Development High Sensitivity Sensors Based on Surface Plasmon Resonance Phenomenon

被引:0
作者
Maslov, Volodymyr [1 ]
Dorozinsky, Glib [1 ]
Klestova, Zinaida [2 ]
Ushenin, Yury [1 ]
Dorozinska, Hanna [3 ]
Blotska, Oksana [2 ]
Yuschenko, Alla [2 ]
机构
[1] NAS Ukraine, V Ye Lashkaryov Inst Semicond Phys, Dept Phys & Technol Bases Sensory Mat, Kiev, Ukraine
[2] State Sci Control Inst Biotechnol & Strains Micro, Dept Biotechnol & Control Viral Drugs, Kiev, Ukraine
[3] Natl Tech Univ Ukraine, Igor Sikorsky Kyiv Polytech Inst, Dept Sci Analyt & Environm Devices & Syst, Kiev, Ukraine
来源
2019 IEEE 39TH INTERNATIONAL CONFERENCE ON ELECTRONICS AND NANOTECHNOLOGY (ELNANO) | 2019年
关键词
surface plasmon resonance; absorbency layers; porosity; gas sensitivity; surface functionalization;
D O I
10.1109/elnano.2019.8783945
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Based on the analysis of known publications, the directions for enhancing the sensitivity of the sensor based on surface plasmon resonance are summarized. Additional porous Al2O3 with optimal thinness 190 nm enable to take very large SPR-sensor response (10(-2) effective refractive index change) that correspond to enhance of sensitivity in two orders. Porous SiOx with optimal thinness 140 nm increase response of traditional 50 nm gold sensor by gas environment in more than 20 times, which provides an opportunity to detect the presence of harmful emissions in the atmosphere when they concentrate less than 1 mg/m(3). Functional coating increased sensitivity of SPR sensors in 15 times, that allow us to detect a lower concentration of antibodies in samples (1% of semi-positive serum, comparing to standard methods).
引用
收藏
页码:249 / 252
页数:4
相关论文
共 11 条
[1]   Promising method for determining the concentration of nano-sized diamond powders in water suspensions [J].
Dorozinska, H. V. ;
Dorozinsky, G. V. ;
Maslov, V. P. .
FUNCTIONAL MATERIALS, 2018, 25 (01) :158-164
[2]  
Dorozinska H.V., 2018, Mod. Instrum., V7, P1, DOI [10.4236/mi.2018.71001, DOI 10.4236/MI.2018.71001]
[3]  
Dorozinsky G., 2015, J SENSOR TECHNOLOGY, V5, P54, DOI [10.4236/jst.2015.52006, DOI 10.4236/JST.2015.52006]
[4]   Optimization of the surface plasmon resonance minimum detection algorithm for improvement of method sensitivity [J].
Khrystosenko, R. V. .
SEMICONDUCTOR PHYSICS QUANTUM ELECTRONICS & OPTOELECTRONICS, 2015, 18 (03) :279-285
[5]   Nanoporous alumina enhanced surface plasmon resonance sensors [J].
Koutsioubas, Alexandros G. ;
Spiliopoulos, Nikolaos ;
Anastassopoulos, Dimitris ;
Vradis, Alexandros A. ;
Priftis, George D. .
JOURNAL OF APPLIED PHYSICS, 2008, 103 (09)
[6]   Recent Developments in Optical Detection Technologies in Lab-on-a-Chip Devices for Biosensing Applications [J].
Pires, Nuno Miguel Matos ;
Dong, Tao ;
Hanke, Ulrik ;
Hoivik, Nils .
SENSORS, 2014, 14 (08) :15458-15479
[7]  
Ushenin Yu. V., 2012, PHYS CHEM SOLID STAT, V13, P259
[8]  
Ushenin Yu. V, 2011, OPTOELECTRONICS SEMI, V46, P259
[9]  
Ushenin Yu. V., 2012, OPTOELEKTRON POLUPRO, V47, P40
[10]  
Vakaryuk T. E., 2013, OPTOELECTRONICS SEMI, V48, P89