水プラズマを使った宇宙探査機の新しい滅菌技術

2026-09-30 九州大学

九州大学の研究グループは、宇宙探査機を惑星間汚染から守るため、水を原料とする低圧高周波水プラズマを利用した新しい滅菌技術を開発した。火星などへの探査では、探査機に付着した地球由来の微生物を他天体へ持ち込まない「惑星保護」が重要だが、従来の高温滅菌や薬剤処理には、探査機材料の損傷や薬剤残留、真空環境での利用などの課題がある。研究では、耐熱性芽胞や放射線耐性菌を対象に水プラズマの不活化性能を評価し、60分間の処理で耐熱性芽胞を6桁以上減少させる高い滅菌効果を確認した。水プラズマ中で生成されるOHラジカルがタンパク質やアミノ酸を酸化・分解し、微生物を不活化すると考えられる。一方、探査機材料のポリイミドフィルムへの影響は酸素プラズマより小さく、材料への負荷を抑えながら微生物を不活化できる可能性が示された。火星探査機などの表面滅菌への応用が期待される。

水プラズマを使った宇宙探査機の新しい滅菌技術

<関連情報>

宇宙船表面除染のための低圧RF水プラズマの滅菌メカニズムと材料適合性 Sterilization mechanism and material compatibility of low-pressure RF water plasma for spacecraft surface decontamination

Kirara Yamanaka, Yoshihito Yagyu & Nobuya Hayashi
Scientific Reports  Published:04 August 2026
DOI:https://doi.org/10.1038/s41598-026-64078-7  Early provide

Abstract

Low-pressure radio-frequency water plasma is a promising sterilization method for spacecraft because it can achieve effective microbial inactivation at low temperature while potentially reducing damage to heat-sensitive materials. In this study, the applicability of low-pressure water plasma to spacecraft surface sterilization was comprehensively evaluated in terms of reactive-species generation, sterilization performance, sterilization mechanism, and material compatibility. Optical emission spectroscopy and a disodium terephthalate chemical probe confirmed that OH radicals were the major reactive species generated in the water plasma. Sterilization performance was assessed using Geobacillus stearothermophilus spores and the radiation-resistant bacterium Deinococcus radiodurans. The biological indicator reached a sterility assurance level (SAL) of 10⁻6 or lower within 60 min under water plasma treatment, whereas 90 min was required for oxygen plasma treatment. In cover-glass experiments, Geobacillus stearothermophilus reached the detection limit after 2 h of water plasma irradiation, whereas Deinococcus radiodurans required 4 h. Fourier-transform infrared spectroscopy of model organic compounds showed that water plasma degraded wool keratin more effectively than oxygen plasma, whereas oxygen plasma more strongly degraded dipicolinic acid. These results suggest that water plasma promotes microbial inactivation primarily through preferential oxidative degradation of proteinaceous protective surface structures. In addition, water plasma caused less chemical-bond degradation in polyimide film than oxygen plasma, indicating superior material compatibility. Overall, low-pressure water plasma combines high sterilization efficacy with low material damage and is therefore a promising candidate for spacecraft surface sterilization.

0505化学装置及び設備
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