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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.
Abstract:
Microorganisms pose a serious threat for us humans, which is exemplified by the recent emergence of pathogens such as SARS-CoV-2 or the increasing number of multi-resistant pathogens such as MRSA. To control surface microorganisms and viruses, we investigated the disinfection properties of an AI-controlled robot, HERO21, equipped with eight 130-W low pressure UV-C mercury vapor discharge lamps emitting at a wavelength of 254 nm, which is strongly absorbed by DNA and RNA, thus inactivating illuminated microorganisms. Emissivity and spatial irradiance distribution of a single UV-C lamp unit was determined using a calibrated spectrometer and numerical simulation, respectively. The disinfection efficiency of single lamps is determined by microbiological tests using B. subtilis spores, which are known to be UV-C resistant. The required time for D99 disinfection and the corresponding UV-C irradiance dose amount to 60 s and 37.3 mJ•cm-2 at a distance of 1 m to the Hg-lamp, respectively. Spatially resolved irradiance produced by a disinfection unit consisting of eight lamps is calculated using results of one UV-C lamp characterization. This calculation shows that the UV-C robot HERO21 equipped with the mentioned UV-C unit causes an irradiance at λ=254 nm of 2.67 mJ•cm-2•s-1 at 1 m and 0.29 mJ•cm-2•s-1 at 3 m distances. These values result in D99 disinfection times of 14 s and 129 s for B. subtilis spores, respectively. Similarly, human coronavirus 229E, structurally very similar to SARS-CoV-2, could be efficiently inactivated by 3-5 orders of magnitude within 10 - 30 s exposure time or doses of 2 - 6 mJ•cm-2, respectively. In conclusion, with the development of the HERO21 disinfection robot, we were able to determine the inactivation efficiency of bacteria and viruses on surfaces under laboratory conditions.
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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