Su Xinyang, Wang Likun, Han Yehong, Xin Xuelian, Yan Hongyuan, Cao Jiankun
Hebei Key Laboratory of Public Health Safety, Hebei Key Laboratory of Analytical Science and Technology, College of Public Health, Hebei University, Baoding, 071002, China.
State Key Laboratory of New Pharmaceutical Preparations and Excipients, Key Laboratory of Medicinal Chemistry and Molecular Diagnosis of Ministry of Education, College of Chemistry and Materials Science, Hebei University, Baoding, 071002, China.
Mikrochim Acta. 2025 Sep 18;192(10):679. doi: 10.1007/s00604-025-07515-0.
Breath acetone (BrAce) has been validated as a biomarker for diabetes, playing a crucial role in the non-invasive diagnosis of the diabetes. In this study, cellulose nanocrystal/polyacrylic acid nanofiber composite aerogels loaded with thymol blue (CNC/TB@PAA NFAs), featuring a 3D porous structure, were firstly synthesized and employed as a novel gas-sensitive sensor for BrAce detection. The characterization results reveal that cellulose nanocrystals as a reinforcing nanofiller successfully maintain the 3D hierarchical pore structure stability. The more achievable diffusion of target gas through the interconnected pore channels inside the nanofiber aerogels enables rapid contact and interaction between probe molecules immobilized on the interface of nanofiber and target gas. Consequently, this significantly shortens the response time (2-min acetone gas exposure) and enhances sensing sensitivity. The distinctive reaction mechanism between loaded hydroxylamine sulfate and acetone endows CNC/TB@PAA NFAs with heightened selectivity, effectively eliminating interferences of other components in exhaled breath during colorimetric analysis. Additionally, the sensing performance analysis demonstrates a limit of detection and limit of quantification for acetone at 0.0516 ppm and 0.172 ppm, respectively, and a linear range of 0.2-10 ppm with determination coefficient of 0.9946. It is expected that the proposed CNC/TB@PAA NFA-based colorimetric sensor can be applied as a new strategy for daily health management in healthy people as well as a means of ancillary monitoring for patients with diabetes.
呼气丙酮(BrAce)已被确认为糖尿病的生物标志物,在糖尿病的非侵入性诊断中发挥着关键作用。在本研究中,首次合成了负载百里酚蓝的纤维素纳米晶体/聚丙烯酸纳米纤维复合气凝胶(CNC/TB@PAA NFA),其具有三维多孔结构,并将其用作检测BrAce的新型气敏传感器。表征结果表明,纤维素纳米晶体作为增强纳米填料成功地维持了三维分级孔结构的稳定性。目标气体通过纳米纤维气凝胶内部相互连接的孔道实现更易扩散,使得固定在纳米纤维界面上的探针分子与目标气体能够快速接触并相互作用。因此,这显著缩短了响应时间(暴露于丙酮气体2分钟)并提高了传感灵敏度。负载的硫酸羟胺与丙酮之间独特的反应机制赋予了CNC/TB@PAA NFA更高的选择性,在比色分析过程中有效消除了呼出气体中其他成分的干扰。此外,传感性能分析表明,丙酮的检测限和定量限分别为0.0516 ppm和0.172 ppm,线性范围为0.2 - 10 ppm,测定系数为0.9946。预计所提出的基于CNC/TB@PAA NFA的比色传感器可作为健康人群日常健康管理的新策略以及糖尿病患者辅助监测的手段。