光子晶体在药品检测方面的应用
Application of Photonic Crystals in Drug Detection
DOI: 10.12677/AMC.2024.121007, PDF,   
作者: 王 贵:浙江师范大学化学与材料科学学院,浙江 金华;虞方磊:浙江科惠医疗器械股份有限公司,浙江 金华;郑绍成*:浙江师范大学理学院,浙江 金华;浙江师范大学行知学院,浙江 金华
关键词: 光子晶体药物检测药物鉴定分子印迹传感识别Photonic Crystal Drug Detection Drug Identification Molecular Imprinting Sensor Recognition
摘要: 本文综合探讨了光子晶体在药物检测领域的应用,着重关注分子印迹二维光子晶体水凝胶传感器的优势。通过文献综述,揭示了光子晶体传感器在药物检测中实现高灵敏度、特异性识别和实时监测的潜力。以2, 4-二氯苯酚、磺胺甲恶唑、左氧氟沙星、加替沙星为例,这些传感器能够快速、准确地筛选生物样品中的药物。然而,样品基质干扰等挑战仍需克服。展望未来,光子晶体传感技术将与其他方法融合,提升检测性能。通过创新,光子晶体传感器有望在药物检测领域发挥更大作用,确保公共健康和安全。
Abstract: In this paper, the application of photonic crystals in the field of drug detection was comprehensively discussed, focusing on the advantages of molecularly imprinted two-dimensional photonic crystal hydrogel sensors. Through literature review, the potential of photonic crystal sensors to realize high sensitivity, specific recognition and real-time monitoring in drug detection is revealed. Using 2, 4-dichlorophenol, sulfamethoxazole, levofloxacin and Gatifloxacin as examples, these sensors enable rapid and accurate screening of drugs in biological samples. However, challenges such as sample matrix interference still need to be overcome. Looking ahead, photonic crystal sensing technology will be integrated with other methods to improve detection performance. Through innovation, photonic crystal sensors are expected to play a greater role in the field of drug detection, ensuring public health and safety.
文章引用:王贵, 虞方磊, 郑绍成. 光子晶体在药品检测方面的应用[J]. 材料化学前沿, 2024, 12(1): 39-49. https://doi.org/10.12677/AMC.2024.121007

参考文献

[1] Abraham, P., Renjini, S., Vijayan, P., et al. (2020) Review on the Progress in Electrochemical Detection of Morphine Based on Different Modified Electrodes. Journal of the Electrochemical Society, 167, Article ID: 037559. [Google Scholar] [CrossRef
[2] Salajegheh, M., Kazemipour, M., Foroghi, M.M., et al. (2019) Morphine Sensing by a Green Modified Molecularly Imprinted poly L-Lysine/Sodium Alginate-Activated Carbon/Glassy Carbon Elec-trode Based on Computational Design. Electroanalysis, 31, 468-476. [Google Scholar] [CrossRef
[3] Nielsen, S., MacDonald, T. and Johnson, J.L. (218) Identifying and Treating Codeine Dependence: A Systematic Review. Medical Journal of Australia, 208, 451-461. [Google Scholar] [CrossRef] [PubMed]
[4] Ahmed, S.R., et al. (2018) Multiplexed Microfluidic Fluorescence Immunoassay with Photodiode Array Signal Acquisition for Sub-Minute and Point-of-Need Detec-tion of Mycotoxins. Lab on a Chip, 18, 1569-1580. [Google Scholar] [CrossRef
[5] Qin, X., Liu, W., Liu, G., et al. (2020) 2, 4-Dichlorophenol Molecularly Im-printed Two-Dimensional Photonic Crystal Hydrogels. Journal of Applied Polymer Science, 137, Article ID: 49299. [Google Scholar] [CrossRef
[6] Wang, Y., Cui, H., Zhao, Q. and Du, X.M. (2019) Chameleon-Inspired Structur-al-Color Actuators. Matter, 1, 626-638. [Google Scholar] [CrossRef
[7] Zhao, Q., Wang, Y., Cui, H. and Du, X.M. (2019) Bio-Inspired Sensing and Actuating Materials. Journal of Materials Chemistry C, 7, 6493-6511. [Google Scholar] [CrossRef
[8] Lu, W., Asher, S.A., Meng, Z., et al. (2016) Visual Detection of 2, 4, 6-Trinitrotolune by Molecularly Imprinted Colloidal Array Photonic Crystal. Journal of Hazardous Materials, 316, 87-93. [Google Scholar] [CrossRef] [PubMed]
[9] Smith, N.L., Coukouma, A., Dubnik, S. and Asher, S.A. (2017) De-bye Ring Diffraction Elucidation of 2D Photonic Crystal Self-Assembly and Ordering at the Air-Water Interface. Physical Chemistry Chemical Physics, 19, 31813-31822. [Google Scholar] [CrossRef
[10] Meng, L., Meng, P., Tang, B., et al. (2013) Molecularly Imprinted Photonic Hydrogels for Fast Screening of Atropine in Biological Samples with High Sensi-tivity. Forensic Science International, 231, 6-12. [Google Scholar] [CrossRef] [PubMed]
[11] Aehle, E. and Dräger, B. (2010) Tropane Alkaloid Analysis by Chro-matographic and Electrophoretic Techniques: An Update. Journal of Chromatography B, 878, 1391-1406. [Google Scholar] [CrossRef] [PubMed]
[12] Broecker, S., Herre, S. and Pragst, F. (2012) General Unknown Screening in Hair by Liquid Chromatography—Hybrid Quadrupole Time-of-Flight Mass Spectrometry (LC—QTOF-MS). Fo-rensic Science International, 218, 68-81. [Google Scholar] [CrossRef] [PubMed]
