超长时间等离子活化水:生产和控制机制

Congfu Ran, Xiongfeng Zhou, Zhiyong Wang, Kun Liu, K. Ostrikov
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摘要

尽管等离子活化水(PAW)的广谱性、高灭活能力和环境友好性引起了越来越多的关注,但由于等离子活化水的寿命较短,其实际应用受到了限制。虽然低温储存可以延长寿命,但冷冻和解冻过程耗能耗力,一般不适合环境和生物医学消毒等大规模应用。这项研究通过开发室温超长寿命 PAW 解决了这一问题。这种创新方法基于直流针-水放电,其中气态产物被气流分别吹出和吸收。只需调节电压和气体流速,就能在放电室和气泡瓶中产生并分离出以酸性过氧化氢和亚硝酸盐为主要产物的两种不同类型的 PAW。这两种 PAW 的有意混合会导致以过氧化亚硝酸(ONOOH)为主的连锁化学反应。该反应可产生多种短寿命反应物,从而获得具有非常稳定灭活能力的超长寿命 PAW。这项研究进一步证明了在两个反应室中有效控制反应产物的能力,并深入探讨了 ONOOH 刺激短寿命活性物种的二次活化机制。
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Ultralong-lasting plasma-activated water: production and control mechanisms
Despite the rapidly growing interest stemming from the broad-spectrum, high inactivation capacity, and environmental friendliness of the plasma-activated water (PAW), practical applications are limited because of the PAW’s short lifetime. While low-temperature storage can extend the lifetime, but the freezing and thawing processes are energy- and labor-intense and are generally not suitable for large-scale applications such as environmental and biomedical disinfection. This work addresses this issue by developing the ultra-long-life PAW at room temperature. The innovative approach is based on using DC needle-water discharges, wherein the gaseous products are blown out and absorbed separately by a gas flow. By simply adjusting the voltage and gas flow rates, two distinctive types of PAW with acidic hydrogen peroxide and nitrite as the main products are produced and separated in the discharge chamber and gas bubbling bottle. Intentional mixing of these two PAWs causes a chain chemical reaction dominated by peroxynitrite (ONOOH). This reaction can generate a variety of short-lived reactive species, thereby achieving the ultralong-lasting PAW with very stable inactivation ability. This study further demonstrates the ability to effectively control the reaction products in both chambers and provides insights into the secondary activation mechanism of short-lived reactive species stimulated by ONOOH.
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