The rational design of crystalline clusters with adjustable compositions and dimensions is highly sought after but quite challenging as it is important to understand their structural evolution processes and to systematically establish structure-property relationships. Herein, a family of organotin-based sulfidometalate supertetrahedral clusters has been prepared via mixed metal and organotin strategies at low temperatures (60-120 °C). By engineering the metal composition, we can effectively control the size of the clusters, which ranges from 8 to 35, accompanied by variable configurations: P1-[(RSn)MS], T3-[(RSn)InMS] (R = butyl-Bu and phenyl-Ph; M = Cd, Zn, and Mn), T4-[(BuSn)InCuS], truncated P2, viz. TP2-[(BuSn)InCuS], and even T5-[(BuSn)InZnCuS], all of which are the largest organometallic supertetrahedral clusters known to date. Of note, the arylstannane approach plays a critical role in regulating the peripheral ligands and further enriching geometric structures of the supertetrahedral clusters. This is demonstrated by the formation of tin-oxysulfide clusters, such as T3-[(RSn)SnOS] (R = Bu, Ph, and benzyl = Be) and its variants, truncated T3, viz., TT3-[(BuSn)SnOS] and augmented T3, viz., T3-[(BuSnS)SnOS]. Especially, two extraordinary truncated clusters break the tetrahedral symmetry observed in typical supertetrahedral clusters, further substantiating the advantages offered by the arylstannane approach in expanding cluster chemistry. These organometallic supertetrahedral clusters are highly soluble and stable in common solvents. Additionally, they have tunable third-order nonlinear optical behaviors by controlling the size, heterometallic combination, organic modification, and intercluster interaction.
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http://dx.doi.org/10.1021/jacs.3c14333 | DOI Listing |
Nano Lett
December 2024
School of Materials Science and Engineering, Peking University, Beijing 100871, China.
Going beyond the conventional design paradigm with atoms as building blocks, we propose the concept of cluster-assembled thermal rectifiers comprising metal chalcogenide supertetrahedral clusters. Different from the experimentally reported T and T, for the first time we assemble T-SnInSe clusters into a stable T framework without needing extra ions, based on which the thermal rectification (TR) effect is explored using machine-learning molecular dynamics and the mode-resolved phonon Boltzmann transport equation. The tetrahedron-shaped cluster assembly serves as a novel TR switch, where the open state shows an outstanding TR efficiency (∼40%) arising from the asymmetric lateral confinement due to not only the phonon particle behavior but also the phonon wave nature.
View Article and Find Full Text PDFFaraday Discuss
September 2024
Department of Chemistry and Biochemistry, University of California, San Diego, California 92093, USA.
Lithium-rich early transition metal oxides are the source of excess removeable lithium that affords high energy density to lithium-rich battery cathodes. They are also candidates for solid electrolytes in all-solid-state batteries. These highly ionic compounds are sparse on phase diagrams of thermodynamically stable oxides, but soft chemical routes offer an alternative to explore new alkali-rich crystal chemistries.
View Article and Find Full Text PDFDalton Trans
March 2024
State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, Fujian 350002, P.R. China.
A new layered metal sulfide, namely (CHN)(NH)HInSnS (1, CHN = -(2-aminoethyl) piperazine), has been solvothermally synthesized and characterized. Compound 1 crystallizes in the monoclinic space group 2/. Its structure features a two-dimensional layer of {InSnS} with the (4,4) topology net, which is formed by interlinking supertetrahedral T2 clusters as secondary building units.
View Article and Find Full Text PDFJ Am Chem Soc
March 2024
State Key Laboratory of Structural Chemistry, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou 350002, China.
The rational design of crystalline clusters with adjustable compositions and dimensions is highly sought after but quite challenging as it is important to understand their structural evolution processes and to systematically establish structure-property relationships. Herein, a family of organotin-based sulfidometalate supertetrahedral clusters has been prepared via mixed metal and organotin strategies at low temperatures (60-120 °C). By engineering the metal composition, we can effectively control the size of the clusters, which ranges from 8 to 35, accompanied by variable configurations: P1-[(RSn)MS], T3-[(RSn)InMS] (R = butyl-Bu and phenyl-Ph; M = Cd, Zn, and Mn), T4-[(BuSn)InCuS], truncated P2, viz.
View Article and Find Full Text PDFChem Commun (Camb)
March 2024
School of Chemical and Environmental Engineering, Pingdingshan University, Pingdingshan 467000, China.
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