机械荧光团锁定苦味酸的CF3氢键芳族堆叠:高选择性可重复使用的传感器和可重写的荧光平台†

IF 3.2 3区 工程技术 Q2 CHEMISTRY, PHYSICAL
Parthasarathy Gayathri, Sasikala Ravi, Periyappan Nantheeswaran, Mariappan Mariappan, Subramanian Karthikeyan, Mehboobali Pannipara, Abdullah G. Al-Sehemi, Dohyun Moon and Savarimuthu Philip Anthony
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引用次数: 3

摘要

裁剪有机荧光分子的分子结构是用于生成具有光学、光电和生物成像应用所需属性的功能材料的重要工具。在此,我们制备了CF3/CH3功能化的机械荧光变色分子(Cz-4-CF3和Cz-4-CH3),并证明了官能团依赖的苦味酸(PA)传感和刺激响应荧光开关。Cz-4-CF3和Cz-4-CH3在固态和溶液中均表现出较强的荧光。Cz-4-CF3表现为机械力和加热诱导的两种荧光状态之间的可逆荧光切换,而Cz-4-CH3表现为开关荧光切换。Cz-4-CF3需要刮擦和退火才能从熔融状态恢复到初始状态的荧光,但仅退火即可将Cz-4-CH3转化为初始状态。Cz-4-CF3在硝基芳香族化合物(NACs)中对苦味酸(PA)具有高选择性荧光检测,检测限为51.4 nM。采用双态荧光Cz-4-CF3制备薄膜(滤纸和PVA/PMMA复合薄膜)荧光传感器。Cz-4-CF3-PVA薄膜和游离Cz-4-CF3-PMMA薄膜在PA水溶液(10?9点到10点?重要的是,在浸入纯水后,荧光被完全恢复,并且薄膜被重复使用了几个周期的PA传感。cz -4- cf3涂布滤纸在PA溶液(10?7 M),浸泡在水中也可以再生。核磁共振研究表明CF3和羟基之间可能存在相互作用。Cz-4-CF3-PA共晶的单晶结构分析证实,CF3与PA的羟基之间存在强h键,使得咔唑与PA的芳族单位之间形成面对面的芳π叠加,并通过电荷转移导致荧光猝灭。计算研究进一步支持了Cz-4-CF3向PA的电荷转移。其他具有CF3取代的荧光团(Cz-3-CF3、TPA-4-CF3和TPA-3-CF3)对PA的高选择性荧光感测表明,CF3具有更广泛的功能范围,可用于开发水介质中PA传感器。Cz-4-CF3在水介质中具有高选择性的薄膜荧光传感、可回收性和接触模式检测,证明了Cz-4-CF3在开展PA现场检测方面的实用性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

CF3 H-bonding locked aromatic stacking of picric acid with mechanofluorochromic fluorophores: highly selective reusable sensor and rewritable fluorescence platform†

CF3 H-bonding locked aromatic stacking of picric acid with mechanofluorochromic fluorophores: highly selective reusable sensor and rewritable fluorescence platform†

Tailoring the molecular structure of organic fluorescent molecules is an important tool used to generate functional materials with the desired attributes for optical, opto-electronic and bio-imaging applications. Herein, we have prepared CF3/CH3 functionalized mechanofluorochromic molecules (Cz-4-CF3 and Cz-4-CH3) and demonstrated functional group-dependent picric acid (PA) sensing and stimuli-responsive fluorescence switching. Cz-4-CF3 and Cz-4-CH3 exhibited strong fluorescence in solution as well as solid state. Cz-4-CF3 showed mechanical force and heating-induced reversible fluorescence switching between two fluorescence states, whereas Cz-4-CH3 displayed off–on fluorescence switching. Cz-4-CF3 required scratching and annealing to revert to the initial-state fluorescence from melt state, but annealing alone transformed Cz-4-CH3 to the initial state. Cz-4-CF3 showed highly selective fluorescence sensing of picric acid (PA) among nitroaromatic compounds (NACs), including dinitrophenol (limit of detection = 51.4 nM). Dual-state fluorescent Cz-4-CF3 was used to fabricate thin-film (filter paper and PVA/PMMA composite thin film) fluorescent sensors for PA in aqueous medium. Cz-4-CF3–PVA and free standing Cz-4-CF3–PMMA thin films showed highly selective fluorescence quenching upon immersion in aqueous PA solution (10?9 to 10?2 M). Importantly, the fluorescence was fully recovered upon dipping into pure water, and the film was reused for several cycles of PA sensing. Cz-4-CF3-coated filter paper also showed clear quenching of fluorescence in PA solution (10?7 M) that could also be regenerated upon immersion in water. NMR studies indicated a possible interaction between CF3 and the hydroxyl group. Single-crystal structural analysis of Cz-4-CF3PA co-crystals confirmed strong H-bonding between CF3 and the hydroxyl group of PA, which facilitated face-to-face aromatic π-stacking between carbazole and PA aromatic units and led to fluorescence quenching by charge transfer. Computational studies further support the charge transfer from Cz-4-CF3 to PA. Highly selective fluorescence sensing of PA by other fluorophores (Cz-3-CF3, TPA-4-CF3 and TPA-3-CF3) with CF3 substitution elucidated the broader scope of CF3 functionality for developing a PA sensor in aqueous medium. The thin-film fluorescence sensing, recyclability and contact mode detection of PA with high selectivity in aqueous medium demonstrate the practical utility for Cz-4-CF3 for developing onsite detection of PA.

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来源期刊
Molecular Systems Design & Engineering
Molecular Systems Design & Engineering Engineering-Biomedical Engineering
CiteScore
6.40
自引率
2.80%
发文量
144
期刊介绍: Molecular Systems Design & Engineering provides a hub for cutting-edge research into how understanding of molecular properties, behaviour and interactions can be used to design and assemble better materials, systems, and processes to achieve specific functions. These may have applications of technological significance and help address global challenges.
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