Development of portable device for measurement of dynamic and static light-emission WOLED characteristics

Authors

DOI:

https://doi.org/10.15587/2706-5448.2021.225239

Keywords:

optical bands, LED radiation power, WOLED, microcontroller software

Abstract

The research object of this work is the parameters of organic light-emitting diodes, namely power and luminous flux. Determination of these parameters can be carried out using a photodiode and requires measuring the dark current of the sensor (photodiode), measuring the current of the photodiode when illuminated by the LED under investigation. And also take into account the relationship between the light flux received by the sensor and its output current, and take into account the spectral characteristics of the sensor. Calculate the investigated parameters of the LED based on the measurements. Carrying out these measurements requires laboratory instruments and workplace organization, and further calculations are routine work.

It is possible to increase the measurement accuracy by improving the existing methods for measuring the required parameters, and it is possible to automate the process of measurements and calculations using a modern microprocessor radioelement base. Microcontrollers are widespread such radioelements. They have the necessary peripherals for independent operation and have sufficient computing power to implement the required measuring device. Its application makes it possible to automate the measurement process, carry out the necessary calculations, save correction constants, accumulate and process the obtained data, analyze these received data, exchange data with a computer, etc. So, the work is aimed at developing a methodology that will allow the simultaneous measurement of power and luminous flux of planar light sources. And also on the feasibility of this technique in the device and software with the ability to measure the power of the light source in an arbitrary band of the spectral visible range. Thus, it is possible to determine what power in watts a light source emits with the dynamics of supply currents in the optical bands, knowing the spectrum of this source without using glass filters. So, the result of applying the technique is to determine the power of light radiation (in watts) or the luminous flux (in lumens) of the emitter (light sources).

Author Biographies

Ihor Helzhynsky, Lviv Polytechnic National University

PhD, Associate Professor

Department of Electronic Devices

Stepan Kutsiy , Lviv Polytechnic National University

Postgraduate Student

Department of Electronic Devices

Andriy Veryha , Yuriy Fedkovych Chernivtsi National University

PhD, Assistant

Department of Radio Engineering and Information Security

Khrystyna Ivaniuk , Lviv Polytechnic National University

PhD

Department of Electronic Devices

Taras Dudok , Vlokh Institute of Physical Optics

PhD, Chief Engineer

References

  1. Min-Hao Michael Lu, Hack, M., Hewitt, R., Weaver, M. S., Brown, J. J. (2008). Power Consumption and Temperature Increase in Large Area Active-Matrix OLED Displays. Journal of Display Technology, 4 (1), 47–53. doi: http://doi.org/10.1109/jdt.2007.900924
  2. Park, Y.-S., Kim, K.-H., Kim, J.-J. (2013). Efficient triplet harvesting by fluorescent molecules through exciplexes for high efficiency organic light-emitting diodes. Applied Physics Letters, 102 (15), 153306. doi: http://doi.org/10.1063/1.4802716
  3. Kamtekar, K. T., Monkman, A. P., Bryce, M. R. (2010). Recent Advances in White Organic Light-Emitting Materials and Devices (WOLEDs). Advanced Materials, 22 (5), 572–582. doi: http://doi.org/10.1002/adma.200902148
  4. Jou, J.-H., Wu, R.-Z., Yu, H.-H., Li, C.-J., Jou, Y.-C., Peng, S.-H. et. al. (2013). Artificial Dusk-Light Based on Organic Light Emitting Diodes. ACS Photonics, 1 (1), 27–31. doi: http://doi.org/10.1021/ph400007w
  5. Sudheendran Swayamprabha, S., Dubey, D. K., Shahnawaz, Yadav, R. A. K., Nagar, M. R., Sharma, A. et. al. (2020). Approaches for Long Lifetime Organic Light Emitting Diodes. Advanced Science, 8 (1), 2002254. doi: http://doi.org/10.1002/advs.202002254
  6. Si photodiodes. S2387 series. Available at: https://www.hamamatsu.com/resources/pdf/ssd/s2387_series_kspd1033e.pdf
  7. Si photodiodes. S7686 series. Available at: https://hamamatsu.su/files/uploads/pdf/2_фотодиоды_и_ф_д_линейки/кремниевые_фотодиоды_(si)/одиночные_кремниевые/s7686_kspd1040e.pdf
  8. LinCMOS programmable low-power operational amplifier. Available at: https://www.ti.com/lit/ds/symlink/tlc271.pdf?ts=1613384669139&ref_url=https%253A%252F%252Fwww.google.com%252F
  9. Arduino UNO. Available at: https://www.farnell.com/datasheets/1682209.pdf
  10. Arduino Software (IDE). Available at: https://www.arduino.cc/en/guide/environment
  11. Visual Studio Community. Available at: https://visualstudio.microsoft.com/ru/vs/community/

Published

2021-02-26

How to Cite

Helzhynsky, I., Kutsiy , S., Veryha , A., Ivaniuk , K., & Dudok , T. . (2021). Development of portable device for measurement of dynamic and static light-emission WOLED characteristics. Technology Audit and Production Reserves, 1(1(57), 30–33. https://doi.org/10.15587/2706-5448.2021.225239

Issue

Section

Electrical Engineering and Industrial Electronics: Reports on Research Projects