| Literature DB >> 26567806 |
Jishi Chen1,2, Liren Liu3, Linhong Weng4, Yuejian Lin4, Lingwen Liao1, Chengming Wang3, Jinlong Yang3, Zhikun Wu1.
Abstract
Tiara-like thiolated group 10 transition metal (Ni, Pd, Pt) nanoclusters have attracted extensive interest due to their fundamental scientific significance and potential application in a number of fields. However, the properties (e.g. the absorption) evolution with the ring size's increase was not investigated so far to our best knowledge, due to the challenge of obtaining a series of nanocluster analogues. Herein, we successfully synthesized, isolated and identified a family of [Pd(SC2H4Ph)2]n nanoclusters (totally 17 novel clusters, n = 4-20). Their structures were determined to be tiara-like by single crystal X-ray crystallography together with theoretical calculation; their formation mechanism was proposed to be a substitution-polycondensation-ring-closure process based on experimental observations. All of these clusters are rather robust (anti-reductive and anti-oxidative) owing to their tiara-like structures with large HOMO-LUMO gaps. Finally, the optical and electrochemical evolution with the increase of ring size was investigated, and it is found that both optical and electrochemical gaps have a "turning point" at a size corresponding to n = 8 for [Pd(SR)2]n nanoclusters.Entities:
Year: 2015 PMID: 26567806 PMCID: PMC4644969 DOI: 10.1038/srep16628
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1PTLC photograph (a) and MALDI-TOF-MS spectra (b) of [Pd(SC2H4Ph)2]n (4 ≤ n ≤ 20).
Figure 2Optimized structure of [Pd(SC2H4Ph)2]n (carbon and hydrogen atoms were omitted for clarity).
Blue, Pd; yellow, S.
Figure 3Flow chart of the synthesis of [Pd(SC2H4Ph)2]n from the Pd(II) salt.
Figure 4UV/Vis absorption spectra and differential pulse voltammetry (DPV) potential of Pdn (n = 4 ~ 20) clusters.
(a) UV/Vis absorption spectra of Pdn (n = 4 ~ 20) clusters. (b) The UV/Vis absoption evolution of Pdn (n = 4 ~ 20) clusters. (c) The first oxidation (reduction) potential evolution of Pdn (n = 5 ~ 15) clusters. (d) The electrochemical and optic energy band gaps of Pdn (n = 4 ~ 15) clusters.