Yıl: 2019 Cilt: 27 Sayı: 3 Sayfa Aralığı: 1871 - 1884 Metin Dili: İngilizce DOI: 10.3906/elk-1804-195 İndeks Tarihi: 15-05-2020

Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks

Öz:
Recently, sensor and biosensor applications have become widespread and are now significant tools in thebiomedical field and other areas. Since quartz tuning fork (QTF) resonance frequency depends on the mass adsorbed toits prongs, it is generally used to measure minor mass change and detect target analyte in picogram levels. This study isundertaken to design and fabricate a sensor device for the measurement of QTF transducers. When QTF sensor studieswere investigated, it was found that explanations on the details of instrumentation part were limited, and in addition,there was no compact commercial products. In this study, a novel, low-cost, portable quartz tuning fork sensor devicewith ability to work with any kind of display is presented in detail. Moreover, the effect of the ambient temperatureduring the measurements was checked. Six other QTF transducer types, 32, 32.768, 40, 65.536, 75, and 100 kHz, havebeen studied as the other novel part of the research. As a result, a QTF sensor device was fabricated that has furtheradvanced features when compared with its alternatives and works with a more accurate measurement method. Owingto this advancement, using biosensor/chemical sensor which consists of QTF transducers with features that can takesensitive analyte measurement in picogram level will be able to spread.
Anahtar Kelime:

Konular: Mühendislik, Elektrik ve Elektronik Bilgisayar Bilimleri, Yazılım Mühendisliği Bilgisayar Bilimleri, Sibernitik Bilgisayar Bilimleri, Bilgi Sistemleri Bilgisayar Bilimleri, Donanım ve Mimari Bilgisayar Bilimleri, Teori ve Metotlar Bilgisayar Bilimleri, Yapay Zeka
Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
  • [1] Scheller F. Biosensors. New York, NY, USA: Elsevier, 1992.
  • [2] Alocilja EC, Radke SM. Market analysis of biosensors for food safety. Biosensors and Bioelectronics 2003; 18: 841-846.
  • [3] Rodriguezmozaz S, Alda M, Marco M, Barcelo D. Biosensors for environmental monitoring: a global perspective. Talanta 2005; 65: 291-297.
  • [4] Kissinger PT. Biosensors—a perspective. Biosensors and Bioelectronics 2005; 20: 2512-2516.
  • [5] Eggins BR. Chemical sensors and biosensors. Chichester, Hoboken, NJ, USA: J. Wiley, 2002.
  • [6] Su L, Jia W, Hou C, Lei Y. Microbial biosensors: a review. Biosensors and Bioelectronics 2011; 26: 1788-1799.
  • [7] Arora P, Sindhu A, Dilbaghi N, Chaudhury A. Biosensors as innovative tools for the detection of food borne pathogens. Biosensors and Bioelectronics 2011; 28: 1-12.
  • [8] Gooding JJ. Biosensor technology for detecting biological warfare agents: recent progress and future trends. Analytica Chimica Acta 2006; 559: 137-151.
  • [9] Wang Y-C, Cokeliler D, Gunasekaran S. Reduced graphene oxide/carbon nanotube/gold nanoparticles nanocomposite functionalized screen-printed electrode for sensitive electrochemical detection of endocrine disruptor bisphenol A. Electroanalysis 2015; 27: 2527-2536.
  • [10] Xu D, Huang X, Guo J, Ma X. Automatic smartphone-based microfluidic biosensor system at the point of care. Biosensors and Bioelectronics 2018; 110: 78-88.
  • [11] Zhang D, Liu Q. Biosensors and bioelectronics on smartphone for portable biochemical detection. Biosensors and Bioelectronics 2016; 75: 273-284.
  • [12] Tranh Minh C. Biosensors. London, England: Chapman and Hall, 1993.
  • [13] Yang JS. An introduction to the theory of piezoelectricity. New York, NY, USA: Springer, 2005.
  • [14] Heywang W, Lubitz K, Wersing W. Piezoelectricity: evolution and future of a technology. Berlin, Germany: Springer, 2008.
  • [15] Vijaya MS. Piezoelectric materials and devices applications in engineering and medical sciences. Boca Raton, FL, USA: CRC Press, 2013.
