Silver nanoparticles-based localized surface plasmon resonance biosensor for Escherichia coli detection

被引:21
作者
Mahmudin, Lufsyi [1 ]
Wulandani, Rafiqa [1 ]
Riswan, Muhammad [2 ]
Sari, Emi Kurnia [2 ]
Jayanti, Putri Dwi [2 ]
Ulum, M. Syahrul [1 ]
Arifin, Muhammad [2 ]
Suharyadi, Edi [2 ]
机构
[1] Univ Tadulako, Dept Phys, Palu, Indonesia
[2] Univ Gadjah Mada, Dept Phys, Yogyakarta, Indonesia
关键词
Escherichia coli; L-histidine; Localized surface plasmon resonance; Silver nanoparticles; GOLD NANOPARTICLE; SENSITIVITY; SIZE; OPTIMIZATION; FABRICATION; TRANSITION; O157H7;
D O I
10.1016/j.saa.2024.123985
中图分类号
O433 [光谱学];
学科分类号
0703 ; 070302 ;
摘要
Escherichia coli (E. coli) bacteria with varying solution concentrations have been successfully detected using silver nanoparticles (Ag NPs)-based localized surface plasmon resonance (LSPR) biosensors. The Ag NPs were effectively synthesized by a chemical method using trisodium citrate with L-Histidine (L -His) and deposited on the surface of Au thin film-coated half-cylinder BK -7 prisms. He-Ne laser with a wavelength of 632.8 nm was used to generate LSPR phenomena in Kretschmann configuration with prism/Au thin film/His-Ag NPs/E. coli bacteria/ air structure arrangements. The variation of E. coli bacteria concentration was carried out to determine the effect of E. coli bacteria concentration on the LSPR curve characteristics. The characterization results showed that the size of Ag NPs was 18.7 nm, and that of His -Ag NPs was 17.9 nm. Selected area electron diffraction results indicated the formation of diffraction rings with the presence of lattice planes (1 1 1), (200), (220), and (311), proving the face -centered cubic crystal structure of silver. The absorbance peak of Ag NPs shifted from a wavelength of 421-414 nm with an increase in band gap energy from 2.94 eV to 2.99 eV, along with a decreased average particle size. The functional groups observed in His -Ag NPs showed wavenumbers at 3320 to 3318 cm -1, 2106 to 2129 cm -1, and 1635 cm - 1, showing the O-H, C-H, and C C--O bonds, respectively. The SPR angle of the prism/Au thin film/air structure is 44.80 degrees. Meanwhile, the LSPR angle for the prism/Au thin film/His-Ag NPs/air structure is 44.92 degrees. There is an increase in the LSPR angle by 0.12 degrees. Moreover, the minimum reflectance increases by 0.02. After detecting E. coli bacteria, the LSPR angle shifted by 0.26 degrees, 0.38 degrees, and 0.49 degrees for concentrations of 6.0 x 108 CFU/mL, 6.0 x 107 CFU/mL and 6.0 x 106 CFU/mL respectively. However, the minimum reflectance rose from 0.09 degrees to 0.14 degrees, 0.20 degrees, and 0.22 degrees. Moreover, SPR testing with the structure of the prism/Au thin film/E. coli bacteria/air was carried out to determine the contribution of His-Ag NPs for detecting E. coli bacteria. The results showed that no angular shift occurs. These results indicate that using Ag NPs encapsulated with L -His is essential in amplifying the SPR signal and detecting E. coli bacteria. There was a notable alteration in both the LSPR angle and minimum reflectance indicating that adding His-Ag NPs facilitated the interaction between the E. coli and the sensor surface, thereby enhancing the performance of LSPR-based sensors for E. coli detection for low limit of detection value at 0.47 CFU/mL.
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页数:12
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