Biomimetic synthesis of Ag-coated glasswing butterfly arrays as ultra-sensitive SERS substrates for efficient trace detection of pesticides

Guochao Shi, Mingli Wang, Yanying Zhu, Yuhong Wang, Xiaoya Yan, Xin Sun, Haijun Xu and Wanli Ma
Beilstein J. Nanotechnol. 2019, 10, 578–588. https://doi.org/10.3762/bjnano.10.59

Supporting Information

1. Enhancement factor (EF) calculation; 2. The equation which was used to calculate the EF; 3. The equation which was used to calculate the RSD; 4. Point-by-point reproducibility of Ag-G.b.-20 substrate; 5. The concentration converted from mg-to-mL to mass-to-area ratio; 6. RSD values of 1185 and 1576 cm−1 of acephate.

Supporting Information File 1: Additional theoretical and experimental information.
Format: PDF Size: 488.9 KB Download

Cite the Following Article

Biomimetic synthesis of Ag-coated glasswing butterfly arrays as ultra-sensitive SERS substrates for efficient trace detection of pesticides
Guochao Shi, Mingli Wang, Yanying Zhu, Yuhong Wang, Xiaoya Yan, Xin Sun, Haijun Xu and Wanli Ma
Beilstein J. Nanotechnol. 2019, 10, 578–588. https://doi.org/10.3762/bjnano.10.59

How to Cite

Shi, G.; Wang, M.; Zhu, Y.; Wang, Y.; Yan, X.; Sun, X.; Xu, H.; Ma, W. Beilstein J. Nanotechnol. 2019, 10, 578–588. doi:10.3762/bjnano.10.59

Download Citation

Citation data can be downloaded as file using the "Download" button or used for copy/paste from the text window below.
Citation data in RIS format can be imported by all major citation management software, including EndNote, ProCite, RefWorks, and Zotero.

Presentation Graphic

Picture with graphical abstract, title and authors for social media postings and presentations.
Format: PNG Size: 1.5 MB Download

Citations to This Article

Up to 20 of the most recent references are displayed here.

Scholarly Works

  • Rasheed, S.; Ul Haq, M. A.; Ahmad, N.; Sirajuddin; Hussain, D. Smartphone-integrated colorimetric and microfluidic paper-based analytical devices for the trace-level detection of permethrin. Food chemistry 2023, 429, 136925. doi:10.1016/j.foodchem.2023.136925
  • Changcharoen, T.; Apiphatnaphakul, T.; Watjanavarreerat, W.; Locharoenrat, K. Effective detection of ZnO in nicotine using butterfly wing scales. Artificial cells, nanomedicine, and biotechnology 2022, 50, 87–95. doi:10.1080/21691401.2022.2056609
  • Cao, H.; Sun, Z.; Guo, L.; Li, N.; Shang, Z.; Zhang, A.; Cao, L.; Jiao, T.; Wang, M. Study on surface enhanced fluorescence based on Ag@razor clam substrate. Optics Communications 2021, 488, 126863. doi:10.1016/j.optcom.2021.126863
  • Zhang, A.; Guo, L.; Li, N.; Zhu, Y.; Jiao, T.; Wang, M. Research on the Raman properties of NiFe/cicada wing composite SERS platform modified by silver nanoparticles. Current Applied Physics 2021, 25, 24–32. doi:10.1016/j.cap.2021.02.012
  • Chen, Z.; Zhang, Z.; Wang, Y.; Xu, D.; Zhao, Y. Butterfly inspired functional materials. Materials Science and Engineering: R: Reports 2021, 144, 100605. doi:10.1016/j.mser.2020.100605
  • Kahkhaie, V. R.; Yousefi, M.; Darbani, S.; Mobashery, A. Enhanced Raman intensity of pollutants and explosives by using 2-mercaptoethanol controlled pyramid Ag-iron nanostructure embedded graphene oxide platform. Photonics and Nanostructures - Fundamentals and Applications 2020, 41, 100801. doi:10.1016/j.photonics.2020.100801
  • Feng, Y.; Wang, R.; Yin, J.; Zhan, F.; Chen, K.; Jiao, T.; Zhou, J.; Zhang, L.; Peng, Q. Facile Synthesis of Cu2O nanoparticle-loaded Carbon Nanotubes Composite Catalysts for Reduction of 4-Nitrophenol. Current Nanoscience 2020, 16, 617–624. doi:10.2174/1573413715666191206161555
  • Rajkumar, P.; Sarma, B. K. Ag/ZnO heterostructure fabricated on AZO platform for SERS based sensitive detection of biomimetic hydroxyapatite. Applied Surface Science 2020, 509, 144798. doi:10.1016/j.apsusc.2019.144798
  • Wang, R.; Yan, X.; Ge, B.; Zhou, J.; Wang, M.; Zhang, L.; Jiao, T. Facile Preparation of Self-Assembled Black Phosphorus-Dye Composite Films for Chemical Gas Sensors and Surface-Enhanced Raman Scattering Performances. ACS Sustainable Chemistry & Engineering 2020, 8, 4521–4536. doi:10.1021/acssuschemeng.9b07840
  • Shi, G.; Wang, M.; Zhu, Y.; Yan, X.; Pan, S.; Zhang, A. Nanoflower-like Ag/AAO SERS platform with quasi-photonic crystal nanostructure for efficient detection of goat serum. Current Applied Physics 2019, 19, 1276–1285. doi:10.1016/j.cap.2019.08.013
  • Muneer, S.; Ayoko, G. A.; Islam, N.; Izake, E. L. Utilizing the thiol chemistry of biomolecules for the rapid determination of anti-TNF-α drug in blood. Talanta 2019, 208, 120411. doi:10.1016/j.talanta.2019.120411
  • Pham, T. B.; Hoang, T. H. C.; Pham, V. H.; Nguyen, V. C.; Van Nguyen, T.; Vu, D. C.; Pham, V. H.; Bui, H. Detection of Permethrin pesticide using silver nano-dendrites SERS on optical fibre fabricated by laser-assisted photochemical method. Scientific reports 2019, 9, 12590. doi:10.1038/s41598-019-49077-1
  • Yao, J.; Quan, Y.; Gao, R.; Li, J.; Chen, L.; Liu, Y.; Lang, J.; Shen, H.; Wang, Y.; Yang, J.; Gao, M. Improved Charge Transfer and Hot Spots by Doping and Modulating the Semiconductor Structure: A High Sensitivity and Renewability Surface-Enhanced Raman Spectroscopy Substrate. Langmuir : the ACS journal of surfaces and colloids 2019, 35, 8921–8926. doi:10.1021/acs.langmuir.9b00754
  • Wang, M.; Shi, G.; Zhu, J.; Zhu, Y.; Sun, X.; Wang, P.; Jiao, T.; Li, R. Preparation of a Novel SERS Platform Based on Mantis Wing with High-Density and Multi-Level "Hot Spots". Nanomaterials (Basel, Switzerland) 2019, 9, 672. doi:10.3390/nano9050672
  • Wang, Y.; Wang, M.; Sun, X.; Shi, G.; Zhang, J.; Ma, W.; Ren, L. Grating-like SERS substrate with tunable gaps based on nanorough Ag nanoislands/moth wing scale arrays for quantitative detection of cypermethrin. Optics express 2018, 26, 22168–22181. doi:10.1364/oe.26.022168
Other Beilstein-Institut Open Science Activities