Formation of a Pd16 Molecular Basket Architecture of Reduced Symmetry and Angular Deviation in a Fluorenone Scaffold to Govern the Host–Guest Chemistry of Pd6 Trifacial Tubes

IF 8.5 Q1 CHEMISTRY, MULTIDISCIPLINARY
Medha Aggarwal, Ranit Banerjee, Neal Hickey and Partha Sarathi Mukherjee*, 
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引用次数: 0

Abstract

The employment of flexible ligands with significant conformational freedom in coordination-driven self-assembly enables the formation of unique and intricate structures. In this study, the self-assembly of such a fluorenone-appended ligand (L1) with a sterically demanding acceptor, [Pd(tmed)(ONO2)2] (M1), generated a new and unique molecular basket architecture, (M1)16(L1)8 (B), featuring a large hollow cavity. B possesses an unusual twisted architecture of low symmetry, consisting of 16 Pd(II) centers arranged as four tetrahedra connected by eight flexible ligands, representing a structurally complex system reminiscent of biological architectures. Designing such entropically disfavored, large architectures of reduced symmetry is challenging but desirable, since they can act as ideal models to study complicated natural systems. The host–guest property of supramolecular hosts is governed by the confined cavities and noncovalent interactions, which are dictated by the angular disposition of ligand coordination sites. To explore this, the fluorenone scaffold was used to synthesize two other tetradentate ligands (L2 and L3) that differed in the spatial distributions of their coordination vectors. The self-assembly of these ligands with [Pd(en)(ONO2)2] (M2) resulted in the formation of water-soluble (M2)6(L1/L2/L3)3 trifacial tubes of different geometries with varying internal cavity dimensions. These angular variations further altered the orientation of the fluorenone carbonyl groups within the cavities, thereby modulating their guest binding abilities and highlighting the importance of tailoring supramolecular hosts for specific guest binding.

在芴酮支架中形成减少对称和角偏差的Pd16分子篮结构,以控制Pd6三面管的主客体化学
在配位驱动的自组装中使用具有显著构象自由度的柔性配体可以形成独特而复杂的结构。在本研究中,这种氟酮附加配体(L1)与具有空间要求的受体[Pd(tmed)(ONO2)2] (M1)的自组装产生了一种新的独特的分子篮结构(M1)16(L1)8 (B),具有大的空心腔。B具有不寻常的低对称性扭曲结构,由16个Pd(II)中心组成,排列成四个四面体,由八个柔性配体连接,代表了一个结构复杂的系统,让人想起生物结构。设计这种熵上不受欢迎的大型对称性降低架构是一项挑战,但也是可取的,因为它们可以作为研究复杂自然系统的理想模型。超分子宿主的主客体性质受限于腔体和非共价相互作用,而非共价相互作用是由配位位的角度配置决定的。为了探索这一点,氟酮支架被用来合成另外两个四齿配体(L2和L3),它们的配位向量的空间分布不同。这些配体与[Pd(en)(ONO2)2] (M2)的自组装形成了不同几何形状和不同内腔尺寸的水溶性(M2)6(L1/L2/L3)3三面管。这些角度变化进一步改变了空腔内芴酮羰基的取向,从而调节了它们的客体结合能力,并突出了为特定客体结合量身定制超分子宿主的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
9.10
自引率
0.00%
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审稿时长
10 weeks
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