable us to have an atomic- and molecular-level understanding of the reaction mechanisms, which will further promote our efforts to design derivatization reactions for metal NCs. Through these delicate derivatization reactions, we can produce Au25SR18 derivatives with new physical, chemical, and biological properties, including electronic structures, photoluminescence, surface reactivity, and antimicrobial properties. Finally, we provide our perspectives on the opportunities and challenges of metal NC derivatization. The derivatization chemistry of metal NCs can not only diversify the properties and functions of metal NCs but also help us understand the structure-property relationship and design principles of metal nanomaterials, which will help advance the research frontier of nanoscience toward atomic precision.
引用
收藏
页码:4142 / 4153
页数:12
相关论文
共 50 条
  • [31] Metal Exchange Method Using Au25 Nanoclusters as Templates for Alloy Nanoclusters with Atomic Precision
    Wang, Shuxin
    Song, Yongbo
    Jin, Shan
    Liu, Xia
    Zhang, Jun
    Pei, Yong
    Meng, Xiangming
    Chen, Man
    Li, Peng
    Zhu, Manzhou
    JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2015, 137 (12) : 4018 - 4021
  • [32] pH-Induced transformation of ligated Au25 to brighter Au23 nanoclusters
    Waszkielewicz, Magdalena
    Olesiak-Banska, Joanna
    Comby-Zerbino, Clothilde
    Bertorelle, Franck
    Dagany, Xavier
    Bansal, Ashu K.
    Sajjad, Muhammad T.
    Samuel, Ifor D. W.
    Sanader, Zeljka
    Rozycka, Miroslawa
    Wojtas, Magdalena
    Matczyszyn, Katarzyna
    Bonacic-Koutecky, Vlasta
    Antoine, Rodolphe
    Ozyhar, Andrzej
    Samoc, Marek
    NANOSCALE, 2018, 10 (24) : 11335 - 11341
  • [33] Electrocatalytic Activities of Au24 and Au25 Nanoclusters for Carbon Dioxide Reduction Reaction
    Liu Kai-Fan
    Li Zong-Jun
    Chen Wei
    CHINESE JOURNAL OF ANALYTICAL CHEMISTRY, 2022, 50 (04) : 593 - 601
  • [34] Tailoring the Electronic and Catalytic Properties of Au25 Nanoclusters via Ligand Engineering
    Li, Gao
    Abroshan, Hadi
    Liu, Chong
    Zhuo, Shuo
    Li, Zhimin
    Xie, Yan
    Kim, Hyung J.
    Ros, Nathaniel L.
    Jin, Rongchao
    ACS NANO, 2016, 10 (08) : 7998 - 8005
  • [35] Charge State Tuning and Photochemical Stability of Au25(SR)18 Nanoclusters
    de Jong, Johanna A.
    Workentin, Mark S.
    Hesari, Mahdi
    CHEMPHOTOCHEM, 2025, 9 (03):
  • [36] Au25 Nanoclusters Exhibit Superhigh Catalytic Activity in Electrochemical Detection of As(III)
    Xiao, Xiang-Yu
    Song, Zong-Yin
    Li, Pei-Hua
    Chen, Shi-Hua
    Li, Li-Na
    Yang, Meng
    Lin, Chu-Hong
    Huang, Xing-Jiu
    ANALYTICAL CHEMISTRY, 2021, 93 (41) : 14014 - 14023
  • [37] Ligand-exchange synthesis of selenophenolate-capped Au25 nanoclusters
    Meng, Xiangming
    Xu, Qian
    Wang, Shuxin
    Zhu, Manzhou
    NANOSCALE, 2012, 4 (14) : 4161 - 4165
  • [38] Observation of Core Phonon in Electron-Phonon Coupling in Au25 Nanoclusters
    Liu, Zhongyu
    Li, Yingwei
    Shin, Wonyong
    Jin, Rongchao
    JOURNAL OF PHYSICAL CHEMISTRY LETTERS, 2021, 12 (06): : 1690 - 1695
  • [39] Insights into the effect of surface ligands on the optical properties of thiolated Au25 nanoclusters
    Yuan, Xun
    Goswami, Nirmal
    Chen, Weiliang
    Yao, Qiaofeng
    Xie, Jianping
    CHEMICAL COMMUNICATIONS, 2016, 52 (30) : 5234 - 5237
  • [40] Influence of ligands on the optical properties of rod-shaped Au25 nanoclusters
    Zuo, Zewen
    Hu, Kuo-Juei
    Lu, Siqi
    Hu, Shengyong
    Tang, Sichen
    Zhang, Yongxin
    Zhao, Zixiang
    Zheng, Dong
    Song, Fengqi
    NANOSCALE, 2023, 15 (36) : 15043 - 15049