Optimized PCF architectures for THz detection of aquatic pathogens: Enhancing water quality monitoring.

IF 2.6 3区 综合性期刊 Q1 MULTIDISCIPLINARY SCIENCES
PLoS ONE Pub Date : 2025-01-27 eCollection Date: 2025-01-01 DOI:10.1371/journal.pone.0317533
Diponkar Kundu, Nasir Uddin Badhon, A H M Iftekharul Ferdous, Md Safiul Islam, Md Galib Hasan, Khalid Sifulla Noor, Most Momtahina Bani
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引用次数: 0

Abstract

Waterborne bacteria pose a serious hazard to human health, hence a precise detection method is required to identify them. A photonic crystal fiber sensor that takes into account the dangers of aquatic bacteria has been suggested, and its optical characteristics in the THz range have been quantitatively assessed. The PCF sensor was designed and examined as computed in Comsol Multiphysics, a program in which uses the method of "Finite Element Method" (FEM). At 3.2 THz operating frequency, the proposed sensor performs better than the others in all tested cases, with a high sensitivity of 96.78% for Vibrio cholera, 97.54% for E. coli, and 97.40% for Bacillus anthracis. It also has a very low CL of 2.095 × 10-13 dB/cm for Vibrio cholera, 4.411 × 10-11 dB/cm for E. coli, and 1.355 × 10-11 dB/cm for Bacillus anthracis. The existing architecture has the potential to produce the sensor efficiently and scalable, opening the door for commercial applications. The innovation is in the optimization of structural parameters to increase the fiber's sensitivity to bacterial presence, thereby improving the interaction between terahertz waves and bacterial cells. It targets bacterial macromolecule absorption peaks to increase sensitivity. Localized field augmentation, which concentrates THz vibrations where bacteria interact more, may arise from optimization. By improving scattering, structural alterations can help identify bacteria by their characteristic scattering patterns. These improvements improve the sensor's trace bacteria detection. These factors increase the sensor's aquatic germ detection when combined. In aqueous environments, this results in a more precise and efficient detection, which could facilitate the real-time monitoring of bacterial contamination. Public health and water quality control may be significantly affected by these developments.

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优化PCF结构用于水生病原体的太赫兹检测:加强水质监测。
水媒细菌对人类健康造成严重危害,需要精确的检测方法来识别。提出了一种考虑水生细菌危害的光子晶体光纤传感器,并对其太赫兹范围内的光学特性进行了定量评价。PCF传感器的设计和校核是在Comsol Multiphysics程序中进行的,该程序采用有限元方法。在3.2太赫兹工作频率下,该传感器对霍乱弧菌、大肠杆菌和炭疽芽孢杆菌的检测灵敏度分别为96.78%、97.54%和97.40%。对霍乱弧菌、大肠杆菌和炭疽杆菌的CL值分别为2.095 × 10-13 dB/cm、4.411 × 10-11 dB/cm和1.355 × 10-11 dB/cm。现有的架构有潜力有效地生产传感器和可扩展,为商业应用打开大门。创新之处在于结构参数的优化,以增加纤维对细菌存在的敏感性,从而改善太赫兹波与细菌细胞之间的相互作用。它针对细菌的大分子吸收峰,以提高灵敏度。局部场增强,将太赫兹振动集中在细菌相互作用较多的地方,可能会从优化中产生。通过改善散射,结构改变可以帮助识别细菌的特征散射模式。这些改进提高了传感器的微量细菌检测。这些因素结合在一起增加了传感器的水生细菌检测。在水环境中,这导致了更精确和有效的检测,这可以促进细菌污染的实时监测。这些发展可能会严重影响公共卫生和水质控制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
PLoS ONE
PLoS ONE 生物-生物学
CiteScore
6.20
自引率
5.40%
发文量
14242
审稿时长
3.7 months
期刊介绍: PLOS ONE is an international, peer-reviewed, open-access, online publication. PLOS ONE welcomes reports on primary research from any scientific discipline. It provides: * Open-access—freely accessible online, authors retain copyright * Fast publication times * Peer review by expert, practicing researchers * Post-publication tools to indicate quality and impact * Community-based dialogue on articles * Worldwide media coverage
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