Chauhan Vikas, Khanna Shiv N
Department of Physics , Virginia Commonwealth University , Richmond , Virginia 23284-2000 , United States.
J Phys Chem A. 2018 Jul 19;122(28):6014-6020. doi: 10.1021/acs.jpca.8b03355. Epub 2018 Jul 6.
It is shown that multiple ionization energies of metal-chalcogenide clusters can be substantially reduced by adding ligands that form charge transfer complexes. We demonstrate this intriguing phenomenon by considering metal-chalcogenide clusters including cases where a cluster has a filled electronic shell with a large gap between the occupied and unoccupied states reminiscent of stable species. The studies include a CoSe core ligated with tri-ethylphosphine (PEt) ligands forming a stable CoSe(PEt) species. All of the ligated clusters have a first ionization energy in the range for alkali atoms and multiple ionization energies that are considerably lower than those for the non-ligated clusters. The change in electronic behavior upon ligation can be associated with a shift in the electronic spectrum via a crystal field like effect due to attaching ligands that form charge transfer complexes. We also show that metal-chalcogenide species can be programmed by proper ligand replacement to promote dimerization by first forming the CoSe(PEt) (CO) ( n = 0-6) clusters where the CO ligands could be replaced by diisocyanide (CNCHNC) ligands. The diisocyanide ligand acts as a rigid linker between the metallic cores, enabling the formation of a CoSe(PEt)(CNCHNC)CoSe(PEt) superatomic molecule (SM), and we examine the electronic and magnetic properties of the recently synthesized SM via studies on an analogous SM with smaller ligands.
结果表明,通过添加形成电荷转移络合物的配体,可以大幅降低金属硫族化物簇的多重电离能。我们通过考虑金属硫族化物簇来证明这一有趣现象,包括簇具有充满电子壳层且占据态和未占据态之间存在大间隙的情况,这让人联想到稳定物种。研究包括与三乙膦(PEt)配体连接形成稳定的CoSe(PEt)物种的CoSe核。所有连接的簇的第一电离能都在碱金属原子的范围内,并且多重电离能远低于未连接的簇。连接时电子行为的变化可通过形成电荷转移络合物的配体附着产生的类似晶体场效应与电子光谱的变化相关联。我们还表明,可以通过适当的配体置换对金属硫族化物物种进行编程,以促进二聚化,首先形成CoSe(PEt)(CO)(n = 0 - 6)簇,其中CO配体可被二异氰化物(CNCHNC)配体取代。二异氰化物配体充当金属核之间的刚性连接体,能够形成CoSe(PEt)(CNCHNC)CoSe(PEt)超原子分子(SM),并且我们通过对具有较小配体的类似SM的研究来考察最近合成的SM的电子和磁性性质。