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在热力学控制下编程异金属4f-4f'螺旋配合物:循环完成。

Programming heterometallic 4f-4f' helicates under thermodynamic control: the circle is complete.

作者信息

Egger Charlotte, Guénée Laure, Deorukhkar Neel, Piguet Claude

机构信息

Department of Inorganic and Analytical Chemistry, University of Geneva, 30 quai E. Ansermet, CH-1211 Geneva 4, Switzerland.

Laboratory of Crystallography, University of Geneva, 24 quai E. Ansermet, CH-1211 Geneva 4, Switzerland.

出版信息

Dalton Trans. 2024 Mar 26;53(13):6050-6062. doi: 10.1039/d4dt00610k.

Abstract

Three non-symmetrical segmental ligand strands L4 can be wrapped around a linear sequence of one Zn and two trivalent lanthanide cations Ln to give quantitatively directional [ZnLn(L4)] triple-stranded helicates in the solid state and in solution. NMR speciations in CDCN show negligible decomplexation at a millimolar concentration and the latter helicate can be thus safely considered as a preorganized -symmetrical -[(L4Zn)(Ln)(Ln)] platform in which the thermodynamic properties of (i) lanthanide permutation between the central N and the terminal NO binding sites and (ii) exchange processes between homo- and heterolanthanide helicates are easy to access (Ln = La, Eu, Lu). Deviations from statistical distributions could be programmed by exploiting specific site recognition and intermetallic pair interactions. Considering the challenging La: Eu ionic pair, for which the sizes of the two cations differ by only 8%, a remarkable excess (70%) of the heterolanthanide is produced, together with a preference for the formation of the isomer where the largest lanthanum cation lies in the central N site ([(La)(Eu)] : [(Eu)(La)] = 9 : 1). This rare design and its rational programming pave the way for the preparation of directional light-converters and/or molecular Q-bits at the (supra)molecular level.

摘要

三条非对称的分段配体链L4可以缠绕在一个由一个锌离子和两个三价镧系阳离子Ln组成的线性序列周围,从而在固态和溶液中定量地形成定向的[ZnLn(L4)]三链螺旋体。在CDCN中的核磁共振物种分析表明,在毫摩尔浓度下解络作用可以忽略不计,因此后者的螺旋体可以被安全地视为一个预组织的对称-[(L4Zn)(Ln)(Ln)]平台,在该平台中,(i)中心N和末端NO结合位点之间镧系元素的置换以及(ii)同镧系和异镧系螺旋体之间的交换过程的热力学性质很容易获得(Ln = La、Eu、Lu)。通过利用特定的位点识别和金属间对相互作用,可以对偏离统计分布的情况进行编程。考虑到具有挑战性的La:Eu离子对,两种阳离子的尺寸仅相差8%,会产生显著过量(70%)的异镧系元素,同时更倾向于形成最大的镧阳离子位于中心N位点的异构体([(La)(Eu)] : [(Eu)(La)] = 9 : 1)。这种独特的设计及其合理的编程为在(超)分子水平上制备定向光转换器和/或分子量子比特铺平了道路。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6084/10964198/1a905d10e7bb/d4dt00610k-s1.jpg

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