  • [16] Lucklum R, Eichelbaum F. Interface Circuits for QCM Sensors. In: Steinem C, Janshoff A, editors. Piezoelectric Sensors. Berlin, Germany: Springer, 2007. pp. 3-47.
  • [17] Arnau V. Piezoelectric transducers and applications. Berlin, Germany: Springer, 2008.
  • [18] Yang J. Basic equations. In: Yang J, editors. Special Topics in the Theory of Piezoelectricity. New York, NY, USA: Springer, 2000. pp. 1-12.
  • [19] Vlassov S, Scheler O, Plaado M, Lõhmus L, Kurg A, Saal K, Kink I. Integrated carbon nanotube fibre–quartz tuning fork biosensor. Proceedings of the Estonian Academy of Sciences 2012; 61: 48-51.
  • [20] Zhang J, O’Shea S. Tuning forks as micromechanical mass sensitive sensors for bio- or liquid detection. Sensors and Actuators B: Chemical 2003; 94: 65-72.
  • [21] Friedt J-M, Carry É. Introduction to the quartz tuning fork. American Journal of Physics 2007; 75: 415-422.
  • [22] Su X, Dai C, Zhang J, O’Shea SJ. Quartz tuning fork biosensor. Biosensors and Bioelectronics 2002; 17: 111-117.
  • [23] Zhou X, Jiang T, Zhang J, Wang X, Zhu Z. Humidity sensor based on quartz tuning fork coated with sol–gel- derived nanocrystalline zinc oxide thin film. Sensors and Actuators B: Chemical 2007; 123: 299-305.
  • [24] Ma J, Xu J, Duan J, Xu H. Micro-temperature sensor based on quartz tuning fork resonator. Research Journal of Applied Sciences, Engineering and Technology 2013; 5: 1232-1237.
  • [25] Jayapandian J, Swarrup JS, Sheela OK, Ravi U. PSoC-based embedded design and quartz tuning fork for lowtemperature measurement system design. Journal of Laboratory Automation 2012; 17: 144-154.
  • [26] Xu J, Li X, Duan J, Xu H. High-precision low-power quartz tuning fork temperature sensor with optimized resonance excitation. Journal of Zhejiang University SCIENCE C 2013; 14: 264-273.
  • [27] Xu J, Sun G, Ma J, Li X. Implement and Research on the Miniature Quartz Tuning Fork Temperature Sensor. Sensors and Transducers 2014; 176: 13-20.
  • [28] Gula G, Waszczuk K, Olszak T, Majewska J, Gotszalk T, Drulis-Kawa Z, Gutowicz J. Piezoelectric tuning fork mass sensors as a novel tool for determination of antibiotic activity on Pseudomonas aeruginosa biofilm. Procedia Engineering 2011; 25: 980-983.
  • [29] Waszczuk K, Gula G, Swiatkowski M, Olszewski J, drulis-Kawa Z, Gutowicz J, Gotszalk T. Evaluation of Pseudomonas aeruginosa biofilm formation using piezoelectric tuning forks mass sensors. Procedia Engineering 2010; 5: 820-823.
  • [30] Otero J, Baños R, González L, Torrents E, Juárez A, Puig-Vidal M. Quartz tuning fork studies on the surface properties of Pseudomonas aeruginosa during early stages of biofilm formation. Colloids and Surfaces B: Biointerfaces 2013; 102: 117-123.
  • [31] Piasecki T, Guła G, Waszczuk K, Drulis-Kawa Z, Gotszalk T. Quartz tuning fork as in-situ sensor of bacterial biofilm. Procedia Engineering 2014; 87: 369-372.
  • [32] Chałupniak A, Waszczuk K, Hałubek-Głuchowska K, Piasecki T, Gotszalk T, Rybka J. Application of quartz tuning forks for detection of endotoxins and Gram-negative bacterial cells by monitoring of Limulus Amebocyte Lysate coagulation. Biosensors and Bioelectronics 2014; 58: 132-137.
  • [33] Kocum C, Erdamar A, Ayhan H. Design of temperature controlled quartz crystal microbalance system. Instrumentation Science and Technology 2009; 38: 39-51.
  • [34] González L, Otero J, Cabezas G, Puig-Vidal M. Electronic driver with amplitude and quality factor control to adjust the response of quartz tuning fork sensors in atomic force microscopy applications. Sensors and Actuators A: Physical 2012; 184: 112-118.
