Sim Ying, Leon Felix, Hum Gavin, Phang Si Jia Isabel, Ong How Chee, Ganguly Rakesh, Díaz Jesús, Clegg Jack K, García Felipe
Division of Chemistry and Biological Chemistry. School of Physical and Mathematical Sciences, Nanyang Technological University, 21 Nanyang Link, Singapore, 637371, Singapore.
Shiv Nadar University, NH-91, Tehsil Dadri, Gautam Buddha Nagar, Uttar Pradesh, 201314, India.
Commun Chem. 2022 May 5;5(1):59. doi: 10.1038/s42004-022-00673-9.
Inorganic macrocycles remain challenging synthetic targets due to the limited number of strategies reported for their syntheses. Among these species, large fully inorganic cyclodiphosphazane macrocycles have been experimentally and theoretically highlighted as promising candidates for supramolecular chemistry. In contrast, their hybrid organic-inorganic counterparts are lagging behind due to the lack of synthetic routes capable of controlling the size and topological arrangement (i.e., folded vs unfolded) of the target macrocycle, rendering the synthesis of differently sized macrocycles a tedious screening process. Herein, we report-as a proof-of-concept-the combination of pre-arranged building blocks and a two-step synthetic route to rationally enable access a large unfolded tetrameric macrocycle, which is not accessible via conventional synthetic strategies. The obtained macrocycle hybrid cyclodiphosphazane macrocycle, cis-μ-P(μ-NBu)][μ-P(μ-NBu)] (4), displays an unfolded open-face cavity area of 110.1 Å. Preliminary theoretical host-guest studies with the dication [MeNCH] suggest compound 4 as a viable candidate for the synthesis of hybrid proto-rotaxanes species based on phosphazane building blocks.
由于报道的无机大环化合物合成策略有限,其合成仍然是具有挑战性的目标。在这些化合物中,大型全无机环二磷氮烷大环化合物在实验和理论上都被视为超分子化学的有前途的候选物。相比之下,它们的有机 - 无机杂化对应物由于缺乏能够控制目标大环化合物大小和拓扑排列(即折叠与未折叠)的合成路线而落后,这使得合成不同大小的大环化合物成为一个繁琐的筛选过程。在此,我们作为概念验证报告了预先排列的构建块与两步合成路线的结合,以合理地获得一个大型未折叠的四聚体大环化合物,这是通过传统合成策略无法实现的。所得到的大环化合物——杂化环二磷氮烷大环化合物,顺式 - [μ - P(μ - NBu)](μ - p - OCHC(O)O)][μ - P(μ - NBu)] (4),展示了一个110.1 Å的未折叠开口腔面积。对双阳离子[MeNCH]的初步理论主客体研究表明,化合物4是基于磷氮烷构建块合成杂化原轮烷物种的可行候选物。