The Wavelength-Based Inactivation Effects of a Light-Emitting Diode Module on Indoor Microorganisms
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[1] Markus H. Antwerpen,et al. Rapid inactivation of SARS-CoV-2 with LED irradiation of visible spectrum wavelengths , 2021, Journal of Photochemistry and Photobiology.
[2] Jae-Weon Jeong,et al. Sterilization effectiveness of in-duct ultraviolet germicidal irradiation system in liquid desiccant and indirect/direct evaporative cooling-assisted 100% outdoor air system , 2020 .
[3] A. Lai,et al. A new UVC‐LED system for disinfection of pathogens generated by toilet flushing , 2020, Indoor air.
[4] Shelly L. Miller,et al. How can airborne transmission of COVID-19 indoors be minimised? , 2020, Environment International.
[5] C. D. Dela Cruz,et al. COVID-19 vulnerability: the potential impact of genetic susceptibility and airborne transmission , 2020, Human Genomics.
[6] Jae-Weon Jeong,et al. Evaluation of UR-UVGI System for Sterilization Effect on Microorganism Contamination in Negative Pressure Isolation Ward , 2018, Sustainability.
[7] T. Douki,et al. The UV/Visible Radiation Boundary Region (385–405 nm) Damages Skin Cells and Induces “dark” Cyclobutane Pyrimidine Dimers in Human Skin in vivo , 2018, Scientific Reports.
[8] Dong-Hyun Kang,et al. UVC LED Irradiation Effectively Inactivates Aerosolized Viruses, Bacteria, and Fungi in a Chamber-Type Air Disinfection System , 2018, Applied and Environmental Microbiology.
[9] H. Yuk,et al. Anti-biofilm effect of 405-nm LEDs against Listeria monocytogenes in simulated ready-to-eat fresh salmon storage conditions , 2018 .
[10] Jia Hou Tan,et al. Comparison of standard light-emitting diode (LED) and 385 nm ultraviolet A LED (UVA-LED) for disinfection of Escherichia coli , 2017 .
[11] S. Sheen,et al. Inactivation of Salmonella spp., pathogenic Escherichia coli, Staphylococcus spp., or Listeria monocytogenes in chicken purge or skin using a 405-nm LED array. , 2017, Food microbiology.
[12] Amit Kumar,et al. Kinetics of bacterial inactivation by 405nm and 520nm light emitting diodes and the role of endogenous coproporphyrin on bacterial susceptibility. , 2015, Journal of photochemistry and photobiology. B, Biology.
[13] G. Gettinby,et al. 405 nm light technology for the inactivation of pathogens and its potential role for environmental disinfection and infection control. , 2014, The Journal of hospital infection.
[14] Yoshihiko Muramoto,et al. Development and future of ultraviolet light-emitting diodes: UV-LED will replace the UV lamp , 2014, 2015 IEEE Summer Topicals Meeting Series (SUM).
[15] Hyunsoo Yang,et al. Antibacterial effect of light emitting diodes of visible wavelengths on selected foodborne pathogens at different illumination temperatures. , 2013, International journal of food microbiology.
[16] John G. Anderson,et al. Lethal effects of high-intensity violet 405-nm light on Saccharomyces cerevisiae, Candida albicans, and on dormant and germinating spores of Aspergillus niger. , 2013, Fungal biology.
[17] Iltefat Hamzavi,et al. Effects of ultraviolet radiation, visible light, and infrared radiation on erythema and pigmentation: a review , 2012, Photochemical & Photobiological Sciences.
[18] S. Macgregor,et al. High‐Intensity 405 nm Light Inactivation of Listeria monocytogenes , 2012, Photochemistry and photobiology.
[19] Scott J. MacGregor,et al. Bactericidal Effects of 405 nm Light Exposure Demonstrated by Inactivation of Escherichia, Salmonella, Shigella, Listeria, and Mycobacterium Species in Liquid Suspensions and on Exposed Surfaces , 2012, TheScientificWorldJournal.
[20] S. Kato,et al. Estimating the germicidal effect of upper-room UVGI system on exhaled air of patients based on ventilation efficiency , 2011, Building and Environment.
[21] S. Kato,et al. Disinfection performance of ultraviolet germicidal irradiation systems for the microbial contamination on an evaporative humidifier , 2011 .
[22] S. Macgregor,et al. Inactivation of Campylobacter jejuni by exposure to high-intensity 405-nm visible light. , 2010, Foodborne pathogens and disease.
[23] W. Kowalski. Ultraviolet Germicidal Irradiation Handbook: UVGI for Air and Surface Disinfection , 2009 .
[24] Scott J. MacGregor,et al. Inactivation of Bacterial Pathogens following Exposure to Light from a 405-Nanometer Light-Emitting Diode Array , 2009, Applied and Environmental Microbiology.
[25] Masatake Akutagawa,et al. Development of a new water sterilization device with a 365 nm UV-LED , 2007, Medical & Biological Engineering & Computing.
[26] J. Wilborn,et al. In vitro bactericidal effects of 405-nm and 470-nm blue light. , 2006, Photomedicine and laser surgery.
[27] A. Lai,et al. Comparison of Disinfection Performance of UVC-LED and Conventional Upper-Room UVGI Systems. , 2019, Indoor air.
[28] Amit Kumar,et al. Inactivation by 405 ± 5 nm light emitting diode on Escherichia coli O157:H7, Salmonella Typhimurium, and Shigella sonnei under refrigerated condition might be due to the loss of membrane integrity , 2016 .
[29] Wladyslaw Kowalski,et al. Ultraviolet Germicidal Irradiation Handbook , 2009 .
[30] Bruce E. Stuck,et al. Guidelines on limits of exposure to ultraviolet radiation of wavelengths between 180 nm and 400 nm (incoherent optical radiation). , 2004, Health physics.