[13] Wang, Y., Xie, T., Yang, J., et al. (2019) Fast Screening of Antibiot-ics in Milk Using a Molecularly Imprinted Two-Dimensional Photonic Crystal Hydrogel Sensor. Analytica Chimica Acta, 1070, 97-103. [Google Scholar] [CrossRef] [PubMed]
[14] Yuan, B., Zheng, C., Teng, H. and You, T.Y. (2010) Simultaneous Deter-mination of Atropine, Anisodamine, and Scopolamine in Plant Extract by Nonaqueous Capillary Electrophoresis Coupled with Electrochemiluminescence and Electrochemistry Dual Detection. Journal of Chromatography A, 1217, 171-174. [Google Scholar] [CrossRef] [PubMed]
[15] Zhang, S., Shao, K., Hong, C., et al. (2023) Fluorimetric Identification of Sulfonamides by Carbon Dots Embedded Photonic Crystal Molecularly Imprinted Sensor Array. Food Chemistry, 407, Arti-cle ID: 135045. [Google Scholar] [CrossRef] [PubMed]
[16] Xie, X., Huang, S., Zheng, J., et al. (2020) Trends in Sensitive De-tection and Rapid Removal of Sulfonamides: A Review. Journal of Separation Science, 43, 1634-1652. [Google Scholar] [CrossRef] [PubMed]
[17] Zhu, F., Pan, J., Zou, Q., et al. (2021) Electron Beam Irradiation of Typical Sulfonamide Antibiotics in the Aquatic Environment: Kinetics, Removal Mechanisms, Degradation Products and Toxicity As-sessment. Chemosphere, 274, Article ID: 129713. [Google Scholar] [CrossRef] [PubMed]
[18] Cao, Y., Liu, G., Zheng, B., et al. (2021) A Sulfamethoxazole Molecularly Imprinted Two-Dimensional Photonic Crystal Hydrogel Sensor. Soft Matter, 17, 4969-4978. [Google Scholar] [CrossRef
[19] Wang, Y., Xie, T., Yang, J., et al. (2019) Fast Screening of Antibiotics in Milk Using a Molecularly Imprinted Two-Dimensional Photonic Crystal Hydrogel Sensor. Analytica Chimica Acta, 1070, 97-103. [Google Scholar] [CrossRef] [PubMed]
[20] Yan, H., Yang, C.J., Tang, N., et al. (2017) Specific Detection of Antibiot-ics by Silicon-on-Chip Photonic Crystal Biosensor Arrays. IEEE Sensors Journal, 17, 5915-5919. [Google Scholar] [CrossRef
[21] Booth, A., Aga, D.S. and Wester, A.L. (2020) Retrospective Analysis of the Global Antibiotic Residues That Exceed the Predicted No Effect Concentration for Antimicrobial Resistance in Various Environmental Matrices. Environment International, 141, Article ID: 105796. [Google Scholar] [CrossRef] [PubMed]
[22] Qiu, X., Chen, W., Luo, Y., et al. (2020) Highly Sensitive α-Amanitin Sensor Based on Molecularly Imprinted Photonic Crystals. Analytica Chimica Acta, 1093, 142-149. [Google Scholar] [CrossRef] [PubMed]
[23] Aljuffali, I.A., Sung, C.T., Shen, F.M., et al. (2014) Squarticles as a Lipid Nanocarrier for Delivering Diphencyprone and Minoxidil to Hair Follicles and Human Dermal Papilla Cells. The AAPS Journal, 16, 140-150. [Google Scholar] [CrossRef] [PubMed]
[24] Alizadeh, N. and Hemati, F. (2014) Spectrophotometric Method for the Determination of Amlodipine Besylate in Pure and Dosage Forms Using 7, 7, 8, 8-Tetracyanoquinodimethane and Tetracyano-ethylene. Bulletin of Faculty of Pharmacy, Cairo University, 52, 109-114. [Google Scholar] [CrossRef
[25] Park, S.J., Hong, J.T., Choi, S.J., et al. (2014) Detection of Microor-ganisms Using Terahertz Metamaterials. Scientific Reports, 4, Article No. 4988. [Google Scholar] [CrossRef] [PubMed]
[26] Rawat, K.A., Basu, H., Singhal, R.K., et al. (2015) Simultaneous Colorimetric Detection of Four Drugs in Their Pharmaceutical Formulations Using Unmodified Gold Nanoparticles as a Probe. RSC Ad-vances, 5, 19924-19932. [Google Scholar] [CrossRef
[27] Saha, K., Agasti, S.S., Kim, C., et al. (2012) Gold Nanoparticles in Chemical and Biological Sensing. Chemical Reviews, 112, 2739-2779. [Google Scholar] [CrossRef] [PubMed]
[28] Ghanbari, M.H., Shahdost-Fard, F., Khoshroo, A., et al. (2019) A Nanocomposite Consisting of Reduced Graphene Oxide and Electropolymer-ized β-Cyclodextrin for Voltammetric Sensing of Levofloxacin. Microchimica Acta, 186, Article No. 438. [Google Scholar] [CrossRef] [PubMed]
[29] Hongbin, L.U., Wang, H., Shaoyong, L.U., et al. (2020) Response Mechanism of Typical Wetland Plants and Removal of Water Pollutants under Different Levofloxacin Concentration. Ecological Engineering, 158, Article ID: 106023. [Google Scholar] [CrossRef
[30] Fan, J., Qiu, L., Zheng, W., et al. (2021) Rapid Self-Assembly Prepa-ration of p-Nitrophenol-Molecular Imprinted Photonic Crystal Sensors. Microchemical Journal, 164, Article ID: 105950. [Google Scholar] [CrossRef