Department of Medical Engineering, University of South Florida, USF Cherry Drive ISA 6049, Tampa, FL, 33620, USA.
Department of Veterans Affairs, James A. Haley Veterans Hospital, Tampa, FL, 33612, USA.
Sci Rep. 2022 Jul 13;12(1):11935. doi: 10.1038/s41598-022-13670-8.
Ultraviolet (UV) irradiation-based methods used for viral inactivation have provided an important avenue targeting severe acute respiratory-syndrome coronavirus-2 (SARS-CoV-2) virus. A major problem with state-of-the-art UV inactivation technology is that it is based on UV lamps, which have limited efficiency, require high power, large doses, and long irradiation times. These drawbacks limit the use of UV lamps in air filtering systems and other applications. To address these limitations, herein we report on the fabrication of a device comprising a pulsed nanosecond 266 nm UV laser coupled to an integrating cavity (LIC) composed of a UV reflective material, polytetrafluoroethylene. Previous UV lamp inactivation cavities were based on polished walls with specular reflections, but the diffuse reflective UV ICs were not thoroughly explored for virus inactivation. Our results show that LIC device can inactivate several respiratory viruses including SARS-CoV-2, at ~ 1 ms effective irradiation time, with > 2 orders of magnitude higher efficiency compared to UV lamps. The demonstrated 3 orders of magnitude cavity enhancement relative to direct exposure is crucial for the development of efficient real-time UV air and water purification systems. To the best of our knowledge this is the first demonstration of LIC application for broad viral inactivation with high efficiency.
基于紫外线(UV)照射的病毒灭活方法为严重急性呼吸综合征冠状病毒 2(SARS-CoV-2)病毒提供了重要途径。最先进的紫外线灭活技术的一个主要问题是它基于紫外线灯,其效率有限,需要高功率、大剂量和长照射时间。这些缺点限制了紫外线灯在空气过滤系统和其他应用中的使用。为了解决这些限制,在此我们报告了一种装置的制造,该装置包括一个纳秒脉冲 266nm UV 激光与由 UV 反射材料聚四氟乙烯组成的积分腔(LIC)耦合。以前的紫外线灯灭活腔基于具有镜面反射的抛光壁,但对于病毒灭活,漫反射 UV IC 并未得到充分探索。我们的结果表明,LIC 装置可以在~1ms 的有效照射时间内灭活几种呼吸道病毒,包括 SARS-CoV-2,其效率比紫外线灯高出 2 个数量级以上。与直接暴露相比,腔增强 3 个数量级对于开发高效实时 UV 空气和水净化系统至关重要。据我们所知,这是首次展示 LIC 应用于高效广谱病毒灭活的实例。