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用于气相对映体识别的手性卟啉-二氧化硅纳米螺旋传感器

Chiral porphyrin-SiO nano helices-based sensors for vapor enantiomers recognition.

作者信息

Di Filippo Ilaria, Anfar Zakaria, Magna Gabriele, Pranee Piyanan, Monti Donato, Stefanelli Manuela, Oda Reiko, Di Natale Corrado, Paolesse Roberto

机构信息

Department of Chemical Science and Technologies, University of Rome Tor Vergata via della Ricerca Scientifica 1 00133 Rome Italy

Univ. Bordeaux, CNRS, Bordeaux INP, CBMN, UMR 5248 33600 Pessac France.

出版信息

Nanoscale Adv. 2024 Jul 19;6(17):4470-4478. doi: 10.1039/d4na00217b. eCollection 2024 Aug 20.

Abstract

The ability of olfaction to distinguish odors is based on many different properties deriving from the molecular structure, including chirality. Even if the electronic nose (e-nose) concept has been widely used in strict analogy with biological systems to implement sensor arrays that recognize and distinguish complex odor matrices, the fabrication of an enantioselective e-nose remains a challenge. This paper introduces an array of quartz microbalances (QMB) functionalized with sensitive materials made of a combination of achiral receptors and silica nanohelices grafted by chiral and achiral porphyrins. In this combination, nanohelices provide a chiral template for the spatial arrangement of porphyrins, while porphyrins act as receptors that can interact differently with analytes. Remarkably, even if single sensors show scarce enantioselectivity, the signals of the overall array achieve recognition of the chiral identity of the five diverse enantiomeric pairs tested when the data are processed with proper multivariate algorithms. Such an innovative and generalizable approach is expected to enable the formation of an extensive library of readily integrable chiral receptors in enantioselective sensor arrays, potentially revolutionizing diverse fields such as agrochemicals, medicine, and environmental sciences.

摘要

嗅觉区分气味的能力基于分子结构衍生出的许多不同特性,包括手性。尽管电子鼻(e-nose)概念已被广泛用于与生物系统严格类比,以实现识别和区分复杂气味基质的传感器阵列,但制造对映选择性电子鼻仍然是一项挑战。本文介绍了一种石英微天平(QMB)阵列,其功能化敏感材料由非手性受体与通过手性和非手性卟啉接枝的二氧化硅纳米螺旋体组合而成。在这种组合中,纳米螺旋体为卟啉的空间排列提供了手性模板,而卟啉则作为能够与分析物产生不同相互作用的受体。值得注意的是,即使单个传感器表现出很少的对映选择性,但当使用适当的多变量算法处理数据时,整个阵列的信号能够识别所测试的五种不同对映体对的手性特征。这种创新且可推广的方法有望在对映选择性传感器阵列中形成大量易于集成的手性受体库,可能会给农用化学品、医学和环境科学等不同领域带来变革。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8a9b/11334989/12933bd9efa5/d4na00217b-f1.jpg

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