Literature DB >> 30179457

Controlling Supramolecular Chirality in Multicomponent Self-Assembled Systems.

Pengyao Xing1, Yanli Zhao1,2.   

Abstract

Chirality exists as a ubiquitous phenomenon in nature, from molecular level l-amino acids, d-sugar, secondary structures of proteins, DNA, RNA, and nanoscale helices to macroscopic conch and even galaxy. The aggregation of molecular building blocks with or without chiral centers might bring about asymmetric spatial stacking, which further results in the appearance of nonsymmetry in extended scales like helical nanofibers. This phenomenon, known as supramolecular chirality, is an important branch of supramolecular and self-assembly chemistry, which relates intimately with biomimetics, asymmetric catalysis, and designing chiroptic advanced materials. One of the important research focuses among supramolecular chirality is about rational manipulation of chirality amplification and handedness, presenting a profound influence on the performance of resulting soft materials such as circularly polarized luminescence and cell adhesion on hydrogels. The control over supramolecular chirality normally relies on two factors, i.e., thermodynamic and kinetic variables dependent on molecular structural parameters and environmental contributions, respectively. Supramolecular chirality in two or more component-based systems places an emphasis on thermodynamic control as it occurs from either integrated coassembly or separated self-sorting, which is more sophisticated than that of single component systems. Thus, the study on supramolecular chirality in multicomponent systems could mimic complicated biosystems, allowing for better understanding about the origin of natural chirality and extended applications as biomimetics. To date, the exploration of supramolecular chirality in multicomponent systems is restricted on both fundamental and application aspects when compared to more matured single component systems. Over the past few years, we have carried out systematic studies on several systems expressing supramolecular chirality from chiral amplification or symmetry breaking. We emphasized more the thermodynamic control by introducing a second component to form noncovalent bonding like hydrogen bonding or coordination interactions. In this Account, we would specifically discuss rational manipulation of the occurrence, transfer, and inversion of supramolecular chirality by taking several of the latest representative examples. In the multicomponent systems, in addition to the building blocks with chiral centers, the second or third components could be structural analogues and achiral small molecules such as bipyridines, melamine, metal ions, inorganic nanomaterials, and even solvents. These second or third components are able to incorporate during the aggregation to form coassembly via noncovalent bonds, influencing spatial arrangements of building blocks within various dimensions from vesicles and nanofibers to organic/inorganic hybrids. Other than chirality, morphology, stimulus responsiveness, and properties could also be well tailored by controlling interactions between different components.

Entities:  

Year:  2018        PMID: 30179457     DOI: 10.1021/acs.accounts.8b00312

Source DB:  PubMed          Journal:  Acc Chem Res        ISSN: 0001-4842            Impact factor:   22.384


  16 in total

1.  Facile Fabrication of Hierarchically Porous Boronic Acid Group-Functionalized Monoliths With Optical Activity for Recognizing Glucose With Different Conformation.

Authors:  Yan Wang; Luwei Zhang; Yu-I Hsu; Taka-Aki Asoh; Hiroshi Uyama
Journal:  Front Chem       Date:  2022-06-08       Impact factor: 5.545

2.  Use of Electrospun Phenylalanine/Poly-ε-Caprolactone Chiral Hybrid Scaffolds to Promote Endothelial Remodeling.

Authors:  Benlin Sun; Lei Hou; Binbin Sun; Yu Han; Yunqing Zou; Juexin Huang; Yanan Zhang; Chuanliang Feng; Xiaoqiu Dou; Feng Xu
Journal:  Front Bioeng Biotechnol       Date:  2021-11-25

3.  Controlling supramolecular filament chirality of hydrogel by co-assembly of enantiomeric aromatic peptides.

Authors:  Xuejiao Yang; Honglei Lu; Yinghua Tao; Hongyue Zhang; Huaimin Wang
Journal:  J Nanobiotechnology       Date:  2022-02-10       Impact factor: 10.435

4.  Dynamic Control of a Multistate Chiral Supramolecular Polymer in Water.

Authors:  Fan Xu; Stefano Crespi; Gianni Pacella; Youxin Fu; Marc C A Stuart; Qi Zhang; Giuseppe Portale; Ben L Feringa
Journal:  J Am Chem Soc       Date:  2022-03-27       Impact factor: 15.419

5.  Chiral molecular nanosilicas.

Authors:  Zhaohui Zong; Aiyou Hao; Pengyao Xing; Yanli Zhao
Journal:  Chem Sci       Date:  2022-03-14       Impact factor: 9.825

6.  Lanthanide MOFs for inducing molecular chirality of achiral stilbazolium with strong circularly polarized luminescence and efficient energy transfer for color tuning.

Authors:  Min Zeng; Ang Ren; Wubin Wu; Yongsheng Zhao; Chuanlang Zhan; Jiannian Yao
Journal:  Chem Sci       Date:  2020-08-04       Impact factor: 9.825

Review 7.  Carbocycle-Based Organogelators: Influence of Chirality and Structural Features on Their Supramolecular Arrangements and Properties.

Authors:  Rosa M Ortuño
Journal:  Gels       Date:  2021-05-01

8.  Solvent-Driven Chirality Switching of a Pillar[4]arene[1]quinone Having a Chiral Amine-Substituted Quinone Subunit.

Authors:  Chunhong Liu; Zhipeng Yu; Jiabin Yao; Jiecheng Ji; Ting Zhao; Wanhua Wu; Cheng Yang
Journal:  Front Chem       Date:  2021-07-07       Impact factor: 5.221

Review 9.  Supramolecular Chirality in Azobenzene-Containing Polymer System: Traditional Postpolymerization Self-Assembly Versus In Situ Supramolecular Self-Assembly Strategy.

Authors:  Xiaoxiao Cheng; Tengfei Miao; Yilin Qian; Zhengbiao Zhang; Wei Zhang; Xiulin Zhu
Journal:  Int J Mol Sci       Date:  2020-08-27       Impact factor: 5.923

10.  Solvent polarity driven helicity inversion and circularly polarized luminescence in chiral aggregation induced emission fluorophores.

Authors:  Qiang Ye; Feng Zheng; Enqi Zhang; Hari Krishna Bisoyi; Shuyuan Zheng; Dandan Zhu; Qinghua Lu; Hailiang Zhang; Quan Li
Journal:  Chem Sci       Date:  2020-08-17       Impact factor: 9.825

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