  • [35] Mecea VM, Carlsson JO, Heszler P, Bârtan M. Development and testing of a high temperature quartz crystal microbalance. Vacuum 1995; 46: 691-694.
  • [36] Ziegler C. Cantilever-based biosensors. Analytical and Bioanalytical Chemistry 2004; 379: 946-959.
  • [37] Blaauwgeers R, Blazkova M, Človečko M et al. Quartz tuning fork: thermometer, pressure- and viscometer for helium liquids. Journal of Low Temperature Physics 2007; 146: 537-562.
  • [38] Wang R, Tsow F, Zhang X et al. Real-time ozone detection based on a microfabricated quartz crystal tuning fork sensor. Sensors 2009; 9: 5655-5663.
  • [39] Amine A, Mohammadi H, Bourais I, Palleschi G. Enzyme inhibition-based biosensors for food safety and environmental monitoring. Biosensors and Bioelectronics 2006; 21: 1405-1423.
  • [40] Rogers K. Biosensors for environmental applications. Biosensors and Bioelectronics 1995; 10: 533-541.
  • [41] Grieshaber D, MacKenzie R, Vörös J, Reimhult E. Electrochemical biosensors - sensor principles and architectures. Sensors 2008; 8: 1400-1458.
APA UNAL M, KOÇUM İ, Çökeliler Serdaroğlu D (2019). Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks. , 1871 - 1884. 10.3906/elk-1804-195
Chicago UNAL Mehmet Altay,KOÇUM İsmail Cengiz,Çökeliler Serdaroğlu Dilek Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks. (2019): 1871 - 1884. 10.3906/elk-1804-195
MLA UNAL Mehmet Altay,KOÇUM İsmail Cengiz,Çökeliler Serdaroğlu Dilek Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks. , 2019, ss.1871 - 1884. 10.3906/elk-1804-195
AMA UNAL M,KOÇUM İ,Çökeliler Serdaroğlu D Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks. . 2019; 1871 - 1884. 10.3906/elk-1804-195
Vancouver UNAL M,KOÇUM İ,Çökeliler Serdaroğlu D Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks. . 2019; 1871 - 1884. 10.3906/elk-1804-195
IEEE UNAL M,KOÇUM İ,Çökeliler Serdaroğlu D "Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks." , ss.1871 - 1884, 2019. 10.3906/elk-1804-195
ISNAD UNAL, Mehmet Altay vd. "Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks". (2019), 1871-1884. https://doi.org/10.3906/elk-1804-195
APA UNAL M, KOÇUM İ, Çökeliler Serdaroğlu D (2019). Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks. Turkish Journal of Electrical Engineering and Computer Sciences, 27(3), 1871 - 1884. 10.3906/elk-1804-195
Chicago UNAL Mehmet Altay,KOÇUM İsmail Cengiz,Çökeliler Serdaroğlu Dilek Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks. Turkish Journal of Electrical Engineering and Computer Sciences 27, no.3 (2019): 1871 - 1884. 10.3906/elk-1804-195
MLA UNAL Mehmet Altay,KOÇUM İsmail Cengiz,Çökeliler Serdaroğlu Dilek Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks. Turkish Journal of Electrical Engineering and Computer Sciences, vol.27, no.3, 2019, ss.1871 - 1884. 10.3906/elk-1804-195
AMA UNAL M,KOÇUM İ,Çökeliler Serdaroğlu D Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks. Turkish Journal of Electrical Engineering and Computer Sciences. 2019; 27(3): 1871 - 1884. 10.3906/elk-1804-195
Vancouver UNAL M,KOÇUM İ,Çökeliler Serdaroğlu D Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks. Turkish Journal of Electrical Engineering and Computer Sciences. 2019; 27(3): 1871 - 1884. 10.3906/elk-1804-195
IEEE UNAL M,KOÇUM İ,Çökeliler Serdaroğlu D "Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks." Turkish Journal of Electrical Engineering and Computer Sciences, 27, ss.1871 - 1884, 2019. 10.3906/elk-1804-195
ISNAD UNAL, Mehmet Altay vd. "Design of a portable and low-cost mass-sensitive sensor with the capability of measurements on various frequency quartz tuning forks". Turkish Journal of Electrical Engineering and Computer Sciences 27/3 (2019), 1871-1884. https://doi.org/10.3906/elk-1804-195