Characterization of a robot-assisted UV-C disinfection for the inactivation of surface-associated microorganisms and

Felix M Fuchs1, Nikita Bibinov1, Elena V Blanco2

  • 1Institute for Electrical Engineering and Plasma Technology, Ruhr-University Bochum, Bochum, Germany.

Insights

The HERO21 robot uses UV-C light to disinfect surfaces, effectively inactivating bacteria like B. subtilis spores and viruses such as human coronavirus 229E. This AI-controlled system offers a rapid and efficient solution for surface microbial control.

Area of Science:

  • Microbiology
  • Robotics
  • Public Health

Background:

  • Emerging pathogens like SARS-CoV-2 and multi-resistant bacteria (MRSA) pose significant threats.
  • Effective surface disinfection is crucial for controlling the spread of microorganisms and viruses.

Purpose of the Study:

  • To investigate the disinfection capabilities of the AI-controlled robot HERO21.
  • To assess the inactivation efficiency of UV-C light against bacteria and viruses on surfaces.

Main Methods:

  • Characterization of UV-C lamp emissivity and spatial irradiance distribution using spectroscopy and numerical simulation.
  • Microbiological tests with UV-C resistant *B. subtilis* spores to determine disinfection times and doses.
  • Calculation of irradiance distribution for the eight-lamp HERO21 unit and assessment of inactivation for human coronavirus 229E.

Main Results:

  • A single UV-C lamp required 60s for D99 disinfection of *B. subtilis* spores at 37.3 mJ•cm⁻² at 1m.
  • The HERO21 robot achieved 2.67 mJ•cm⁻²•s⁻¹ irradiance at 1m and 0.29 mJ•cm⁻²•s⁻¹ at 3m.
  • Disinfection times for *B. subtilis* spores were 14s at 1m and 129s at 3m; human coronavirus 229E was inactivated by 3-5 orders of magnitude within 10-30s.

Conclusions:

  • The HERO21 disinfection robot demonstrates significant efficiency in inactivating bacteria and viruses on surfaces under laboratory conditions.
  • UV-C disinfection technology, as implemented in HERO21, presents a viable method for controlling microbial contamination.
  • Further validation in real-world settings can confirm the practical utility of this robotic disinfection system.

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