Roy Subrata, Kosky Justin, Revazishvili Tamara, Roy Sarthak, Brown Sierra, Vichnyakov Vladimir, Rurua Nona, Mastro Emma Noelle, Kobaidze Davit
SurfPlasma, Inc., Gainesville, FL, 32601, USA.
Mechanical and Aerospace Engineering, University of Florida, Gainesville, FL, 32611, USA.
Sci Rep. 2024 Dec 28;14(1):31195. doi: 10.1038/s41598-024-82556-8.
This paper introduces a novel, compact plasma sterilization system, the Active Plasma Sterilizer (APS), for planetary protection space missions. The development of the APS system is done through iterative testing and design modifications aimed at addressing decontamination modalities for time and temperature, cleaning adhesive surfaces, and cleaning protocols beyond alcohol and bleach. Decontamination testing of Deinococcus radiodurans, Geobacillus stearothermophilus (spore forming bacteria), and Aspergillus fumigatus (fungi) was verified for the APS on relevant materials of 4 to 5 log reduction up to complete killing in 45 min or less. The material compatibility testing of the APS performed with Stainless Steel 316, Teflon PTFE, and FR-4 PCB using a single exposure showed no visible material degradation through SEM analysis. This study demonstrates the efficacy of the APS technology for use with planetary protection due to its low-temperature operation, low weight and size, zero-plumbing requirements, safety features, decontamination capabilities, and material compatibility.
本文介绍了一种用于行星保护太空任务的新型紧凑型等离子体灭菌系统——有源等离子体灭菌器(APS)。APS系统的开发是通过反复测试和设计修改来完成的,旨在解决时间和温度方面的去污方式、清洁粘性表面以及除酒精和漂白剂以外的清洁方案等问题。针对耐辐射球菌、嗜热栖热芽孢杆菌(产芽孢细菌)和烟曲霉(真菌),在相关材料上对APS进行了去污测试,结果验证了其在45分钟或更短时间内实现4至5个对数级的减少直至完全杀灭的效果。使用不锈钢316、聚四氟乙烯PTFE和FR - 4印刷电路板对APS进行单次暴露的材料兼容性测试,通过扫描电子显微镜分析表明没有可见的材料降解。由于其低温运行、低重量和尺寸、无需管道、安全特性、去污能力以及材料兼容性,本研究证明了APS技术用于行星保护的有效性。