详细信息

How Linear, Branched Racemic and Chiral Side Chains of π-Conjugated Segments Affect Asymmetric Living Crystallization-Driven Self-Assembly toward Controlled Preparation of Helical π-Conjugated Nanostructures  ( SCI-EXPANDED收录 EI收录)  

文献类型:期刊文献

英文题名:How Linear, Branched Racemic and Chiral Side Chains of π-Conjugated Segments Affect Asymmetric Living Crystallization-Driven Self-Assembly toward Controlled Preparation of Helical π-Conjugated Nanostructures

作者:Chen, Si[1,3];Song, Yunuo[1];Huang, Xiaoyu[1,3];Lu, Guolin[1];Feng, Chun[1,2]

机构:[1]Chinese Acad Sci, Univ Chinese Acad Sci, Shanghai Inst Organ Chem, State Key Lab Fluorine & Nitrogen Chem & Adv Mat, Shanghai 200032, Peoples R China;[2]East China Univ Sci & Technol, Sch Mat Sci & Engn, Shanghai Key Lab Adv Polymer Mat, Shanghai 200237, Peoples R China;[3]ShanghaiTech Univ, Sch Phys Sci & Technol, Shanghai 201210, Peoples R China

年份:2026

卷号:59

期号:8

起止页码:4919

外文期刊名:MACROMOLECULES

收录:;EI(收录号:20261820616104);WOS:【SCI-EXPANDED(收录号:WOS:001738040800001)】;

基金:The authors are thankful for financial support from the National Key Research & Development Program of China (2024YFA1210700), National Natural Science Foundation of China (U22A20131 and 52361165657), and Strategic Priority Research Program of the Chinese Academy of Sciences (XDB0590000). The authors thank Dr. Kun Cui for his assistance in TEM measurements and beamline BL16B1 at SSRF for providing the beam time.

语种:英文

外文关键词:Chain length - Chains - Dichroism - Methanol - Nanofibers - Nanostructures - Plants (botany) - Self assembly

摘要:Asymmetric living crystallization-driven self-assembly (CDSA) has recently emerged as a robust strategy toward the precision creation of pi-conjugated chiroptical nanostructures by taking advantage of the intrinsic optoelectronic properties and crystallinity of pi-conjugated blocks and the aggregation-induced chirality amplification effect. However, the field of asymmetric living CDSA remains in its infancy with a limited understanding of the relationship between the structure of pi-conjugated building blocks and asymmetric living CDSA behavior. In this contribution, we prepared a series of block copolymers consisting of core-forming oligo(p-phenylene ethynylene) pentamers and heptamers with linear pentyloxy, branched racemic 2-methylbutyloxy, and chiral (S)-2-methylbutyloxy side chains (denoted L-OPE n , rac-OPEn, and (S)-OPE n , n = 5 and 7, respectively) and corona-forming poly(N-isopropylacrylamide) (PNIPAM n , n = 36 and 40). We then investigated their CDSA behavior in detail. It was found that the increase of the OPE chain length and the decrease of the PNIPAM chain length could promote the crystallization of block copolymers. More importantly, the structure of the side chain significantly affected asymmetric CDSA behavior. In comparison with the linear side chains, branched racemic and chiral side chains can not only significantly enhance pi-pi stacking strength but also induce regularly twisted stacking of OPE units to give helical nanofibers with a preferred handedness. (S)-OPE5/7 and rac-OPE5/7 units of block copolymers adopted a single-layer face-to-face twisted stacking mode to form helical nanofibers with comparable circular dichroism (CD) signals in methanol. On the contrary, L-OPE5/7 units of counterparts followed a face-to-face/side-by-side packing mode to form CD-silent nanofibers and nanoribbons. By one-step heating/cooling and self-seeding approaches, both (S)-OPE7-b-PNIPAM36 and rac-OPE7-b-PNIPAM36 gave uniform helical nanofibers of controlled lengths, showing typical living/controlled characteristics in micellar elongation. In stark contrast, the L-OPE7-containing counterpart only formed CD-silent and ill-defined nanofibers and nanoribbons. The results manifested that it was the subtle interplay of pi-pi stacking of the OPE backbone and the conformation effect of branched racemic and chiral side chains that rendered the regularly twisted stacking of rac-OPE5/7 and (S)-OPE5/7 units to give helical nanofibers with a preferred handedness. This work provides additional insights into the correlation between the structure of pi-conjugated segments, especially the side chains, and the asymmetric CDSA behavior. More appealingly, this work illustrates a more economical and efficient "racemic"-side-chain-directed asymmetric living CDSA approach toward precision creation of chiroptical nanostructures from diverse pi-conjugated entities.

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