Energetics and Raman spectroscopy of organic molecules encapsulated in single-walled boron nitride nanotubes: The example of π-conjugated oligothiophenes

IF 4.5 3区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Synthetic Metals Pub Date : 2025-04-01 Epub Date: 2024-12-03 DOI:10.1016/j.synthmet.2024.117811
O. Elouardi , J. Chenouf , S. Elhadfi , Y. Kensi , S.A.A. Abdelkader , B. Fakrach , A.H. Rahmani , H. Chadli , A. Rahmani
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引用次数: 0

Abstract

The instability of organic electronic devices under environmental conditions narrowly related to the unstable aggregate state of organic semiconductors is one key obstacle to practical application. Herein, we highlight a promising strategy to overcome these drawbacks consisting to make use of the hollow space within single-walled boron nitride nanotubes (SWBNNTs). As a prototypical system of organic π-conjugated molecules encapsulated in SWBNNTs, we investigate the energetic stability and Raman spectra of a series of oligothiophene molecules (nT) (n = 2, 4, and 6) inside SWBNNTs through a combination of molecular dynamics (MD), density functional theory (DFT), bond polarisability model (BPM), and spectral moments method (SMM). The structural stability of these nanohybrids are explored initially. The optimal SWBNNTs diameters in which the resulting nanohybrids are stable with either one molecule (nT@SWBNNTs) and two encapsulated molecular chains (nT-nT@SWBNNTs) are computed. Then, the computed Raman spectra of the oligothiophenes and SWBNNTs before and after filling are reported. The energetic stability and the possible appearance or not of charge transfer in such nanohybrids are investigated by attentive analysis of the nanoconfinement effect on Raman features of oligothiophenes and SWBNNTs. The present results provide benchmark theoretical data to efficiently probe the interactions subsisting in such nanohybrids based on SWBNNTs templates that can serve as a new stable component for organic electronic devices.
包裹在单壁氮化硼纳米管中的有机分子的能量学和拉曼光谱:以π共轭寡硫噻吩为例
有机电子器件在环境条件下的不稳定性与有机半导体的不稳定聚集态密切相关,是实际应用的一个关键障碍。在此,我们强调了一种有希望的策略来克服这些缺点,包括利用单壁氮化硼纳米管(SWBNNTs)内的空心空间。作为包裹在swbnnt内的有机π共轭分子的原型体系,我们通过分子动力学(MD)、密度泛函理论(DFT)、键极化模型(BPM)和谱矩法(SMM)的结合,研究了swbnnt内一系列寡硫噻吩分子(nT) (n = 2,4和6)的能量稳定性和拉曼光谱。初步探讨了这些纳米杂化材料的结构稳定性。计算得到的纳米杂化物在单分子(nT@SWBNNTs)和两个包封分子链(nT-nT@SWBNNTs)中稳定的最佳SWBNNTs直径。然后,计算了填充前后的低硫噻吩和swbnnt的拉曼光谱。通过分析纳米约束对低聚噻吩和swbnnt拉曼特性的影响,研究了纳米杂化体的能量稳定性和电荷转移的可能性。本研究结果为有效探索基于SWBNNTs模板的纳米杂化体中存在的相互作用提供了基准理论数据,该模板可以作为有机电子器件的新稳定组件。
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来源期刊
Synthetic Metals
Synthetic Metals 工程技术-材料科学:综合
CiteScore
8.30
自引率
4.50%
发文量
189
审稿时长
33 days
期刊介绍: This journal is an international medium for the rapid publication of original research papers, short communications and subject reviews dealing with research on and applications of electronic polymers and electronic molecular materials including novel carbon architectures. These functional materials have the properties of metals, semiconductors or magnets and are distinguishable from elemental and alloy/binary metals, semiconductors and magnets.
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