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  4. Optimal st-PMMA/C60 helical inclusion complexes via tunable energy landscapes for the application of an Ag SERS-active substrate
 
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Optimal st-PMMA/C60 helical inclusion complexes via tunable energy landscapes for the application of an Ag SERS-active substrate

Journal
Journal of Applied Crystallography
Journal Volume
58
Journal Issue
2
Start Page
553
End Page
563
ISSN
1600-5767
Date Issued
2025-03-19
Author(s)
Tsai, Song-Yu
Tseng, Wen-Tsung
Su, Jina-Hua
Wang, Yu-Hao
Chang, Yi-Wei
Wang, Chia-Hsin
Jeng, U-Ser
Wu, Kuan-Yi
CHIEN LUNG WANG  
Chuang, Wei-Tsung
DOI
10.1107/S1600576725001712
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/730751
Abstract
In bio-inspired systems, the hierarchical structures of biomolecules are mimicked to impart desired functions to self-assembled materials. However, these hierarchical architectures are based on multicomponent systems, which require not only a well defined primary structure of functional molecules but also the programming of self-assembly pathways. In this study, we investigate pathway complexity in the energy landscape of the syndiotactic poly(methyl methacrylate) (st-PMMA)/C60/toluene complex system, where C60 and toluene serve as guests in the st-PMMA helical host. Structural characterization revealed that st-PMMA preferentially wraps around C60, forming a thermodynamically favorable helical inclusion complex (HIC). However, during the preparation of the st-PMMA/C60 HIC, a lengthy guest-exchange pathway was discovered, where the st-PMMA/toluene HIC transformed into the st-PMMA/C60 HIC. This pathway complexity may hinder the formation of the st-PMMA/C60 HIC within a feasible timeframe. Given that the energy landscape can be modulated by temperature, the st-PMMA host can directly wrap around C60 in higher temperature ranges, thereby bypassing the guest-exchange process and increasing the st-PMMA/C60 HIC formation efficiency. Additionally, after self-assembly programming, the st-PMMA/C60 HIC can serve as an excellent photochemical reduction site. The well dispersed nanodomains of the st-PMMA/C60 HICs act as nanoparticle templates for surface-enhanced Raman scattering (SERS) hotspot fabrication. We successfully utilized these HIC templates to synthesize self-assembled SERS-active silver nanoparticle arrays, demonstrating their potential for use in chemical sensing applications. In summary, a clear energy landscape can guide supramolecular engineering to achieve the desired supramolecular architectures by selecting appropriate self-assembly pathways.
Subjects
C60
helical polymers
inclusion complexes
Raman spectroscopy
supramolecular chemistry
SDGs

[SDGs]SDG3

[SDGs]SDG7

Publisher
International Union of Crystallography (IUCr)
Type
journal article

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